Monitoring and mitigating conditions in a communication network.
Abstract
Aspects of the subject disclosure may include, for example, a system for receiving telemetry information from an apparatus that induces electromagnetic waves on a wire surface of a wire of a power grid for delivery of communication signals to a recipient communication device coupled to the power grid, and detecting a condition from the telemetry information that is adverse to a delivery of the communication signals to the recipient communication device. Other embodiments are disclosed.

Term
8.9 yearsleft in the term
Expires 28 August 2035.
- Priority
- Filed
- Granted
- Today
- Expires
58 claims: 10 independent, 48 dependent
- 1NOVEDAD DE IA INVENCION NOVELTY OF THE INVENTION Habiendo descrito el presente invento, se considera como una novedad y, por lo tanto, se reclama como propiedad lo contenido en las siguientes. Having described the present invention, it is considered as a novelty and, therefore, what is contained in the following is claimed as property. CLAIMS REIVINDICACIONES 1. Un aparato, que comprende:one. An apparatus, comprising: a processor;and a memory coupled to the processor;un procesador;y una memoria acoplada al procesador;caracterizado porque el procesador está configurado para: characterized in that the processor is configured to: receiving telemetry information from a waveguide system coupled to a sensor, wherein the waveguide system comprises a dielectric coupler positioned with respect to a wire of an electrical network that facilitates distribution of electrical energy to devices, wherein the dielectric coupler facilitates transmission or reception of electromagnetic waves along an outer surface of the wire, where electromagnetic waves propagate along the dielectric coupler without requiring an electrical return path, where electromagnetic waves at least partially surround the outer surface of the wire, where the sensor facilitates detection of the electromagnetic waves of one or more adverse conditions to the transmission or reception of electromagnetic waves along the external surface recibir información de telemetría de un sistema de guía de onda acoplado a un sensor, en donde el sistema de guía de onda comprende un acoplador dieléctrico colocado con respecto a un alambre de una red eléctrica que facilita distribución de energía eléctrica a dispositivos, en donde el acoplador dieléctrico facilita transmisión o recepción de ondas electromagnéticas a lo largo de una superficie externa del alambre, en donde las ondas electromagnéticas se propagan a lo largo del acoplador dieléctrico sin requerir una trayectoria de retorno eléctrico, en donde las ondas electromagnéticas circundan al menos parcialmente en la superficie externa del alambre, en donde el sensor facilita detección de las ondas electromagnéticas de una o más condiciones adversas a la transmisión o a la recepción de las ondas electromagnéticas a lo largo de la superficie externa 129 * s of the wire, and where electromagnetic waves are detected by the sensor through the dielectric coupler;129 *s del alambre, y en donde las ondas electromagnéticas se detectan por el sensor a través del acoplador dieléctrico;detectar de la información de telemetría una condición que es adversa a una de las operaciones del sistema de guía de onda, o la transmisión o la recepción de las ondas electromagnéticas a lo largo de la superficie externa del alambre;y generar información asociada con la condición que se detecta a partir de la información de telemetría;y facilitar el acceso a o distribución de la información para generación de reportes. detecting from the telemetry information a condition that is adverse to one of the operations of the waveguide system, or the transmission or reception of electromagnetic waves along the outer surface of the wire;and generate information associated with the condition that is detected from the telemetry information;and facilitate access to or distribution of information for report generation.
- 1314. A method characterized in that it comprises:14. Un método caracterizado porque comprende: receive, by a network element comprising a processor, telemetry information of a waveguide system, where the waveguide system facilitates recibir, por un elemento de red que comprende un procesador, información de telemetría de un sistema de guía de onda, en donde el sistema de guía de onda facilita 133 Transmission of electromagnetic waves along an external surface of a first wire of an electrical network through a dielectric coupler and detect the characteristic electromagnetic waves associated with one or more adverse conditions to the transmission of electromagnetic waves, where electromagnetic waves at least partially surround the outer surface of the 133 transmisión de ondas , electromagnéticas a lo largo de una superficie externa de un primer alambre de una red eléctrica a través de una acoplador dieléctrico y detectar de las ondas electromagnéticas características asociadas con una o más condiciones adversas a la transmisión de las ondas electromagnéticas, en donde las ondas electromagnéticas circundan al menos parcialmente la superficie externa del I first wire, where electromagnetic waves propagate along the dielectric coupler without requiring an electrical return path, where electromagnetic waves are detected through the dielectric coupler, and where> the telemetry information comprises data from detection;I primer alambre, en donde las ondas electromagnéticas se propagan a lo largo del acoplador dieléctrico sin requerir una trayectoria de retorno eléctrico, en donde las ondas electromagnéticas se, detectan a través del acoplador dieléctrico, y en >donde la información de telemetría comprende datos de detección;determinar, por el elemento de red, una condición de dichas una o más condiciones de los datos de detección;y transmitir, por , el elemento de red, instrucciones al sistema de guía de onda para ajustar una ruta de las ondas electromagnéticas para evitar la condición. determine, by the network element, a condition of said one or more conditions of the detection data;and transmit, through, the network element, instructions to the waveguide system to adjust a path of the electromagnetic waves to avoid the condition.
- 1718. A method characterized in that it comprises:18. Un método caracterizado porque comprende: receiving telemetry information from an apparatus that induces electromagnetic waves on an external surface of a wire of an electrical network through a dielectric coupler for distribution of communication signals to a receiver communication device coupled to the electrical network, where the waves At least partially electromagnetic surround the outer surface of the wire, where electromagnetic waves propagate along the dielectric coupler1 without requiring an electrical return path, where the apparatus also generates detection data by detecting electromagnetic waves through the dielectric coupler, and where the detection data is included in the telemetry information;and detecting, based on the detection data included in the telemetry information, a condition that is adverse to the distribution of the communication signals to the receiving communication device. recibir información de telemetría de un aparato que induce ondas electromagnéticas sobre una superficie externa de un alambre de una red eléctrica a través de un acoplador dieléctrico para distribución de señales de comunicación a un dispositivo de comunicación receptor acoplado a la red eléctrica, en donde las ondas electromagnéticas circundan al menos parcialmente la superficie externa del alambre, en donde las ondas electromagnéticas se propagan a lo largo del acoplador dieléctrico 1 sin requerir una trayectoria de retorno eléctrico, en donde el aparato genera además datos de detección al detectar las ondas electromagnéticas a través del acoplador dieléctrico, y en donde los datos de detección están incluidos en la información de telemetría;y detectar, con base en los datos de detección incluidos en la información de ¡telemetría, una condición que es adversa a la distribución ’ de las señales de comunicación al dispositivo de comunicación receptor.
- 2021. Un aparato, -que comprende:twenty-one. An apparatus, which comprises: a processing system that includes a processor;and a memory coupled to the processor of the processing system;un sistema de prócesamiento que incluye un procesador;y una memoria acoplada al procesador del sistema de procesamiento;caracterizado porque el procesador del sistema de procesamiento está configurado para: characterized in that the processor of the processing system is configured to: receiving telemetry infirmation of a waveguide system comprising a dielectric coupler, where the dielectric coupler facilitates transmission, by the waveguide system, of first electromagnetic waves that propagate along the dielectric coupler without requiring a circuit electric, where the dielectric coupler couples the first electromagnetic waves to a transmission medium coupled to the waveguide system to generate second electromagnetic waves;recibir infirmación de telemetría de un sistema de guia de onda que comprende un acoplador dieléctrico, en donde el acoplador dieléctrico facilita transmisión, por el sistema de guia de onda, de primeras ondas electromagnéticas que se propagan a lo largo del acoplador dieléctrico sin requerir un circuito eléctrico, qn donde el acoplador dieléctrico acopla la primeras ondas electromagnéticas a un medio de transmisión acoplado al sistema 'de guía de onda para generar segundas ondas electromagnéticas;136 detecting of 'telemetry information an adverse condition to the propagation of the second electromagnetic waves along the transmission medium. 136 detectar de ' la información de telemetría una condición adversa a la propagación de las segundas ondas electromagnéticas a lo largo del medio de transmisión.
- 3132 A method characterized in that it comprises:32. Un método caracterizado porque comprende: receiving telemetry information from an apparatus comprising a dielectric coupler that transmits first electromagnetic waves that propagate along the dielectric coupler without requiring an electrical circuit, where the first electromagnetic waves are coupled to a transmission medium, thus forming second electromagnetic waves that propagate along the transmission medium;and detect, according to telemetry information, a condition that is adverse to the propagation of the second electromagnetic waves along the transmission medium. recibir información de telemetría de un aparato que comprende un acoplador dieléctrico que transmite primeras ondas electromagnéticas que se propagan a lo largo del acoplador dieléctrico sin requerir un circuito eléctrico, en donde las primeras ondas electromagnéticas se acoplan a un medio de transmisión, formando de esta forma segundas ondas electromagnéticas que se propagan a lo largo del medio de transmisión;y detectar, de acuerdo con la información de telemetría, una condición que es adversa a la propagación de las segundas ondas electromagnéticas a lo largo del medio de transmisión.
- 3637. A method characterized in that it comprises:37. Un método caracterizado porque comprende: receiving, by a network element comprising a processing system that includes a processor, telemetry data generated by a waveguide system comprising a dielectric coupler, the dielectric coupler facilitates reception of first electromagnetic waves that propagate along of the dielectric coupler without requiring an electrical circuit, the first electromagnetic waves generated from second electromagnetic waves that propagate in a transmission medium coupled to the dielectric coupler;recibir, por un elemento de red que comprende un sistema de procesamiento que incluye un procesador, datos de telemetría generados por un sistema de guía de onda que comprende un acoplador dieléctrico, el acoplador dieléctrico facilita recepción de primeras ondas electromagnéticas que se propaqan a lo largo del acoplador dieléctrico sin requerir un circuito eléctrico, las primeras ondas electromagnéticas generadas a partir de segundas ondas electromagnéticas que se propagan en un medio de transmisión acoplado al acoplador dieléctrico;140 140 Waveguide system to adjust a path of the second electromagnetic waves to mitigate the condition. sistema de guia de onda para ajustar una ruta de las segundas ondas electromagnéticas para mitigar la condición.
- 4041. An apparatus, comprising:41. Un aparato, que comprende: a processing system that includes a processor;and a memory coupled to the processor of the processing system;un sistema de procesamiento que incluye un procesador;y una memoria acoplada al procesador del sistema de procesamiento;caracterizado porque el procesador del sistema de procesamiento está configurado para: characterized in that the processor of the processing system is configured to: 141 receiving telemetry information from a waveguide system comprising a coupler, wherein the coupler facilitates transmission, by the waveguide system, of first electromagnetic waves that propagate along the coupler without requiring an electrical circuit, and wherein the coupler couples the first electromagnetic waves to a transmission medium coupled to the waveguide system to generate second electromagnetic waves, wherein the second electromagnetic waves have an electromagnetic field structure that is at least partly on an outer surface of the transmission medium;141 recibir información de telemetría de un sistema de guía de onda que comprende un acoplador, en donde el acoplador facilita transmisión, por el sistema de guía de onda, de primeras ondas electromagnéticas que se propagan a lo largo del acoplador sin requerir un circuito eléctrico, y en donde el acoplador acopla la primeras ondas electromagnéticas a un medio de transmisión acoplado al sistema de guía de onda para generar segundas ondas electromagnéticas, en donde las segundas ondas electromagnéticas tienen una estructura de campo electromagnético que está al menos en parte en una superficie exterior del medio de transmisión;detectar de la información de telemetría una condición que es adversa a la propagación de las segundas ondas electromagnéticas a lo largo del medio de transmisión. detecting from the telemetry information a condition that is adverse to the propagation of the second electromagnetic waves along the transmission medium.
- 4849. The apparatus of 49. El aparato de medio de transmisión. transmission medium.
- 5051. A method characterized in that it comprises:51. Un método caracterizado porque comprende: receiving telemetry information from an apparatus comprising a coupler that transmits first electromagnetic waves that propagate along the coupler without requiring an electrical circuit, where the first electromagnetic waves are coupled to a transmission medium, thereby forming second waves electromagnetic that propagate along the transmission medium, wherein the second electromagnetic waves have an electromagnetic field structure that is at least partly on an outer surface of the transmission medium;Y recibir información de telemetría de un aparato que comprende un acoplador que transmite primeras ondas electromagnéticas que se propagan a lo largo del acoplador sin requerir un circuito eléctrico, en donde las primeras ondas electromagnéticas se acoplan a un medio de transmisión, formando de esta forma segundas ondas electromagnéticas que se propagan a lo largo del medio de transmisión, en donde las segundas ondas electromagnéticas tienen una estructura de campo electromagnético que está al menos en parte en una superficie exterior del medio de transmisión;y 144 detect, according to telemetry information, a condition that is adverse to the propagation of the second electromagnetic waves along the transmission medium. 144 detectar, de acuerdo con la información de telemetría, una condición que es adversa a la propagación de las segundas ondas electromagnéticas a lo largo del medio de transmisión.
- 5556. A method characterized in that it comprises:56. Un método caracterizado porque comprende: 145 receiving, by a network element comprising a processing system that includes a processor, telemetry data generated by a waveguide system comprising a coupler, the coupler facilitates reception of first electromagnetic waves that propagate along the coupler without requiring an electrical circuit, the first electromagnetic waves generated from second electromagnetic waves that propagate in a transmission medium coupled to the coupler, wherein the second electromagnetic waves have an electromagnetic field structure that is at least partly on an outer surface of the transmission medium;145 recibir, por un elemento de red que comprende un sistema de procesamiento que incluye un procesador, datos de telemetría generados por un sistema de guía de onda que comprende un acoplador, el acoplador facilita recepción de primeras ondas electromagnéticas que se propagan a lo largo del acoplador sin requerir un circuito eléctrico, las primeras ondas electromagnéticas generadas a partir de segundas ondas electromagnéticas que se propagan en un medio de transmisión acoplado al acoplador, en donde las segundas ondas electromagnéticas tienen una estructura de campo electromagnético que está al menos en parte en una superficie exterior del medio de transmisión;determinar, por el elemento de red, a partir de los datos de telemetría una condición adversa a una operación del sistema de guía de onda;y transmitir, por el elemento de red, instrucciones al sistema de guía de onda para ajustar una ruta de las segundas ondas electromagnéticas para mitigar la condición. determine, by the network element, from the telemetry data an adverse condition to an operation of the waveguide system;and transmit, by the network element, instructions to the waveguide system to adjust a route of the second electromagnetic waves to mitigate the condition.
Independent claims10
426 paragraphs in 5 sections, as filed
FIELD OF THE INVENTION
The description refers to monitoring and mitigation of conditions in a communication network.
BACKGROUND OF THE INVENTION
As smartphones and other portable devices become increasingly universal, and data usage increases, macrocell base station devices and existing wireless infrastructure in turn require more bandwidth capacity to address demand increased To provide additional mobile bandwidth, small cell implementation is pursued, with microcells and picocells that provide coverage for much smaller areas than traditional macrocells.
BRIEF DESCRIPTION OF THE FIGURES
The figure is a block diagram illustrating a non-limiting mode, for example of a guided wave communications system according to different aspects described herein.
Figure 2 is a block diagram illustrating a non-limiting embodiment, for example of a dielectric waveguide coupler according to different aspects described herein.
Figure 3 is a block diagram illustrating a non-limiting embodiment, for example of a dielectric waveguide coupler according to different aspects described herein.
Figure 4 is a block diagram illustrating a non-limiting embodiment, for example of a dielectric waveguide coupling according to different aspects described herein.
Figure 5 is a block diagram illustrating a non-limiting embodiment, for example of a dielectric waveguide coupler and transceiver according to different aspects described herein.
Figure 6 is a block diagram illustrating a non-limiting embodiment, for example of a dual dielectric waveguide coupler according to different aspects described herein.
Figure 7 is a block diagram illustrating a non-limiting embodiment, for example of a bi-directional dielectric waveguide coupler according to different aspects described herein.
Figure 8 illustrates a block diagram illustrating a non-limiting embodiment, for example of a bi-directional, ire dielectric waveguide coupler according to different aspects described herein.
Figure 9 illustrates a block diagram illustrating a non-limiting mode, for example of a two-way repeater system according to different aspects described herein.
Figures 10A, 10B and 10C are block diagrams illustrating non-limiting embodiments, for example of a grooved waveguide coupler according to different aspects described herein.
<td>Figure 11 is a diagram of</td><td>blocks</td><td>what</td><td>illustrates</td><td>a</td>
<td colspan="2">non-limiting mode, example of</td><td>a</td><td>system</td><td>from</td>
<td>waveguide coupling</td><td>agreement</td><td>with</td><td colspan="2">different</td>
<td>aspects described herein.</td><td></td><td></td><td></td><td></td>
<td>Figure 12 is a diagram of</td><td>blocks</td><td>what</td><td>illustrates</td><td>a</td>
<td colspan="2">non-limiting mode, example of</td><td>a</td><td>system</td><td>from</td>
<td>waveguide coupling</td><td>agreement</td><td>with</td><td colspan="2">different</td>
aspects described herein.
Figure 13 illustrates a flow chart of a non-limiting mode, an example of a method for transmitting a transmission with a cone dielectric waveguide coupler described herein.
Figure 14 is a block diagram illustrating a non-limiting embodiment, for example of a guide system of
<img file="MX364594B_D0001.tif" />
Wave according to different aspects described herein.
Figures 15A, 15B, 15C, 515D, 15E, 15F, and 15G illustrate non-limiting embodiments, for example of sources for disturbances detectable by the waveguide system of Figure 14 as described herein.
Figure 16 is a block diagram illustrating a non-limiting mode, for example of a system for managing a power grid communication system according to different aspects described herein.
<td>Figure 17A illustrates a</td><td>diagram</td><td>from</td><td>f lu jo</td><td>from</td><td>a</td>
<td colspan="3">non-limiting mode, example of a method</td><td>for</td><td colspan="2">detect</td>
<td>and mitigate conditions that</td><td>present</td><td>in</td><td>a</td><td>net</td><td>from</td>
<td>fi system communication</td><td>Figure 16.</td><td></td><td></td><td></td><td></td>
<td>Figure 17B illustrates a</td><td>diagram</td><td>from</td><td>flow</td><td>from</td><td>a</td>
<td colspan="3">non-limiting mode, example of a method</td><td>for</td><td colspan="2">detect</td>
<td>and mitigate conditions that</td><td>present</td><td>in</td><td>a</td><td>net</td><td>from</td>
system communication of figure 16.
Figure 18A illustrates a non-limiting embodiment, for example to mitigate a condition detected by the waveguide system of Figure 14 as described herein.
Figure 18B illustrates another non-limiting embodiment, for example to mitigate a condition detected by the waveguide system of Figure 14 as described herein.
Figure 19 is a block diagram of a non-limiting mode, for example of a computing environment according to different aspects described herein.
Figure 20 is a block diagram of a non-limiting mode, for example of a mobile network platform according to different aspects described herein.
Figure 21 is a block diagram of a non-limiting embodiment, for example of a communication device according to different aspects described herein.
DETAILED DESCRIPTION OF THE INVENTION
One or more modalities are now described with reference to the figures, where similar reference numbers are used to refer to similar elements at all times. In the following description, for purposes of explanation, several details are set forth in order to provide a complete understanding of the different modalities. It is clear, however, that different modalities can be practiced without these details (and without referring to any particular norm or environment in a particular network).
To provide network connectivity to additional base station devices, the redirection network that links the communication cells (eg, ts and macro cells) to network devices in the core network is expanded accordingly.
Similarly, to provide network connectivity to a distributed antenna system, an extended communication system that links base station devices to its distributed antennas is desirable. A waveguide communication system can be provided to allow alternative, increased or additional network connectivity and a waveguide coupling system can be provided to transmit and / or receive guided wavelength communications, example, surface wave) in a wire, such as a wire that operates as a transmission line of a public service line), that operates as a waveguide and / or that operates in another way to guide the transmission of an electromagnetic wave.
In one embodiment, a waveguide coupler that is used in a waveguide coupling system can be made of a dielectric material, or other low loss insulator (e.g., Teflon, polyethylene and etc.), even It can be made of a conductive material (for example, metallic, non-metallic, or any combination of the above materials. The reference throughout the detailed description to the dielectric waveguide is for illustration purposes and does not limit the dielectric modalities. In others build only from modal materials, other insulating or dielectric materials are possible. It will be appreciated that a variety of transmission media with guided wave communications can be used without departing from the example embodiments.
Examples of these transmission means may include one or more of the following, either separately or in one or more combinations: wires, either insulated or not, and either single or multi-wire;
Conductors of other shapes configurations that include bundles of wires, cables, rods, rails, tubes; non-conductive such as dielectric tubes, rods, rails, or other dielectric members; combinations of conductors and dielectric materials; or other means of transmitting guided waves.
For these and / or other considerations, in one or more embodiments, an apparatus comprises a waveguide that facilitates propagation of a first electromagnetic wave at least in part on a waveguide surface, where the waveguide surface does not surrounds a wire surface of a wire in its entirety or in a substantial part, and, in response to the waveguide that is placed with respect to the wire, the first electromagnetic wave is coupled at least in part to the wire surface and travels at least partially around the wire surface as a second electromagnetic wave, and wherein the second electromagnetic wave has at least one wave propagation mode for propagation longitudinally along the wire.
In another embodiment, an apparatus comprises a waveguide having a waveguide surface that defines an area of. cross-section of the waveguide where a wire is placed outside the cross-sectional area of the waveguide such that a first electromagnetic wave, which travels along the wire at least in part on the wire surface, it is coupled at least in part to the waveguide surface and travels at least partially around the waveguide surface as a second electromagnetic wave.
In one embodiment, a method comprises emitting, by a transmission device, a first electromagnetic wave that propagates at least in part on a waveguide surface of a waveguide, where the waveguide does not align so Coaxial with a wire. The method may also include configuring the waveguide in proximity to the wire to facilitate the coupling of at least a portion of the first electromagnetic wave to a wire surface, which forms a second electromagnetic wave that propagates longitudinally along wire and at least partially around the wire surface.
In another embodiment, an apparatus comprises, in one or more embodiments, a waveguide having a groove formed by opposite groove surfaces that are not parallel, wherein the opposing groove surfaces' are separated by a distance that allows insertion of a wire in the groove, where the waveguide facilitates propagation of a first electromagnetic wave at least in part on a waveguide surface, and, in response to the waveguide that is placed with respect to the wire, the first electromagnetic wave is coupled at least in part to a wire surface of the wire and travels at least in part around the wire surface as a second electromagnetic wave to longitudinally spread to
<td>wire length,</td><td>Y</td><td>in</td><td colspan="2">where the</td><td>second wave</td>
<td>electromagnetic has</td><td>to the</td><td>less</td><td>a</td><td>mode of</td><td>spread of</td>
<td>wave.</td><td></td><td></td><td></td><td></td><td></td>
<td>In another mode,</td><td>a</td><td colspan="2">apparatus</td><td>understands,</td><td>in one or more</td>
<td>modalities, a guide</td><td>from</td><td>wave,</td><td>in</td><td>where the</td><td>waveguide</td>
it comprises a material that is not electrically conductive and is suitable for propagation of electromagnetic waves on a waveguide surface of the waveguide, wherein the waveguide facilitates propagation of a first electromagnetic wave at least in part on the surface waveguide, and, in response to the waveguide that is placed with respect to a wire, the first electromagnetic wave is coupled at least in part to a wire surface of the wire and travels at least in part around the wire surface as a second electromagnetic wave, and wherein the second electromagnetic wave has at least one propagation mode of Wave for longitudinal propagation along the wire.
One embodiment of the description includes an apparatus that has a waveguide that facilitates transmission or reception of electromagnetic waves along a wire surface of a wire of an electrical network that also facilitates distribution of electrical energy to devices. The apparatus may further include one or more sensors that facilitate detection of a condition that is adverse to the waveguide, the wire, the transmission or reception of electromagnetic waves that propagate along the wire surface or guide surface of wave, or any combination thereof.
One embodiment of the description includes a method for transmission, by an apparatus having a waveguide and a sensor, of electromagnetic waves that propagate along a wire surface of a wire that facilitates distribution of electrical energy to devices, and detect, by the sensor, a condition that is adverse electromagnetic waves that propagate along the wire surface.
One embodiment of the description includes a machine-readable storage medium (for example, computer readable, processor readable, eg equitable instructions that, when executed by a processor, facilitate performance of operations, which include inducing with. or through a waveguide, electromagnetic waves guided along a surface of a transmission medium, and collecting detection data from a sensor, the detection data associated with a condition that is adverse to electromagnetic waves guided by along the surface of the transmission medium.
One embodiment of the description includes an apparatus that has a processor and a memory. The processor can carry out an operation of receiving telemetry information from a waveguide system coupled to a sensor, detecting from the telemetry information a condition that is adverse to one of waveguide system operations, the Transmission or reception of electromagnetic waves along the wire surface or waveguide surface, or a combination thereof, and report the condition. The waveguide system may comprise a waveguide that can be placed with respect to a wire of an electrical network that facilitates distribution of electrical energy to devices. The waveguide can also facilitate transmission or reception of electromagnetic waves along a wire surface of the wire, while the sensor can facilitate detection of adverse conditions to electromagnetic waves.
One embodiment of the description includes a method for receiving, by a network element comprising a processor, telemetry information of a waveguide system, determining, by the network element, a condition from the included detection data. in the telemetry information, and transmit, by the network element, instructions to the waveguide system to adjust a route of the electromagnetic waves to avoid or compensate for the determined condition. The waveguide system can facilitate transmission of electromagnetic waves along a wire surface of a wire in an electrical network and. detection of adverse conditions to the transmission or reception of electromagnetic waves.
One embodiment of the description includes a machine-readable storage medium (for example, computer readable, processor readable, etc.), which has executable instructions that, when executed by a processor, facilitate operations performance, which include receiving telemetry information from an apparatus that includes electromagnetic waves on a wire surface of a wire of an electrical network for distribution of communication signals to a receiving communication device coupled to the electrical network, and detecting a condition from telemetry information that is adverse to a distribution of the communication signals to the receiving communication device.
Several modalities described herein refer to a waveguide coupling system for launching and extracting guided wave transmissions (eg, surface wave communications that are electromagnetic waves) of a wire. At millimeter wave frequencies (for example, 30 300 GHz), where the wavelength can be small compared to the size of the equipment, transmissions can be propagated as waves guided by a waveguide, such as a strip or length of dielectric materials or other coupler. The electromagnetic field structure of the guided wave can be inside and / or outside the waveguide. When this length is placed in proximity with a wire (e.g., a public service line or other transmission line), at least a portion of the guided waves are decoupled from the waveguide and coupled to the wire, and continue propagating as guided waves, such as surface waves around the wire surface.
According to an example embodiment, a surface wave is a type of guided wave that is guided by a wire surface, which may include an outer or outer surface of the wire, or another wire surface that is adjacent to or exposed to another type. of medium having different properties (for example, dielectric properties). In fact, in an exemplary embodiment, a wire surface that guides a surface wave can represent a transition surface between two different types of media. For example, in the case of a bare or uninsulated cable, the wire surface may be the outer or outer conductive surface of the bare or uninsulated wire that is exposed to air or free space. As another example, in the case of insulated wire, the wire surface may be the conductive portion of the wire that meets the insulating portion of the wire, or it may otherwise be the insulating surface of the wire that is exposed to air or space readable, or it may be otherwise any region of material between the insulating surface of the wire and the conductive portion of the wire that is
<img file="MX364594B_D0002.tif" />
with the insulating portion of the wire, depending on the relative differences in properties (e.g., properties and / or the conductor and also dependent on the frequency and mode or modes of propagation of the guided wave.
According to an exemplary embodiment, guided waves such as surface waves can be compared with radio transmissions through free space / air or conventional propagation of electrical energy or signals through the wire conductor. In reality, with guided wave systems or surface waves described herein, conventional electrical signals or energy can still be propagated or transmitted through the wire conductor, while guided waves (which include surface waves and other electromagnetic waves ) can be propagated or transmitted around the wire surface, according to an example embodiment. In one embodiment, a surface wave may have a field structure (for example, an electromagnetic field structure) that is primarily or substantially outside the line, wire, or transmission medium that serves to guide the surface wave.
According to an example modality, the electromagnetic waves that travel along the wire and
If around the outer surface of the wire they are induced by other electromagnetic waves that travel along a waveguide in proximity to the wire. The induction of the electromagnetic waves can be independent of any electrical potential, charge or current that is adjacent or is otherwise transmitted through the wires as part of an electrical circuit. It will be appreciated that while a small current can be formed in the wire in response to the propagation of the electromagnetic wave along the wire, this may be due to the propagation of the electromagnetic wave along the surface of the wire, and is not formed in response to the potential, charge or electrical current that is adjacent to the wire as part of an electrical circuit. Electromagnetic waves that travel over the wire therefore do not require a circuit to propagate along the wire surface. The wire is therefore a single wire transmission line that is not part of a circuit. Also, in some embodiments, a wire is not necessary, and electromagnetic waves can propagate along a single-line transmission medium that is not a wire.
According to an example embodiment, the term around a wire used in conjunction with a guided wave (for example, surface wave) may include fundamental wave propagation modes and other guided waves that have a circular or substantially circular field distribution ( for example, electric field, magnetic field, electromagnetic field, etc.), at least partially around a wire or other means of transmission. In addition, when a guided wave propagates around a wire or other transmission medium, it can do so in accordance with a wave propagation mode that includes not only the fundamental modes of wave propagation (for example, zero order modes) but in addition or alternatively other non-fundamental wave propagation modes such as higher order guided wave modes (for example, 1-mode modes<sup>er</sup> order, modes 2<sup>d0</sup> order, etc.), asymmetric modes and / or other guided waves (eg, surface) that have non-circular field distributions around a wire or other transmission medium.
For example, these non-circular field distributions may be unilateral or multilateral with one axial lobes characterized by relatively greater field intensity and / or one or more null or null regions characterized by relatively low field strength, zero intensity field intensity substantially zero field.
In addition, the field distribution may vary in another way as a function of a longitudinal axial orientation around the wire such that one or more regions of the axial orientation around the wire have. an electric or magnetic field strength (or combination thereof) that is greater than one or more other regions of the axial orientation, according to an example embodiment. It will be appreciated that the relative positions of the higher wave order modes or asymmetric modes may vary as the guided wave travels along the wire.
Referring now to FIG. 1, a block diagram is shown illustrating a non-limiting mode, for example of a guided wave communication system 100. The guided wave communication system 100 represents an example environment in which a dielectric waveguide coupling system can be used.
The guided wave communication system 100 may be a distributed antenna system that includes one or more base station devices (for example, base station device 104) communicatively coupled to a macrocell site 102 or other connection of net. The base station device 104 can be connected via a wired connection (for example, fiber optic and / or cable), or wireless (for example, microwave wireless) to the macrocell site 102. Macro cells such as the macrocell site 102 may have dedicated connections to the mobile network and the base station device 104 may share and / or otherwise use the connection of the macrocell site 102. The base station device 104 may be mounted on, or joining, public service post 116. In other embodiments, the base station device 104 may be near transformers and / or other locations located near a power line.
The base station device 104 may facilitate connectivity to a mobile network by mobile devices 122 and 124. Antennas 112 and 114, mounted on or near public service poles 118 and 120, respectively, may receive signals from the base station device 104 and transmitting those signals to mobile devices 122 and 124 over a much wider area than if antennas 112 and 114 were placed at or near the base station device 104.
It is noted that Figure 1 represents three public service posts, with a base station device, for simplicity purposes. In other embodiments, the public service post 116 may have more base station devices, and one or more public service posts with distributed antennas are possible.
A dielectric waveguide coupling device 106 can transmit the signal from the base station device 104 to antennas 112 and 114 through power or public service lines connecting the public service poles 116,
118 and 120. To transmit the signal, the coupler and / or radio source 106 raises the signal frequency (for example, through frequency mixing) of the base station device 104 or converts signal from the base station device 104 in another way. At a signal, with a millimeter waveband and the dielectric waveguide device 106, it throws millimeter waves that surface wave a propagation band coupling wave like another wave a guided wave (by traveling to wire.
electromagnetic) that along the
In the public service or public service line post 118, another dielectric waveguide coupling device 108 receives the guided wave (and optionally as necessary or desired or operates digitally to receive and regenerate it) in front as a guided wave (for example, another electromagnetic wave) in the line of can as and the wave amplify it a repeater sends to surface or public service or other wire. The dielectric waveguide coupling device
108 you can also extract a signal from the guided wave of the millimeter wave band, reduce it in frequency, or convert it to its original cell band frequency (for example,
1.9
GHz or other defined cell frequency) or other cell band (or non-cell) frequency. An antenna 112 can transmit (for example, wirelessly transmit) the reduced frequency signal to the mobile device 122. The process can be repeated by the dielectric waveguide coupling device 110, antenna 114 and mobile device 124, as necessary or desirable.
Transmissions of mobile devices 122 and 124 can also be received by antennas 112 and 114 respectively. Repeaters in ... the dielectric waveguide coupling devices 108 and 110 can raise the frequency or otherwise convert the cell band signals to the millimeter waveband and transmit the signals as guided wave transmissions (e.g., surface wave or other electric lines to the electromagnetic wave) through base station device 104.
In an example mode, the system
100 You can use diversity routes, where two or more public service lines or other wires are strung between public service posts 116, 118, and 120 (for example, two or more wires between posts 116 and 120) and transmitted redundant transmissions of base station 104 as guided waves down the surface of public service lines or other wires. Public service lines or other wires can be either isolated or non-isolated, and depending on the environmental conditions that cause transmission losses, the coupling devices can selectively receive signals from the public service lines, isolated or non-isolated or other wires Selection based on measurements of the signal to noise ratio of the wires, or based on the determined environmental / climatic conditions (for example, humidity detectors, weather forecasts, etc.). The use of diversity routes with the system 100 may allow for alternate routing capabilities, load balancing, increased load handling, concurrent synchronous or bidirectional communications, spread spectrum communications, etc., (see Figure 8 for more illustrative details).
It is noted that the use of the dielectric waveguide coupling devices 106, 108 and 110 in Figure 1 are by way of example only, and that other uses are possible in other embodiments. For example, dielectric waveguide coupling devices can be used in a re-routing communication system, which provides network connectivity to base station devices. Dielectric waveguide coupling devices can be used in many circumstances where it is desirable to transmit guided wave communications through a wire, either isolated or non-isolated. The dielectric waveguide coupling devices are improvements with respect to other coupling devices due to the lack of contact or electrical and / or physical contact limited with the wires that can carry high voltages. With dielectric waveguide coupling devices, the apparatus is. it can be placed far from the wire (for example, separated from the wire) and / or placed on the wire as long as it is not electrically in contact with the wire, since the dielectric acts as an insulator, which allows economical, easy installation, and / or less complex. However, as previously indicated, conductive or non-dielectric couplers can be used, for example in configurations where the wires correspond to a telephone network, cable television network, broadband data service, fiber optic communications system or other network that uses low voltages or that has isolated transmission lines.
It is further pointed out that, while the base station device 104 and the macrocell site 102 are illustrated in one embodiment, other network configurations are equally possible. For example, devices such as access points or other wireless gateways can be used in a similar manner to extend the
<td>scope of</td><td>other</td><td>s networks</td><td>such</td><td colspan="3">as a local area network</td>
<td>wireless,</td><td>a</td><td>network of</td><td>area</td><td>personal</td><td>wireless or other</td><td>net</td>
<td>wireless</td><td>what</td><td>Opera</td><td>from</td><td>agreement</td><td>with a protocol</td><td>from</td>
communication such as an 802.11 protocol, WIMAX protocol, ultra-wideband protocol, Bluetooth protocol, Zigbee protocol, or other wireless protocols.
Turning now to Figure 2, a block diagram of a non-limiting embodiment is illustrated, for example of a dielectric waveguide coupling system 200 in accordance with different aspects described herein. The system 200 comprises a dielectric waveguide 204 having a wave 20 6 that propagates as a guided wave around a waveguide surface of the dielectric waveguide 204. In one embodiment, the dielectric waveguide 204 is curved, and at least a portion of waveguide 204 can be placed near a wire 202 in order to facilitate coupling between waveguide 204 and wire 202, as It is described herein. The dielectric waveguide 204 can be positioned such that a portion of the curved dielectric waveguide 204 is parallel or substantially parallel to the wire 202. The portion of the dielectric waveguide 204 that is parallel to the wire may be an apex of the curve, or any point where a tangent of the curve is parallel to the wire 202. When the
<img file="MX364594B_D0003.tif" />
Dielectric waveguide 204 is positioned or positioned in this way, the wave 206 that travels along the dielectric waveguide 204 is coupled at least in part to the wire 202, and propagates as a guided wave 208 around or near the wire surface of wire 202 and longitudinally along the wire
202. The guided wave 208 can be characterized as a surface wave or other electromagnetic wave, although other types of guided waves 208 can also be supported without departing from the example embodiments. A portion of the wave 206 that does not engage the wire 202 is propagated as a wave 210 along the dielectric waveguide 204.
It will be appreciated that the dielectric waveguide 204 can be configured and arranged in a variety of positions with respect to the wire
202 to achieve a desired level of coupling or non-coupling of wave 206 to the wire
202. For example, the curvature and / or length of the dielectric waveguide 204 that is parallel or substantially parallel, as well as its separation distance (which may include zero separation distance in one embodiment), to wire 202 can be varied without separate from example modalities. Similarly, the arrangement of the dielectric waveguide 204 with respect to the wire 202 can be varied based on considerations of the respective intrinsic characteristics (eg, thickness, composition, electromagnetic properties, etc.), of the wire 202 and the dielectric waveguide 204, as well as the characteristics (for example, frequency, energy level, etc.), of waves 206 and 208.
Guided wave 208 remains parallel or substantially parallel to wire 202, even as wire 202 bends and flexes. Push-ups in wire 202 can increase transmission losses, which are also dependent on wire diameters, frequency, and materials. If the dimensions of the dielectric waveguide 204 are chosen for efficient energy transfer, most of the energy in wave 206 is transferred to wire 202, with little energy remaining in wave 210. It will be appreciated that guided wave 208 can still be multimodal by nature (discussed herein), which includes that it has modes that are not fundamental or asymmetric, while traveling along a route that is parallel or substantially parallel to the wire. 202, with or without a fundamental transmission mode. In one embodiment, non-fundamental or asymmetric modes can be used to minimize transmission losses and / or obtain increased propagation distances.
It is noted that the parallel term is generally a geometric construction that is often not exactly achievable in real systems. Consequently, the parallel term as used in the description represents an approximation rather than an exact configuration when used to describe modalities described in the description. In one embodiment, substantially parallel can include approximations that are within 30 degrees of true parallel in all dimensions.
In one embodiment, wave 206 may exhibit one or more wave propagation modes. The dielectric waveguide modes may be dependent on the shape and / or design of the waveguide 204. The one or more wavelength waveguide modes of the wave 206 may generate, influence, or impact one or more. wave propagation modes of the guided wave 208 that propagates along the wire 202. In one embodiment, the wave propagation modes on the wire 202 may be similar to the dielectric waveguide modes since both waves 206 and 208 propagate around the outside of the dielectric waveguide 204 and wire 202 respectively. In some embodiments, as wave 206 is coupled to wire 202, the modes may change shape, or new modes may remain or be created or generated, due to the coupling between dielectric waveguide 204 and wire 202. For example, differences in size, material, and / or impedances of the dielectric waveguide 204 and wire 202 may create additional modes not present in the dielectric waveguide modes and / or suppress some of the waveguide modes. dielectric The wave propagation modes may comprise the fundamental transverse electromagnetic mode (Quasi-TEMoo), where only small electric and / or mechanical fields extend in the direction of propagation, and the electric and mechanical fields extend radially outward as long as that the guided wave propagates along the wire. This guided wave mode can be donut-shaped, where few of the electromagnetic fields exist within the dielectric waveguide 204 or wire 202.
Waves 206 and 208 may comprise a fundamental TEM mode where the fields extend radially outward, and also comprise other non-fundamental modes (eg, asymmetric, higher level, etc.). While particular wave propagation modes are discussed above, other wave propagation modes such as transverse electrical modes transverse dielectric frequencies employed are also possible, the design
204, dimensions and (TM), based on those of the waveguide wire composition
202, as well as its surface characteristics, its optional insulation, the electromagnetic properties of the surrounding environment, etc. It should be noted that, depending on the frequency, the electrical and physical characteristics of the wire 202 and the particular wave propagation modes that are generated, the guided wave 208 can travel along the conductive surface of an oxidized non-insulated wire, a non-oxidized non-insulated wire, an insulated wire and / or along the insulating surface of an insulated wire.
In one embodiment, a diameter of the dielectric waveguide 204 is smaller than the diameter of the wire 202. For the millimeter band wavelength that is used, the dielectric waveguide 204 supports an individual waveguide mode that conforms wave 206. This individual waveguide mode may change as wire 202 is coupled as surface wave 208. If the dielectric waveguide 204 is larger, more than one waveguide mode may be supported, but these additional waveguide modes may not engage the wire 202 so efficiently, and greater coupling losses may result. However, in some alternative embodiments, the diameter of the dielectric waveguide 204 may be equal to or larger than the diameter of the wire 202, for example, where greater coupling losses are desirable or when used in conjunction with others.
techniques for otherwise reducing coupling losses (eg impedance coupling with reduction, etc.).
In one embodiment, the wavelength of waves 206 and 208 are comparable in size, or smaller than a circumference of the dielectric waveguide 204 and wire 202. In one example, if wire 202 has a diameter of 0.5 cm, and a corresponding circumference of about 1.5 cm, the transmission length is about 1.5 cm or less, corresponding to a frequency of 20 GHz or more. In another embodiment, an adequate frequency of the transmission and the carrier wave signal is in the range of 30-100 GHz, perhaps around 30-60 GHz, and about 38 GHz in one example. In one embodiment, when the circumference of the dielectric waveguide 204 and wire 202 is comparable in size with, or greater than, a transmission wavelength, waves 206 and 208 may exhibit multiple wave propagation modes that they include fundamental and / or non-fundamental modes (symmetric and / or asymmetric) that propagate over sufficient distances to support different communication systems described herein. The waves 206 and 208 can therefore comprise more than one type of electric and magnetic field configuration. In one mode, according to the wave
If guided 208 is propagated by wire 202, the electric and magnetic field configurations will remain the same from end to end of wire 202. In other embodiments, as guided wave 208 encounters interference or loses energy due to transmission losses, the configurations of Electric and magnetic field can change as guided wave 208 is propagated by wire 202.
In one embodiment, the dielectric waveguide 204 may be composed of nylon, Teflon, polyethylene, a polyamide, or other plastics. In other embodiments, other dielectric materials are possible. The wire surface of the wire 202 may be metallic with either a bare metal surface, or it may be insulated using plastic, dielectric, insulator or other coating. In one embodiment, a dielectric or otherwise non-conductive / insulated waveguide can be matched with either a bare / metallic wire or insulated wire. In other embodiments, a metallic and / or conductive waveguide can be paired with a bare / metallic wire or insulated wire. In one embodiment, an oxidation layer on the bare metal surface of the wire 202 (for example, resulting from exposure of the bare metal surface to oxygen / air) can also provide insulation or dielectric properties similar to those provided by some insulators or coatings .
It is noted that the graphical representations of waves 206, 208 and 210 are simply presented to illustrate the principles that wave 206 induces or otherwise launches a guided wave 208 on a wire 202 that operates, for example, as a transmission line of single wire Wave 210 represents the portion of wave 206 that remains in dielectric waveguide 204 after generation of guided wave 208. The actual magnetic and electric fields generated as a result of this wave propagation may vary depending on the frequencies employed, the particular wave propagation mode or modes, the design of the dielectric waveguide 204, the dimensions and composition of the wire 202 , as well as its surface characteristics, its optional insulation, the electromagnetic properties of the surrounding environment, etc.
It is noted that the dielectric waveguide 204 may include a termination circuit or regulator 214 of the end of the dielectric waveguide 204 that can absorb excess radiation or wave energy 210. The termination circuit or regulator 214 may prevent and / or minimize the excess radiation or wave 210 energy that is reflected back to the transmitter circuit 212. In one embodiment, the termination circuit or regulator 214 may include termination resistors, and / or other components that perform impedance coupling to attenuate the reflection. In some embodiments, if the coupling efficiencies are sufficiently high, and / or the wave 210 is sufficiently small, it may not be necessary to use a termination circuit or regulator 214. For simplicity, this transmitter and termination circuits or regulators 212 and 214 are not represented in the other figures, but in those embodiments, the transmitter and termination circuits or regulators may possibly be used.
In addition, as long as an individual dielectric waveguide 204 is presented which generates an individual guided wave 208, multiple dielectric waveguide 204 can be used positioned at different points along the wire 202 and / or at different axial orientations around the wire. to generate and receive multiple guided waves 208 at the same or different frequencies, at the same or different phases, in the same or different wave propagation modes. The guided wave or waves 208 can be modulated to transport data through a modulation technique such as phase shift modulation, frequency shift modulation, quadrature amplitude modulation, amplitude modulation, multi-carrier modulation and through techniques of multiple access such as frequency division multiplexing, time division multiplexing, code division multiplexing, multiplexing through different wave propagation modes and through other modulation and access strategies.
Turning now to Figure 3, a block diagram of a non-limiting embodiment is illustrated, for example of a dielectric waveguide coupling system 300 according to different aspects described herein. The system 300 comprises a dielectric waveguide 304 and a wire 302 having a wave 306 that propagates as a guided wave around a wire surface of the wire 302. In an exemplary embodiment, wave 306 can be characterized as a surface wave or other electromagnetic wave.
In an exemplary embodiment, the dielectric waveguide 304 is curved or otherwise has a curvature, and can be placed near a wire 302 such that a portion of the curved dielectric waveguide 304 is parallel or substantially parallel. to wire 302. The portion of dielectric waveguide 304 that is parallel to the wire can be an apex of the curve, or any point where a tangent of the curve is parallel to wire 302. When the dielectric waveguide 304 is near the wire, the guided wave 306 that travels along the wire 302 can be coupled to the dielectric waveguide 304 and propagated as a guided wave 308 around the dielectric waveguide 304. A portion of the guided wave 306 that is not coupled to the dielectric waveguide 304 is propagated as guided wave 310 (eg, surface wave or other electromagnetic wave) along the wire 302.
Guided waves 306 and 308 remain parallel to wire 302 and dielectric waveguide 304, respectively, even as wire 302 and dielectric waveguide 304 flex and bend. Push-ups can increase transmission losses, which are also dependent on wire diameters, frequency, and materials. If the dimensions of the dielectric waveguide 304 are chosen for efficient energy transfer, the majority of the energy in the guided wave 306 is coupled to the dielectric waveguide 304 and there is little left in the guided wave 310.
In one embodiment, a receiver circuit may be placed at the end of waveguide 304 in order to receive wave 308. A termination circuit may be placed at the opposite end of waveguide 304 in order to receive guided waves. traveling in the opposite direction to the guided wave 306 that are coupled to the waveguide 304. The termination circuit would thus help to prevent and / or minimize the reflections received by the receiving circuit. If the reflections are small, the termination circuit may not be necessary.
It is noted that the dielectric wave quia 304 can be configured such that the selected polarizations of the surface wave 306 are coupled to the dielectric waveguide 304 as guided wave 308. For example, if the guided wave 306 is composed of waves Guided or wave propagation modes with respective polarizations, dielectric waveguide 304 may be configured to receive one or more guided waves of selected polarizations. The guided wave 308 that is coupled to the dielectric waveguide 304 is therefore the set of guided waves that correspond to one or more of the selected polarizations, and in addition the guided wave 310 can comprise the guided waves that do not couple to Selected polarizations.
The dielectric waveguide 304 can be configured to receive guided waves of a particular polarization based on an angle / rotation around the wire 302 where the dielectric waveguide 304 is placed. For example, if the guided wave 306 is polarized from horizontally, most of the guided wave 306 is transferred to the dielectric waveguide as wave 308. As dielectric waveguide 304 is rotated 90 degrees around wire 302, although, most of the energy of guided wave 306 would remain coupled to the wire as guided wave 310, and only a small portion would be coupled to wire 302 as wave 308.
It is noted that waves 306, 308, and 310 are shown using three circular symbols in Figure 3 and in other figures in the specification. These symbols are used to represent a general guided wave, but do not imply that waves 306, 308, and 310 are necessarily circularly polarized or otherwise circularly oriented. In fact, waves 306, 308, and 310 may comprise a fundamental TEM mode where the fields extend radially outward, and also comprise other non-fundamental modes (eg, higher level, etc.). These modes can be asymmetric (for example, radial, bilateral, trilateral, quadrilateral, etc.), by nature as well.
It is also noted that wire guided wave communications can be duplex, which allow simultaneous communications in both directions. Waves that travel in one direction can pass through waves that travel in an opposite direction. Electromagnetic fields can be canceled at certain points and for a short time due to the principle of superposition as applied to waves. The waves that travel in opposite directions propagate as if the other waves were not there, but the
If compound effect for an observer can be a standing wave pattern. As guided waves pass through each other and are no longer in a state of overlap, interference decreases. As a guided wave (for example, surface wave or other electromagnetic wave is coupled to a waveguide and any interference due to other guided waves (for example, surface waves or other electromagnetic wave) moves away from the wire. In one embodiment, as guided wave 306 (e.g., surface wave or other electromagnetic wave) approaches dielectric waveguide 304, another guided wave (e.g., surface wave or other electromagnetic wave) (not shown) traveling from left to right on wire 302 passes causing local interference. As guided wave 306 is coupled to dielectric waveguide 304 as wave 308, and moves away from wire 302, any interference due to the through guided wave decreases.
It is noted that the graphical representations of waves 306, 308 and 310 are presented simply to illustrate the principles that guided wave 306 induces or otherwise launches a wave 308 on a dielectric waveguide 304. Guided wave 310 represents the portion of guided wave 306 that remains on wire 302 after wave generation
308 The actual magnetic and electric fields generated as a result of this guided wave propagation may vary depending on one or more of the shape and / or design of the dielectric waveguide, the relative position of the dielectric waveguide to the wire, the frequencies used, the design of the dielectric waveguide 304, the dimensions and composition of the wire 302, as well as its surface characteristics, its optional insulation, the electromagnetic properties of the surrounding environment, etc.
Turning now to Figure 4, a diagram of
<td>blocks</td><td>from</td><td>a modality</td><td colspan="2">not limiting,</td><td>example of</td><td>a</td>
<td>system</td><td>from</td><td>coupling of</td><td>guide</td><td>cool</td><td>400 dielectric</td><td>from</td>
<td>agreement</td><td>with</td><td colspan="2">different aspects</td><td>described</td><td>at the moment.</td><td>The</td>
<td>system</td><td> 400</td><td>comprises a</td><td>guide</td><td>cool</td><td>404 dielectric</td><td>what</td>
it has a wave 406 that propagates as a guided wave around a waveguide surface of the dielectric waveguide 404. In one embodiment, the dielectric waveguide 404 is curved, and one end of the dielectric waveguide 404 it can be tied, fastened, or mechanically coupled to a wire 402. When the end of the dielectric waveguide 404 is attached to the wire 402, the end of the dielectric waveguide 404 is parallel or substantially parallel to the wire 402. Alternatively, another portion of the waveguide can be held
40 'dielectric beyond one end or coupled to the wire 402 such that the fastened or coupled portion is parallel or substantially parallel to the wire 402. The coupling device 410 can be a nylon cable tie or other non-conductive material / dielectric that is either separated from the dielectric waveguide 404 or constructed as an integrated component of the dielectric waveguide 404. The dielectric waveguide '404 can be adjacent to the wire 402 without circling the wire 402.
When the dielectric waveguide 404 is positioned with the end parallel to the wire 402, the guided wave 406 that travels along the dielectric waveguide 404 is coupled to the wire 402, and propagates as a guided wave 408 around the surface wire wire 402. In an exemplary embodiment, guided wave 408 can be characterized as a surface wave or other electromagnetic wave.
It is noted that the graphical representations of waves 406 and 408 are simply presented to illustrate the principles that wave 406 induces or otherwise launches a guided wave 408 on a wire 402 that propagates, for example, as a transmission line of a wire only Actual magnetic and electric fields generated as a result of this wave propagation may vary depending on one or more of the shape and / or design of the dielectric waveguide, the relative position of the dielectric waveguide to the wire, the frequencies used , the design of the dielectric waveguide
404, wire dimensions and composition
404, as well as its surface characteristics, its optional insulation, the electromagnetic properties of the surrounding environment, etc.
In one embodiment, one end of the dielectric waveguide
404 It can be tapered towards the wire 402 in order to increase the coupling efficiencies. In fact, the decrease in the end of the dielectric waveguide 404 may provide impedance coupling to the wire 402, in accordance with an example embodiment of the description. For example, one end of the dielectric waveguide 404 can be tapered gradually so as to obtain a desired level of coupling between waves 406 and 408 as illustrated in Figure 4.
In one embodiment, the coupling device 410 can be positioned such that there is a short length of the dielectric waveguide 404 between the coupling device 410 and one end of the dielectric waveguide 404. Efficiencies are carried out. Maximum coupling when the length of the dielectric waveguide end
404 which is beyond the coupling device 410 is at least several wavelengths long for any frequency that is transmitted.
Turning now to Figure 5, a block diagram of a non-limiting embodiment is illustrated, for example of a dielectric waveguide coupler and transceiver system 500 (collectively referred to herein as system 500) in accordance with different aspects described in the present. The system 500 comprises a transmitter / receiver device 506 that releases and receives a wave (for example, guided wave 504 in the dielectric waveguide 502). Guided waves 504 can be used to carry signals received from and sent to a base station 520, mobile devices 522, or a building 524 via a communication interface 501. Communication interface 501 can be an integral part of the system 500 Alternatively, the communication interface 501 can be attached to the system 500. The communication interface 501 may comprise a wireless interface to interface with the base station 520, mobile devices 522, or building 524 using any of different wireless signaling protocols (eg, LTE, WiFi, WiMAX, IEEE 802.xx , etc.). The communication interface 501 may also comprise a wired interface such as a fiber optic line, coaxial cable, twisted pair, or other wired means suitable for transmitting signals to the station
<img file="MX364594B_D0004.tif" />
base 520 or building 524. For modalities where the system
500 works as a repeater, the communications interface
501 It may not be necessary.
The output signals (for example, Tx) of the communication interface 501 may be combined with a millimeter wave carrier wave generated by a local oscillator 512 in the frequency mixer 510. The frequency mixer 510 may use other heterodination techniques. frequency change techniques to change the frequency of the output signals of the communications interface
501.
For example, the signals sent to and from the communications interface
501 they can be modulated signals such as frequency division multiplexed, orthogonal (OFDM) signals in a format according to a wireless Long Term Evolution (LTE) protocol or other 3G, 4G, 5G wireless protocol or superior voice and data protocol , a Zigbee, WIMAX, Ultra Wideband or IEEE 802.11 wireless protocol or other wireless protocol. In an example mode, this frequency conversion can be performed in the analog domain, and as a result, the frequency change can be performed without taking into account the type of communications protocol used by the base station 520, mobile devices' 522 , or devices in building 524. As new communications technologies are developed, the communications interface 501 can be updated or replaced and the transmission and frequency change apparatus can remain, simplifying the updates. The power wave can then be sent to a power amplifier (PA) 514 and can be transmitted through the receiver / transmitter device 506 through the diplexer 516.
The signals received from the transmitter / receiver device 506 that are directed to the communication interface 501 can be separated from other signals through the diplexer 516. The transmission can then be sent to the low noise amplifier (LNA) 518 for amplification. A frequency mixer 521, with the help of local oscillator 512, can reduce the transmission frequency (which is in the millimeter wave band or about 38 GHz in some modes) to the native frequency. The communication interface 501 can then receive the transmission at an input port (Rx).
In one embodiment, the transmitter / receiver device 506 may include a cylindrical or non-cylindrical metal (which, for example, may be hollow in one mode, but is not necessarily drawn to scale) or another conductive or non-conductive waveguide and a end of the 502 dielectric waveguide can be placed in or in proximity to the guide
<img file="MX364594B_D0005.tif" />
wave or the transmitter / receiver device 506 such that when the transmitter / receiver device 506 generates a transmission, the guided wave is coupled to the dielectric waveguide 502 and propagated - like a guided wave 504 around the surface of waveguide of the 502 dielectric waveguide. Similarly, if the guided wave 504 is incoming (coupled to the dielectric waveguide 502 of a wire), the guided wave 504 can then be introduced to the transmitter / receiver device
506 and is coupled to the cylindrical waveguide or conductive waveguide. While the transmitter / receiver device
506 It is shown that it includes a separate waveguide - an antenna, cavity resonator, klystron, magnetron, progressive wave tube, another radiator element can be used to induce a guided wave in the 502 waveguide, without the separate waveguide .
In one embodiment, the dielectric waveguide 502 can be constructed entirely of a dielectric material (or other suitable insulating material), without any metallic material or other material other conductive therein. The dielectric waveguide 502 may be composed of nylon, Teflon, polyethylene, a polyamide, other plastics, or other materials that are not conductive and suitable to facilitate the transmission of electromagnetic waves on an outer surface of these materials. In another embodiment, the dielectric waveguide 502 may include a core that is conductive / metallic, and has an outer dielectric surface. Similarly, a transmission medium that is coupled to the dielectric waveguide 502 for propagation of electromagnetic waves induced by the dielectric waveguide 502 or for supply of., Electromagnetic waves to the dielectric waveguide 502 can be completely constructed of a dielectric material (or other suitable insulating material), without some metallic or other conductive material therein.
It is noted that although Figure 5 shows that the opening of the receiver / transmitter device 506 is much wider than the dielectric waveguide 502, it is not to scale, and that in other embodiments it. width- . of the 502 dielectric waveguide is comparable or slightly smaller than the hollow waveguide opening. Also not shown, but in one embodiment, one end of the waveguide 502 that is inserted into the transmitter / receiver device 506 is tapered downward in order to reduce reflection and increase coupling efficiencies.
The transmitter / receiver device 506 can be communicatively coupled to an interface of. communications 501, and alternatively, the transmitter / receiver device 506 can also be communicatively coupled to the one or more distributed antennas 112 and 114 shown in Figure 1. In other embodiments, the transmitter / receiver device 506 may comprise part of a repeater system for a redirection network.
Before coupling to the dielectric waveguide 502, the one or more waveguide modes of the guided wave generated by the transmitter / receiver device 506 may be coupled to one or more wave propagation modes of the guided wave 504. The Wave propagation modes may be different from hollow metal waveguide modes due to the different characteristics of the hollow metal waveguide and the dielectric waveguide. For example, the wave propagation modes may comprise the fundamental transverse electromagnetic mode (Quasi-TEMoo), where only small electric and / or magnetic fields extend in the direction of propagation, and the electric and magnetic fields extend radially outward of the 502 dielectric waveguide while the guided waves propagate along the 502 dielectric waveguide. The fundamental transverse electromagnetic wave propagation mode does not exist within a waveguide that is hollow. Therefore, the hollow metal waveguide modes that are used by the transmitter / receiver device 506 are waveguide modes that can be effectively and efficiently coupled to the wave propagation modes of the waveguide. 502 dielectric wave.
Turning now to Figure 6, a block diagram illustrating a non-limiting embodiment is illustrated, for example of a dual-dielectric waveguide coupling system 600 in accordance with different aspects described herein. In one embodiment, two or more dielectric waveguides (for example, 604 and 606) can be placed around a wire 602 in order to receive guided wave 608. In one embodiment, the guided wave 608 can be characterized as a surface wave or other electromagnetic wave. In one embodiment, a dielectric waveguide is sufficient to receive the guided wave 608. In that case, the guided wave 608 is coupled to the dielectric waveguide 604 and propagated as a guided wave 610. If the field structure of the guided wave 608 oscillates or undulates around the wire 602 due to different external factors, then the dielectric waveguide 606 can be positioned such that the guided wave 608 is coupled to the dielectric waveguide 606 In some embodiments, four or more dielectric waveguides may be placed around a portion of the wire 602, for example, at 90 degrees or other separation from each other, in order to receive guided waves that can oscillate or rotate. around the wire 602, which have been induced to different axial orientations or that have non-fundamental or higher order modes that, for example, have lobes and / or nulls or other asymmetries that are dependent on the orientation. However, it will be appreciated that there may be less or more than four dielectric waveguides placed around a portion of the wire 602 without departing from the example embodiments. It will also be appreciated that while some exemplary embodiments have presented a plurality of dielectric waveguides around at least a portion of a wire 602, this plurality of dielectric waveguides can also be considered as part of a single guidance system of dielectric wave that has multiple subcomponents of dielectric waveguide. For example, two or more dielectric waveguides can be manufactured as a single system that can be installed around a wire in an individual installation such that the dielectric waveguides are either pre-positioned or adjustable one with respect to to the other (either manually or automatically) according to the individual system. Receivers coupled to dielectric waveguides 606 and 604 can use diversity combination to combine signals received from both dielectric waveguides 606 and 604 in order to maximize the signal quality. In other modalities, if one or the other of
<img file="MX364594B_D0006.tif" />
A dielectric waveguide 604 and 606 receives a transmission that is above a predetermined threshold, the receivers can use selection diversity when deciding which signal to use.
It is noted that the graphical representations of waves 608 and 610 are presented simply to illustrate the principles that guided wave 608 induces or otherwise launches a wave
<td>610 envelope</td><td>a 604 dielectric waveguide. Fields</td>
<td>magnetic</td><td>and actual electrical generated as a result of</td>
this wave propagation may vary depending on the
<td>frequencies</td><td>employed, waveguide design</td>
<td>dielectric</td><td>604, wire dimensions and composition</td>
<td>602 as well</td><td>as its surface characteristics, its</td>
<td>isolation</td><td>optional, the electromagnetic properties of</td>
surrounding environment, etc.
Turning now to Figure 7, a diagram of
<td>blocks of</td><td>a non-limiting mode, example of a</td>
Bi-directional dielectric waveguide coupling system 700 according to different aspects described herein. In system 700, two dielectric waveguides 704 and 714 can be placed near a wire 702 such that guided waves (e.g., surface waves or other electromagnetic waves) that propagate along the wire '702 are they couple the dielectric waveguide 704 as waves 706, and then they are augmented or repeated by the repeater device 710 and launched as a guided wave 716 to the dielectric waveguide 714. The guided wave 716 can then be coupled to the wire 702 and continues to propagate along the wire 702. In one embodiment, the repeater device 710 can receive at least a portion of the energy used for augmentation or repetition through the magnetic coupling with wire 702, which can be a power line.
In some embodiments, the repeater device 710 may repeat the transmission associated with wave 706, and in other embodiments, the repeater device 710 may be associated with a distributed antenna system and / or base station device located near the repeater device 710. The receiving waveguide 708 can receive wave 706 from the dielectric waveguide 704 and the transmitting waveguide 712 can launch the guided wave 716 to the dielectric waveguide 7.14. Between the receiving waveguide 708 and the transmitting waveguide 712, the signal can be amplified to correct signal loss and other inefficiencies associated with guided wave communications or the signal can be received and processed to extract the data contained in the same and regenerate for transmission. In one embodiment, a signal can be extracted from the transmission and processed and broadcast in another way to nearby mobile devices through distributed antennas communicatively coupled to the repeater device 710. Similarly, signals and / or communications received by the antennas distributed can be inserted into the transmission that is generated and launched to the dielectric waveguide 714 by the transmitter waveguide 712. Accordingly, the repeater system 700 shown in Figure 7 may be comparable in function with the dielectric waveguide coupling device 108 and 110 in Figure 1.
It is noted that although Figure 7 shows transmissions of guided waves 706 and 716 entering the left side and leaving the right side respectively, this is simply a simplification and is not intended to be limiting. In other embodiments, the receiver waveguide 708 and transmitter waveguide 712 can function as transmitters and receivers respectively, which allows the repeater device 710 to be bidirectional.
In one embodiment, the repeater device 710 may be placed in locations where there are discontinuities or obstacles in the wire 702. These obstacles may include transformers, connections, utility poles, and other power line devices. The repeater device 710 can help guided waves (for example, surface waves) to jump over these obstacles in the line and increase the transmission power at the same time. In other embodiments, a dielectric waveguide can be used to jump over the obstacle without the use of a repeater device. In that mode, both ends of the dielectric waveguide can be attached or attached to the wire, thus providing a route for the guided wave to travel without being blocked by the obstacle.
Turning now to Figure 8, a block diagram of a non-limiting embodiment is illustrated, for example of a bidirectional dielectric waveguide coupler 800 according to different aspects described herein. The bi-directional dielectric waveguide coupler 800 can employ diversity routes in the case when two or more wires are strung between public service poles. Since guided wave transmissions have different transmission efficiencies and coupling efficiencies for insulated wires and non-insulated wires based on weather, precipitation and atmospheric conditions, it can be advantageous to selectively transmit either on an insulated wire or non-wire. Isolated at certain times.
In the mode shown in Figure 8, the repeater device uses a receiver waveguide 808 to receive a guided wave that travels along the non-insulated wire.
802 and repeat the transmission using the transmitter waveguide 810 as a guided wave along the insulated wire 804. In other embodiments, the repeater device can switch from the insulated wire 804 to the uninsulated wire 802, or it can repeat the transmissions along of the same routes, the repeater device 806 may include sensors, or be in communication with sensors indicating conditions that may affect transmission. Based on the feedback received from the sensors, the repeater device 806 can make the determination about whether to maintain the transmission along the same wire, or transfer the transmission to the other wire.
Turning now to Figure 9, a block diagram illustrating a non-limiting mode is illustrated, for example of a two-way repeater system 900. The two-way repeater system 900 includes waveguide coupling devices 902 and 904 that receive and transmit transmissions of other coupling devices - located in a distributed antenna system or re-addressing system.
In different embodiments, the waveguide coupling device 902 can receive a transmission from another waveguide coupling device, wherein the transmission has a plurality of subcarriers. The diplexer 906 can separate the transmission from other transmissions, and direct the transmission to the low noise amplifier (LNA) 908. A frequency mixer
928, with the help of a local oscillator
912, you can reduce the is in the band of millimeter waves or about 38
GHz in some modes) at a lower frequency, if it is a cell band (~ 1.9
GHz) for a distributed antenna system, a native frequency, or another frequency for a redirection system. An extractor 932 can extract the signal on the subcarrier that corresponds to the antenna or other component of the output 922 and directs the signal to the output component 922.
For signals that are not extracted at this antenna location, the extractor 932 can redirect them to another frequency mixer 936, where the signals are used to modulate a carrier wave generated by the local oscillator 914. The carrier wave, with its subcarriers, is directs a power amplifier (PA) 916 and is retransmitted by the waveguide coupling device 904 to another repeater system, through the diplexer 920.
distributed of antennas), a PA 924 can increase the signal for transmission to the mobile device. An LNA 926 can be used to amplify weak signals that are received from the mobile device and then send the signal to a multiplexer
934 which combines the signal with signals that have been received from the waveguide coupling device 904. The signals received from the coupling device 904 have been divided by the diplexer 920, and then passed through the LNA 918, with frequency reduction by the 938 frequency mixer. When the signals are combined by the multiplexer 934, they are increased in frequency by the frequency mixer 930, and then increased by the PA 910, and transmitted again to the launcher or another repeater by the waveguide coupling device 902 In one embodiment, the bidirectional repeater system 900 may be only a repeater without the antenna / output device
922.
It will be appreciated that in some embodiments, a bidirectional repeater system 900 can also be implemented using two separate and separate unidirectional repeaters. In an alternative embodiment, a bidirectional repeater system 900 can also be an amplifier or otherwise carry out retransmissions without reduction and increase in frequency.
In fact, in the exemplary mode, retransmissions can be based on the reception of a guided signal or wave and carrying out some guided wave or signal processing or reformation, filtration, and / or amplification, before the signal retransmission u wave, guided.
Turning now to Figures 10A, 10B, and 10C, block diagrams of non-limiting embodiments are illustrated, for example, of a slotted waveguide coupler 1000 according to different aspects described herein. In Fig. 10A, the waveguide coupler system comprises a wire 1006 that is positioned relative to a waveguide 1002, such that the wire 1006 fits into or near a groove formed in the waveguide 1002 that extends longitudinally with respect to the wire 1004. The opposite ends 1004a and 1004b of the waveguide 1002, and the waveguide itself 1002, surround less than 180 degrees of the wire surface of the wire 1006.
In Figure 10B the waveguide coupler system comprises a wire 1014 that is positioned with respect to a waveguide 1008, such that the wire 1014 fits into or near a groove formed in the waveguide 1008 that is extends longitudinally with respect to the wire 1004. The groove surfaces of the waveguide 1008 may not be parallel, and two different example embodiments are shown in Figure 10B. In the first, the groove surfaces 1010a and 1010b may be non-parallel and point outward, slightly wider than the width of the wire 1014. In the other embodiment, the groove surfaces 1012a and 1012b may still be non-parallel, but narrow. to form a slot opening smaller than a width of the wire 1014. A range of angles of non-parallel groove surfaces is possible, of which these are two example embodiments.
In Figure 10C, the waveguide coupler system shows a wire 1020 that fits into a groove formed in the waveguide 1016. The groove surfaces 1018a and 1018b in this example embodiment can be parallel, but the axis 1026 of the wire 1020 does not align with the axis 1024 of the waveguide 1016. The waveguide 1016 and the wire 1020 therefore do not align coaxially. In another embodiment, shown, a possible position of the wire at 1022 also has an axis 1028 that does not align with the axis 1024 of the waveguide 1016.
It will be appreciated that while three different modalities showing a) waveguide surfaces that surround less than 180 degrees of the wire, b) non-parallel groove surfaces, and c) waveguide and coaxially non-aligned wires They showed separately in Figures 10A, 10B and 10C, in different modalities, various combinations of the listed features are possible.
Turning now to Figure 11, a non-limiting embodiment is illustrated, for example of a coupling system of
<img file="MX364594B_D0007.tif" />
1100 waveguide according to different aspects described herein. Figure 11 represents a cross-sectional representation of the wire and waveguide modalities shown in Figures 2, 3, 4, etc. As can be seen in 1100, the wire 1104 can be placed directly next to and touching the waveguide 1102. In other embodiments, as shown in the waveguide coupling system 1200 in Figure 12, the wire 1204 can still be placed nearby, but without actually touching the waveguide strip 1202. In both cases, the electromagnetic waves that travel along the waveguides can induce other electromagnetic waves on the wires and vice versa. Also, in some embodiments, wires 1104 and 1204 are positioned outside the cross-sectional area defined by the outer surfaces of waveguides 1102 and 1202.
For the purposes of this description, a waveguide does not substantially surround a wire surface of a wire when the waveguide does not circle an axial region of the surface, when viewed in cross-section, of more than 180 degrees. For the avoidance of doubt, a waveguide does not substantially surround a surface of a wire when the waveguide circles an axial region of the surface, when viewed in cross-section, of 180 degrees or less.
It will be appreciated that while Figures 11 and 12 show wires 1104 and 1204 that have a circular shape and waveguides 1102 and 1202 that have rectangular shapes, this does not mean that it is limiting. In other embodiments, wires and waveguides may have a variety of shapes, sizes, and configurations. Shapes may include, but are not limited to: ovals or other ellipsoid, octagon, quadrilateral, or other polygons with either sharp or rounded edges, or other shapes. In addition, in some embodiments, the wires 1104 and 1204 may be stranded wires comprising wires of smaller caliber, such as a helical wire, braid or other coupling of individual wires in a single wire. Any of the wires and waveguides shown in the figures and described throughout this description may include one or more of these modalities.
Figure 13 illustrates a process in connection with the aforementioned systems. The process in Figure 13 can be implemented, for example, by the systems 100, 200, 300, 400, 500, 600, 700, 800, and 900 illustrated in Figures 1-9 respectively. While for the sake of simplicity of explanation, the process is shown and described as a series of blocks, it will be understood and appreciated that the claimed matter is not limited by the order of the blocks, since some blocks may be presented in different orders and / or concurrently with other blocks of what is represented and described herein. In addition, not all illustrated blocks may be necessary to implement the methods described hereafter.
Figure 13 illustrates a flow chart of a non-limiting embodiment, for example of a method for transmitting a transmission with a dielectric waveguide coupler as described herein. Method 1300 can begin in 1302 where a first electromagnetic wave is emitted by a transmission device such as a guided wave that propagates at least a part on a waveguide surface of a waveguide, where the guide surface of Waveguide wave does not completely or partially surround a wire surface of a wire. The transmission generated by a transmitter can be based on a signal received from a base station device, access point, network, a mobile device, or other signal source.
In 1304, based on the configuration and positioning of the waveguide in proximity to the wire, the guided wave then couples at least a part of the first electromagnetic wave to a wire surface, which forms a second electromagnetic wave (for example, a surface wave) that propagates at least partially around the wire surface, where the wire is in proximity to the waveguide. This can be done in response to the positioning of a portion of the dielectric waveguide (for example, a tangent of a curve of the dielectric waveguide) close and parallel to the wire, where a length of the electromagnetic wave is smaller than a circumference of the wire and the dielectric waveguide. The guided wave, or surface wave, remains parallel to the wire even as the wire bends and flexes. Push-ups can increase transmission losses, which are also dependent on wire diameters, frequency, and materials. The coupling interface between the wire and the waveguide can also be configured to achieve the desired level of coupling, as described herein, which may include decreasing one end of the waveguide to improve impedance coupling between the waveguide and wire.
The transmission that is emitted by the transmitter may exhibit one or more waveguide modes. Waveguide modes may be dependent on the shape and / or design of the waveguide. The propagation modes in the wire may be different from the waveguide modes due to the different characteristics of the waveguide and the wire. When the circumference of the wire is comparable in size with, or greater than, a transmission wavelength, the guided wave exhibits multiple modes of wave propagation. The guided wave can therefore comprise more than one type of electric and magnetic field configuration. As the guided wave (for example, surface wave) propagates through the wire, the configurations of. field. electrical and magnetic can remain substantially equal from end to
<td>extreme</td><td>of the</td><td>wire c</td><td>' to vary</td><td>according</td><td>the</td><td colspan="2">transmission</td>
<td>go through</td><td>the</td><td>wave by</td><td>rotation,</td><td>dispersion</td><td colspan="2">attenuation</td><td>or</td>
<td colspan="2">other effects</td><td> •</td><td></td><td></td><td></td><td></td><td></td>
<td colspan="3">Figure 14 is a</td><td colspan="2">blocks diagram</td><td>what</td><td colspan="2">illustrates a</td>
<td>modality</td><td>do not</td><td>limiting</td><td>example</td><td colspan="2">of a system</td><td>as guide</td><td>from</td>
<td>wave 1402</td><td>from</td><td>agree with</td><td>different</td><td>; aspects</td><td colspan="2">described in</td><td>the</td>
Present. The .1402 waveguide system may comprise sensors 1404, an energy management system 1405, a waveguide 1406, and a communications interface 1408.
The waveguide system 1402 can be coupled to a power line 1410 to facilitate data communications according to modalities described in the description. In an exemplary embodiment, waveguide 1406 may comprise all or part of the system 500, as shown in Figure 5, to induce electromagnetic waves
Js
......... ** on a surface of the power line 1410 that propagate longitudinally along the surface of the power line 1410 as described in the description. Non-limiting techniques for coupling waveguide 1406 to power line 1410 are shown in Figures 2-4 and 6. Waveguide 1406 can also serve as a repeater to relay electromagnetic waves over the same power line 1410 or to route electromagnetic waves between power lines 1410 as shown in Figures 7-8.
The communication interface 1408 may comprise the communication interface 501 shown in Figure 5, in an exemplary embodiment. Communication interface 1408 is coupled to waveguide 1406 to raise the frequency of signals operating at an original frequency to electromagnetic waves operating at a carrier frequency that propagate on a surface of a coupling device of the guide wave 1406, such as the dielectric 502 of Figure 5, and inducing corresponding electromagnetic waves that propagate on a surface of the power line 1410. The power line 1410 can be a wire (for example, single-wire or multi-wire) having a conductive surface or insulated surface. Communication interface 1408 can also receive signals
<img file="MX364594B_D0008.tif" />
of waveguide 1406 that have been reduced in frequency of electromagnetic waves operating at a carrier frequency to signals at their original frequency.
The signals received by the communications interface 1408 for frequency elevation may include without limitation signals supplied by a base station 1414 through a wired or wireless interface of the communication interface 1408, wireless signals transmitted by mobile devices 1420 to the base station 1414 for distribution via the wired or wireless interface of communications interface 1408, signals supplied by communication devices inside buildings 1418 through the wired or wireless interface of communication interface 1408, and / or wireless signals supplied to communication interface 1408 by mobile devices 1412 that span a wireless communication interval of communications interface 1408. In embodiments where waveguide system 1402 functions as a repeater, as shown in Figures 7-8, communication interface 1408 may not be included in waveguide system 1402.
Electromagnetic waves that propagate along the surface of power line 1410 can be modulated and formatted to include packets or frames of data that include a data load and also include network information (such as information header to identify one or more target waveguide systems 1402). The network information may be provided by the waveguide system 1402 or a source device such as the base station 1414, mobile devices 1420, or devices inside buildings 1418, or a combination thereof. In addition, modulated electromagnetic waves may include error correction data to mitigate signal disturbances. The network information and error correction data can be used by a destination waveguide system 1402 to detect transmissions directed thereto, and for frequency reduction and processing with error correction data transmissions · including signals of voice and / or data addressed to receiving communication devices communicatively coupled to the destination waveguide system 1402.
Referring now to the sensors 1404 of the waveguide system 1402, the sensors 1404 may comprise one or more of a temperature sensor 1404a, a disturbance detection sensor 1404b, a power loss sensor 1404c, a noise sensor 1404d, a vibration sensor 1404e, an environmental sensor (for example, weather) 1404f, and / or a sensor
<img file="MX364594B_D0009.tif" />
<img file="MX364594B_D0010.tif" />
images 1404g. The sensors 1404 can detect any of a variety of conditions that can be adverse to electromagnetic waves that propagate along a wire surface of a wire. For example, the temperature sensor 1404a can be used to measure ambient temperature, a waveguide temperature 1406, a power line temperature 1410, temperature differentials (for example, compared to a set or reference point, between 1046 and 1410, etc.), or any combination thereof. In one embodiment, temperature metrics can be collected and reported periodically to a network management system 1601 through base station 1414.
The disturbance detection sensor 1404b can perform measurements on the power line 1410 to detect disturbances such as signal reflections, which may indicate a presence of a downstream disturbance that can prevent the propagation of electromagnetic waves on the power line 1410. A signal reflection may represent a distortion that results from, for example, an electromagnetic wave transmitted on the power line 1410 by the waveguide 1406 which is reflected in whole or in part again to the waveguide 1406 from a disturbance in power line 1410 located downstream of waveguide 1406.
Signal reflections can be caused by obstructions in power line 1410. For example, a tree branch shown in Figure 15 (A) can cause electromagnetic wave reflections when the tree branch is on power line 1410, or It is in close proximity to power line 1410 which can cause a corona discharge 1502. Other illustrations of obstructions that may cause electromagnetic wave reflections may include without limitation an object 1506 that has become entangled in the power line 1410 as shown in Figure 15 (C) (e.g., clothing, a shoe tangled around a line electrical 1410 with a shoelace, etc.), a corroded accumulation 1512 on the electrical line 1410 as shown in Figure 15 (F), or an ice accumulation 1514 as shown in Figure 15 (G). The mains components can also interfere with the transmission of electromagnetic waves on the surface of the power lines
1410.
Illustrations of the power grid components that can cause signal reflections include without limitation a transformer 1504 illustrated in the figure and a joint
1510 to connect spliced power lines as illustrated in line 15 (E). An acute angle 1508 on a power line 1410, as shown in Figure 15 (D), can also cause reflections of electromagnetic waves.
The disturbance detection sensor 1404b may comprise a circuit for comparing magnitudes of electromagnetic wave reflections with original electromagnetic wave magnitudes transmitted by waveguide 1406 to determine the amount that a disturbance downstream in the power line 1410 attenuates the transmissions. The disturbance detection sensor 1404b may further comprise a spectral analyzer circuit for performing spectral analysis on the reflected waves.
The spectral data generated by the spectral analyzer circuit can be compared with spectral profiles through pattern recognition, an expert system, curve fitting, coupled filtration or other artificial intelligence, classification or comparison technique to identify a type of disturbance based in, for example, the spectral profile that closely matches the spectral data.
The spectral profiles can be stored in a disturbance detection sensor memory 1404b or can be remotely by the disturbance accessible defection sensor
1404b. The profiles may comprise spectral data that model different disturbances that can be found on power lines 1410 to allow the disturbance detection sensor 1404b to identify disturbances locally. An identification of the disturbance, if known, can be reported to the network management system 1601 through the base station 1414. The disturbance detection sensor 1404b can also use waveguide 1406 to transmit electromagnetic waves as test signals to determine a travel time for an electromagnetic wave reflection. The travel time measured by the
<td>detection sensor</td><td>disturbance</td><td>1404b</td><td>It can</td><td>use</td>
<td>to calculate a</td><td>distance</td><td>I traveled</td><td>by</td><td>the wave</td>
<td>electromagnetic up</td><td>a point</td><td>where</td><td>taking</td><td>place the</td>
<td colspan="2">reflection, which allows the</td><td>sensor</td><td colspan="2">of detection of</td>
perturbation 1404b calculates a distance from waveguide 1406 to the disturbance downstream on power line 1410.
The calculated distance can be reported to the network management system 1601 by means of the base station 1414. In one embodiment, the location of the waveguide system 1402 on the power line 1410 can be known by the network management system 1601 , which the network management system 1601 can use to determine a location of the disturbance in the power line 1410 based on a known topology of the electrical network. In another mode, the
<img file="MX364594B_D0011.tif" />
waveguide system 1402 can provide its location to the network management system 1601 to assist in determining the location of the disturbance in the power line 1410. The location of the waveguide system 1402 can be obtained by the system of waveguide 1402 of a preprogrammed location of waveguide system 1402 stored in a memory of waveguide system 1402, or waveguide system 1402 can determine its location
<td colspan="2">using a GPS receiver</td><td>(do not</td><td>shown)</td><td>included in</td><td>the</td>
<td>system</td><td>of waveguide 1402.</td><td></td><td></td><td></td><td></td>
<td>The</td><td>management system</td><td>from</td><td>Energy</td><td colspan="2">1405 provides</td>
<td>Energy</td><td>to the components</td><td colspan="2">previously</td><td>mentioned</td><td>of the</td>
<td>system</td><td>waveguide 14</td><td> 02 .</td><td colspan="2">The management system</td><td>from</td>
<td>Energy</td><td colspan="2">1405 can receive power</td><td>of cells</td><td>solar, or</td><td>a</td>
transformer (not shown) coupled to power line 1410, or by inductive coupling to power line 1410 or another nearby power line. The energy management system 1405 may also include a backup battery and / or a super-capacitor or other capacitor circuit to provide the waveguide system 1402 with temporary energy. The energy loss sensor 1404c can be used to detect when the waveguide system 1402 has a power loss condition and / or the incidence of some other malfunction. For example, the sensor
<img file="MX364594B_D0012.tif" />
Loss of energy 1404c can detect when there is a loss of energy due to defective solar cells, an obstruction in the solar cells that causes them to malfunction, loss of energy in the power line
1410, and / or when the backup power system is malfunctioning due to the expiration of a backup battery, or a detectable defect in a supercapacitor.
When there is a malfunction and / or loss of energy, the energy loss sensor
1404c may notify the network management system 1601 by the base station 1414.
The noise sensor 1404d can be used for noise on the power line 1410 which, can negatively affect the transmission of electromagnetic waves by measuring shape on the power line 1410. The noise sensor 1404d can detect unexpected electromagnetic interference, bursts of noise , or other sources of disturbances that can interrupt transmission of modulated electromagnetic waves on a surface of a power line 1410. A burst of noise can be caused by, for example, a corona discharge, or other noise source. The noise sensor 1404d can compare the measured noise with a noise profile obtained by the waveguide system 1402 from an internal database of noise profiles or from a remotely located database that stores noise profiles through pattern recognition, an expert system, curve fitting, coupled filtration or other artificial intelligence, classification or comparison technique. From the comparison, the noise sensor 1404d can identify a noise source (for example, corona discharge or otherwise) based on, for example, the noise profile that provides the closest match to the measured noise. The noise sensor 1404d can also detect how noise affects transmissions by measuring transmission metrics such as bit error rate, packet loss rate, jitter, packet retransmission requests, etc. The noise sensor 1404d can report to the network management system 1601 through the base station 1414 the identity of noise sources, their incidence time, and transmission metrics, among other things.
The vibration sensor 1404e may include accelerometers and / or gyroscopes to detect 2D or 3D vibrations in the power line 1410. The vibrations can be compared with vibration profiles that can be stored locally in the waveguide system 1402, or obtained by the waveguide system 1402 from a remote database through pattern recognition, a system expert, curve fitting, coupled filtration or other artificial intelligence, classification or comparison technique. Vibration profiles can be used, for example, to distinguish fallen trees from wind gusts based on, for example, the vibration profile that provides the closest match to the measured vibrations. The results of this analysis can be reported by the vibration sensor 1404e to the network management system 1601 through the base station 1414.
The environmental sensor 1404f may include a barometer for measuring atmospheric pressure, ambient temperature (which can be provided by the temperature sensor 1404a), wind speed, humidity, wind direction, and rain, among other things. The environmental sensor 1404f can collect unprocessed information and process this information by comparing it with environmental profiles that can be obtained from a memory of the waveguide system 1402 or a remote database to predict weather conditions before they arise through recognition of patterns, an expert system, knowledge-based system or other artificial intelligence, classification or other time modeling and prediction technique. The environmental sensor 1404f can report raw data as well as its analysis to the network management system 1601.
The image sensor 1404g can be a digital camera (for example, a coupled charging device or CCD imager, infrared camera, etc.), to capture images in a vicinity of the waveguide system 1402. The 1404g image sensor may include an electromechanical mechanism to control the actual position movement or focal points / approaches (for example, of the camera to inspect the power line 1410 from multiple perspectives (e.g., upper surface, lower surface, surface left, right surface etc.). Alternatively, the image sensor 1404g can be designed in such a way that no electromechanical mechanism is needed in order to obtain multiple perspectives. The collection and recovery of image data generated by the image sensor 1404g can be controlled by the network management system 1601, or can be collected and reported autonomously by the image sensor 1404g to the network management system 1601.
Other sensors that may be suitable for collecting telemetry information associated with the 1402 and / or waveguide system. Power lines .1410 for purposes of detecting, predicting and / or mitigating disturbances that may prevent transmission of electromagnetic waves on power lines 1410 (or any other form of an electromagnetic wave transmission medium) may be used by
6 the waveguide system 1402.
Figure 16 is a block diagram illustrating a non-limiting mode, for example of a system 1600 for managing an electrical network 1603 and a communications system 1605 incorporated therein according to different aspects described herein. The communication system 1605 comprises a plurality of waveguide systems 1402 coupled to power lines 1410 of the power grid 1603. At least a portion of the waveguide systems 1402 used in the communication system 1605 may be in direct communication with a base station 1414 and / or the network management system 1601. Waveguide systems 1402 not directly connected to a base station 1414 or the network management system 1601 can be coupled in communication sessions with either of a base station 1414 or the network management system 1601 by means of other systems downstream waveguide 1402 connected to a base station 1414 or network management system 1601.
The network management system 1601 can be communicatively coupled to equipment of a public service company 1602 and equipment of a communications service provider 1604 to provide each entity with status information associated with power network 1603 and the system of communication 1605, respectively. The 1601 network management system, the 1602 public service company team, and the communication service provider 1604 may access communication devices used by personnel of the public service company 1606 and / or communication devices used by communications service provider personnel 1608 for purposes of providing status information and / or to detect this personnel in the management of the 1603 electricity network and / or 1605 communication system.
Figure 17A illustrates a flow chart of a non-limiting mode, for example of a method 1700 for detecting and mitigating disturbances that occur in a communication network of the system 1600 of Figure 16. The method 1700 may begin with step 1702 where a waveguide system 1402 transmits and receives messages incorporated in, or that are part of, modulated electromagnetic waves or other types of electromagnetic waves that travel along a surface of a line electric 1410. The messages may be voice messages, streaming video, and / or other data / information exchanged between communication devices communicatively coupled to the communication system 1605. In step 1704 the sensors 1404 of the waveguide system 1402 may Collect detection data. In one embodiment, the detection data can be collected in step 1704 before, during, or after the transmission and / or reception of messages in step 1702. In step 1706 the waveguide system. 1402 (or the sensors 1404 themselves) can determine from the detection data a real or predicted incidence of a disturbance in the communication system 1605 that may affect communications originating from (for example, transmitted by) or received by the waveguide system 1402. The waveguide system 1402 (or sensors 1404) can process temperature data, signal reflection data, energy loss data, noise data, vibration data, environmental data, or any combination thereof for Make this determination. Waveguide system 1402 (or sensors 1404) can also detect, identify, estimate or predict the source of the disturbance and / or its location in communication system 1605. If a disturbance is neither detected / identified nor predicted / estimated in step 1708, the waveguide system 1402 may proceed to step 1702 'where it continues to transmit and receive messages incorporated in, or that are part of, electromagnetic modulated waves traveling along a surface of power line 1410.
If in step 1708 a disturbance is detected / identified or predicted / estimated, waveguide system 1402 proceeds to step 1710 to determine whether the disturbance affects negatively (or alternatively, is likely to adversely affect or the extent to which it may adversely affect) the transmission or reception of messages in the communication system 1605. In one embodiment, a duration threshold and an incidence frequency threshold can be used in step 1710 to determine when a disturbance negatively affects communications in communication system 1605. For illustration purposes only, it is assumed that set a duration threshold to 500 ms, while adjusting an incidence frequency threshold to 5 disturbances that occur in an observation period of 10 seconds. Therefore, a disturbance that has a duration greater than 500 ms will activate the duration threshold. In addition, any disturbance that occurs more than 5 times in a 10-second time interval will activate the incidence frequency threshold.
In one embodiment, a disturbance can be considered to negatively affect signal integrity in communication systems 1605 when the duration threshold separately is exceeded. In another embodiment, a disturbance can be considered as negatively affecting signal integrity in communication systems 1605 when both the duration threshold and the incidence frequency threshold are exceeded. This last modality is therefore more conservative than the first modality for classifying disturbances that negatively affect the signal integrity in the communication system 1605. It will be appreciated that many other algorithms and associated parameters and thresholds can be used for step 1710 according to example modalities. It will also be appreciated that any activity, event, or condition detectable by sensors, other suitable detection equipment, or other means for detection that can negatively affect the signal integrity of the electromagnetic wave transmissions in the communication system 1605 can be apply to, use by, or combine with any of the modalities described in the description separately or in any combination to detect and substantially reduce or eliminate these negative effects on the signal integrity of electromagnetic wave transmissions in the communication system 1605 to thereby achieve a objective of maintaining a desirable level of quality of communication services in the 1605 communication system.
With reference again to method 1700, if in step 1710 the disturbance detected in step 1708 does not meet the condition for affected communications d negatively (for example, neither exceeds the duration threshold nor the incidence frequency threshold), the Waveguide system 1402 can proceed to step 1702 and continue processing messages. For example, if the disturbance detected in step 1708 has a duration of 1 ms, with an individual incidence over a period of 10 seconds, then no threshold will be exceeded. Consequently, this disturbance can be considered as having a nominal effect on signal integrity in communication system 1605 and therefore would not be marked as a disturbance that requires mitigation. Although not marked, the incidence of the disturbance, its time of incidence, its frequency of incidence, spectral data, and / or other useful information, can be reported to the network management system 1601 as telemetry data for monitoring purposes.
With reference again to step 1710, if on the other hand the disturbance satisfies the condition for negatively affected communications (for example, it exceeds either or both thresholds), waveguide system 1402 can proceed to step 1712 and report the incidence to the network management system 1601. The report may include unprocessed detection data collected by the sensors 1404, a description of the disturbance if known by the waveguide system 1402, a time of incidence of the disturbance, a frequency of incidence of the disturbance, a location associated with the disturbance, parameter readings such as bit error rate, packet loss rate, retransmission requests, fluctuation, latency, etc. If the disturbance is based on a prediction by one or more sensors of waveguide system 1402, the report may include an expected type of disturbance, and if predictable, an expected temporary incidence of the disturbance, and a frequency of Expected incidence of the predicted disturbance when the prediction is based on historical detection data collected by sensors 1404 of waveguide system 1402.
In step 1714, the network management system 1601 may determine a mitigation, avoidance, correction technique, which may include directing the waveguide system 1402 to re-route the traffic to avoid disturbance if the location can be determined. of the disturbance. In one mode, the waveguide system
1402 which detects the disturbance can direct a repeater
1802 such as that shown in Figure 18A to connect the waveguide system 1402 of a main line 1804 affected by the disturbance to a secondary electric line 1806 to allow the waveguide system 1402 to re-route the traffic to a Different transmission medium and avoid 1801 disturbance. In an embodiment where the waveguide system 1402 is configured as a repeater, such as repeater 1802, the waveguide system 1402 can itself carry out the re-routing of traffic from the main power line 1804 to the power line secondary 1806. It is further noted that for bidirectional communications (e.g., half-duplex or duplex communications), repeater 1802 can be configured to re-route traffic from secondary power line 1806 back to main power line 1804 for processing by the guidance guide system. wave 1402.
In another embodiment, waveguide system 1402 can redirect traffic by instructing a first repeater 1812 placed upstream of the disturbance and a second repeater 1814 placed downstream of the disturbance to redirect traffic from a main power line 1804 temporarily to a secondary power line 1806 and back to the main power line 1804 in a manner that prevents disturbance 1801 as shown in Figure 18B. It is further noted that for bidirectional communications (eg, half-duplex or duplex communications), repeaters 1812 and 1814 can be configured to re-route the traffic of the secondary power line 1806 back to the main power line 1804.
To avoid interruption of existing communication sessions that occur on a secondary power line 1806, network management system 1601 can direct waveguide system 1402 (in the modes of Figures 18A-18B) to instruct repeaters to use unused time slots and / or frequency bands of the power line secondary 1806 to redirect data and / or voice traffic away from the main power line 1804 to avoid 1801 disturbance.
In step 1716, while the traffic is rerouted to avoid disturbance, the network management system 1601 can notify the public service company 1602 team and / or communications service provider 1604 team, which in turn you can notify the staff of the public service company 1606 and / or staff of the provider. 1608 communications services of the disturbance detected and its location if known. Field personnel from any part can attend to resolve the disturbance at a particular location of the disturbance. Once the disturbance is removed or otherwise mitigated by the public service company personnel and / or communications service provider personnel, these personnel can notify their respective companies and / or network management system 1601 using field equipment (for example, a laptop, smartphone, etc.), communicatively coupled to the 1601 network management system, and / or equipment of the public service company and / or the communications service provider. The notification may include a description of how to mitigate the disturbance and any changes to the power lines 1410 that a topology of the communication system 1605 can change.
Once the disturbance has been resolved, the network management system 1601 can direct the waveguide system 1402 in step 1720 to restore the pre-routing configuration used by the waveguide system 1402 or route traffic accordingly with a new routing configuration if the restoration strategy used to mitigate the disturbance resulted in a new network topology of the communication system 1605. In another embodiment, waveguide system 1402 can be configured to monitor disturbance mitigation by transmitting test signals on power line 1410 to determine when the disturbance has been removed. Once the waveguide 1402 detects an absence of the disturbance, it can autonomously restore its routing configuration without assistance by the network management system 1601 if it determines that the network topology of the communication system 1605 has not changed, or You can use a new routing configuration that adapts to a new detected network topology.
Figure 17B illustrates a flow chart of a non-limiting mode, for example of a method 1750 for detecting and mitigating disturbances that occur in a communication network of the system 1600 of Figure 16. In one embodiment, method 1750 can begin with step 1752 where a network management system 1601 receives from the public service company 1602 or communications service provider 1604 equipment maintenance information associated with a maintenance program. The network management system
1601 You can identify in step 1754 from the maintenance information, maintenance activities that will be carried out during the maintenance program. From these activities, the network management system 1601 can detect a disturbance resulting from maintenance (for example, scheduled replacement of a power line 1410, scheduled replacement of a waveguide system 1402 on power line 1410, reconfiguration programming of power lines 1410 in power grid 1603, etc.).
In another embodiment, the network management system 1601 can retrieve telemetry information from one or more waveguide systems 1402 in step 1755. The telemetry information may include, among other things, an identity of each waveguide system 1402 that sends the telemetry information, measurements taken by sensors 1404 of each waveguide system 1402, information related to predicted, estimated, or actual disturbances. detected by sensors 1404 of each waveguide system 1402, location information associated with each waveguide system 1402, an estimated location of a detected disturbance, an identification of the disturbance, etc. The network management system 1601 can determine from the telemetry information a type of disturbance that can be negative to waveguide operations, transmission of electromagnetic waves along the wire surface, or both. The network management system 1601 can also use telemetry information from multiple waveguide systems 1402 to isolate and identify the disturbance. In addition, the network management system 1601 may request telemetry information from waveguide systems 1402 in a neighborhood of an affected waveguide system 1402 to triangulate a disturbance location and / or validate a disturbance identification to the receive similar telemetry information from other waveguide systems 1402.
In yet another embodiment, the network management system 1601 can receive in step 1756 a report of unscheduled activity of the maintenance field personnel. Unscheduled maintenance may occur as a result of unplanned field visits or as a result of unexpected field problems discovered during field visits or scheduled maintenance activities. The activity report can identify changes to a topology configuration of the power grid 1603 resulting from field personnel .. which addresses problems discovered in the communication system 1605 and / or power grid 1603, changes to one or more guidance systems wave 1402 (such as replacement or repair thereof), mitigation of disturbances carried out if any, etc.
In step 1758, the network management system 1601 can determine from the reports received in accordance with steps 1752 to 1756 if a disturbance will occur based on a maintenance program / or if a disturbance has been presented or predicts that it is presented based on telemetry data, or if a disturbance has occurred due to unplanned maintenance identified in a field activity report. From any of these reports, the network management system 1601 can determine whether a detected or predicted disturbance requires traffic rerouting by the affected waveguide systems 1402 or other waveguide systems 1402 of the communication system 1605.
When a disturbance is detected or predicted in step 1758, the network management system 1601 can proceed to step 1760 where it can direct one or more waveguide systems 1402 to re-route the traffic to avoid the disturbance similar to the illustrations of figures 18A or 18B. When the disturbance is permanent due to a permanent topology change of the power grid 1603, the network management system 1601 can proceed to step 1770 and skip steps 1762, 1764, 1766, and 1772. In step 1770, the network management system 1601 can direct one or more waveguide systems 1402 to use a new routing configuration that adapts to the new topology, however, when the disturbance has been detected from telemetry information supplied by one or more waveguide systems 1402, the network management system 1601 may notify the maintenance staff of the public service company 1606 or the communications service provider 1608 of a location of the disturbance, a type of
<img file="MX364594B_D0013.tif" />
disturbance if known, and related information that may be useful for this staff to mitigate the disturbance. When a disturbance due to maintenance activities is expected, the network management system 1601 can direct one or more waveguide systems 1402 to reconfigure traffic routes in a given program (consistent with the maintenance program) to avoid disturbances caused for maintenance activities during the maintenance program.
Returning now to step 17 60 and after completion, the process can continue with step 1762. In step 1762, the network management system 1601 can monitor when disturbances have been mitigated by field personnel. Mitigation of a disturbance can be detected in step 1762 by analyzing field reports issued to the network management system 1601 by field personnel through a communications network (for example, cellular communication system) using field equipment ( for example, a laptop or computer / portable device). If the field staff has reported that a disturbance has been mitigated, the network management system 1601 can proceed to step 1764 to determine from the field report whether a change of topology was necessary to mitigate the disturbance. A topology change may include re-routing of a power line 1410, reconfiguration of a waveguide system 1402 to use a different power line 1410, otherwise using an alternative link to skip the disturbance etc. If a topology change has taken place, the network management system 1601 may direct in step 1770 one or more waveguide systems 1402 to use a new routing configuration that adapts to the new topology.
If, however, no change of topology has been reported by the field staff, the network management system 1601 may proceed to step 1766-where it may direct one or more waveguide systems 1402 to send test signals to test a routing configuration that had been used before the disturbances detected. Test signals can be sent to affected waveguide systems 1402 in a neighborhood of the disturbance. Test signals can be used to determine if signal disturbances (for example, electromagnetic wave reflections) are detected by any of the waveguide systems 1402. If the test signals confirm that a previous routing configuration is no longer subject to previously detected disturbances, then the network management system 1601 can in step 1772 direct the affected waveguide systems 1402 to restore a
<img file="MX364594B_D0014.tif" />
pre-routing configuration If, however, the test signals analyzed by one or more waveguide systems 1402 and reported to the network management system 1601 indicate that the disturbances or new disturbances are present, then the network management system 1601 will proceed to the step 1768 and will report this information to field staff to address additional field issues. The network management system 1601 can in this situation continue monitoring the mitigation of disturbances in step 1762.
In the aforementioned modalities, waveguide systems 1402 can be configured to adapt to changes in power grid 1603 and / or to mitigate disturbances. That is, one or more affected waveguide systems 1402 can be configured to self-monitor disturbance mitigation and reconfigure traffic routes without requiring instructions to be sent to them by the network management system 1601. In this mode, the one or more waveguide systems 1402 that are self-configuring can inform the network management system 1601 of their routing selections such that the network management system 1601 can maintain a macro-level view of the communication topology of the 1605 communication system.
ts
93.
While for purposes of simplicity of explanation, the respective processes are shown and described as a series of blocks in Figures 17A and 17B, respectively, it will be understood and appreciated that the subject matter claimed is not limited by the order of the blocks , since some blocks may be presented in different orders and / or concurrently with other blocks of what is represented and described herein. In addition, Not all illustrated blocks may be necessary to implement the described methods.
Referring now to Figure 19, a block diagram of a computing environment according to different aspects described herein is illustrated. In order to provide additional context for different modalities of the modalities described herein, Figure 19 and the following analysis are proposed to provide a brief, general description of a suitable computing environment 1900 in which the different modalities of the description. While the modalities have been described above in the general context of computer executable instructions that can be executed on one or more computers, those skilled in the art will recognize that the modalities can also be implemented in combination with other program modules and / or
<img file="MX364594B_D0015.tif" />
as a combination of hardware and software.
In general, the program modules comprise routines, programs, components, data structures, etc., which perform particular tasks or implement particular abstract data types. In addition, those skilled in the art will appreciate that inventive methods can be practiced with other computer system configurations, comprising single-processor or multi-processor computer systems, minicomputers, central computers, as well as personal computers, portable computing devices. , programmable or microprocessor-based consumer electronics, and the like, each of which can be operatively coupled to one or more associated devices.
The terms first, second, third, etc., as used in the claims, unless it is otherwise clear from the context, are only for clarity and does not indicate otherwise or imply any order in time. For example, a first determination, a second determination, and a third determination, do not indicate or imply that the first determination is to be made before the second determination, or vice versa, etc.
The illustrated modalities of the modalities herein can also be practiced in distributed computing environments where certain tasks are carried out by remote processing devices that are linked through a communications network. In a distributed computing environment, program modules can be placed in both local and remote memory storage devices.
Computing devices conventionally comprise a variety of media, which may comprise computer readable storage media and / or communications media, the two terms of which are used herein differently from each other as follows. Computer-readable storage media can be any available storage media that can be accessed by the computer and comprises both volatile and non-volatile media, removable and non-removable media. By way of example, and without limitation, computer readable storage media can be implemented together with any method or technology for information storage such as computer readable instructions, program modules, structured data or unstructured data.
The computer readable storage media may comprise, but are not limited to, random access memory (RAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM),
6 flash memory or other memory technology, compact disk read-only memory (CD-ROM), digital versatile disk (DVD) or other optical disk storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices or other tangible and / or non-transitory means that can be used to store desired information. In this regard, the tangible or non-transitory terms hereby as they apply to storage, memory or computer readable media, will be understood to exclude only transient signals that propagate per se as modifiers and do not waive rights to all standard storage, memory or computer readable media that are not just transient signals that propagate per se.
The readable storage media can be accessed by computer by one or more computing devices, local or remote, for example, through access requests, queries or other data recovery protocols, for a variety of operations with respect to the information stored by the medium.
The communication means conventionally incorporate computer readable instructions, data structures, program modules or other structured or unstructured data in a data signal such as a modulated data signal, for example, a carrier wave or other transport mechanism, It includes any means of transport or distribution of information.
The term modulated data signal or signals refers to a signal that has one or more of its characteristics established or changed in such a way that it encodes information in one or more signals. By way of example, and without limitation, communication means may comprise wired media, such as wired network or direct wired connection, and wireless media such as acoustic media,
RF, infrared and other wireless media.
Referring again to Figure 19, the example environment 1900 for transmission and reception of signals through or forming at least part of a base station (for example, base station devices 102, 104, or 520). At least a portion of the example 1900 environment can also be used for repeater devices (eg, repeater devices 710, or 806). The exemplary environment may comprise a computer 1902, the computer 1902 comprising a processing unit 1904, a system memory 1906 and a system bus 1908. The system bis 1908 couples system components that include, but are not limited to , the system memory 1906 to the processing unit 1904. The processing unit 1904 can be any of different commercially available processors. Dual microprocessors and other multi-processor architectures such as the 1904 processing unit can also be used.
The system bus 1908 can be any of several types of bus structure that can be additionally interconnected to a memory bus (with or without a memory controller), a peripheral bus, and a local bus that uses any of a variety of commercially available bus architectures. System memory 1906 comprises ROM 1910 and RAM 1912. A basic input / output system (BIOS) can be stored in a non-volatile memory such as ROM, program read-only, erasable memory (EPROM), EEPROM, whose BIOS contains the basic routines to help transfer information between items within the 1902 computer, such as, during startup. RAM 1912 may also comprise a high speed RAM such as static RAM for data storage in cache memory.
Computer 1902 further comprises an internal hard disk drive (HDD) 1914 (for example, EIDE, SATA), whose internal hard disk drive 1914 can also be configured for external use in a suitable chassis (not shown), a drive 1916 magnetic floppy disk (FDD), (for example, to read from or write to a 1918 removable floppy disk) and a
<img file="MX364594B_D0016.tif" />
1920 optical disc drive, (for example, that reads a 1922 CD-ROM disc or, to read from writing to another high capacity optical medium such as the DVD). The hard disk drive 1914, magnetic disk drive 1916 and optical disk drive 1920 can be connected to the system bus 1908 via a hard drive interface 1924, a magnetic drive interface 1926 and a 'drive interface of optical disk 1928, respectively. The 1924 interface for external unit implementations comprises at least one or both of the Universal Serial Bus (USB) interface technologies and the Institute of Electrical and Electronic Engineers (IEEE) 1394. Other external unit connection technologies are within the contemplation of the modalities described herein.
The drives and their associated computer readable storage media provide non-volatile data storage, data structures, computer executable instructions, etc. For the 1902 computer, the drives and storage media adapt the storage of any data in a suitable digital format. Although the description of the above readable storage media by computer refers to a disk drive (HDD), a removable magnetic floppy disk, and a removable optical medium such as a CD or DVD, it should be appreciated by those skilled in the art that other types of storage media that are readable by a computer, such as
100 Zip drives, magnetic cassettes, flash memory cards, cartridges, and the like, can also be used in the sample operating environment, and in addition, that any of these storage media may contain computer-executable instructions for carrying out the methods described herein.
Several program modules can be stored in the units and
RAM
1912, which comprise an operating system
1930, one or more application programs 1932, other program modules
1934 and program data
1936 All or portions of the operating system, applications, modules, and / or data can be stored in cache memory in RAM
1912 The systems and methods described herein can be implemented using different commercially available operating systems or combinations of operating systems. Examples of application programs
1932 which can be implemented or otherwise executed by the processing unit 1904 include the determination of diversity carried out by the repeater device 806.
The base station device 508 shown in the figure
5, it has also stored in memory many applications programs that can be executed by the processing unit 1904 in this example computing environment
1900.
A user can enter commands and information to the computer 1902 through one or more devices of
101 wired / wireless input, for example, a 1938 keyboard and a pointing device, such as a 1940 mouse. Other input devices (not shown) may comprise a microphone, an infrared (IR) remote control, a joystick, a remote of video games, a pen, touch screen or similar. These and other input devices are often connected to the processing unit 1904 through an input device interface 1942 that can be coupled to the system bus 1908, but can be connected by other interfaces, such as a parallel port, an IEEE 1394 serial port, a video game port, a universal serial bus (USB) port, an IR interface, etc.
A 1944 monitor or other type of display device can also be connected to the system bus 1908 through an interface, such as a video adapter
1946 It will be appreciated that in alternative embodiments, a 1944 monitor can also be any display device (for example, another computer that has a screen, a smartphone, a tablet computer, etc.).
to receive display information associated with the 1902 computer through any means of communication, including through the Internet and cloud-based networks. In addition to the 1944 monitor, a computer conventionally comprises other peripheral output devices (not shown), such as speakers, printers, etc.
102
Computer 1902 can operate in a networked environment using logical connections through wired and / or wireless communications to one or more remote computers, such as a 1948 remote computer. The 1948 remote computers can be a workstation, a server computer, a router, a personal computer, laptop, microprocessor-based entertainment device, a peer device or other common network node, and conventionally comprises many or all of the elements described with respect to computer 1902, although, for brevity purposes, only one memory / storage device 1950 is illustrated. The logical wired / wireless connections represented to a network are larger networks, for example, 1954. These LAN and company network environments, and facilitate enterprise networks, such as Intranets, comprise 1952 local area (LAN) connectivity and / or a network Wide area (WAN) and WAN are common in computer offices for all of which all can
<td>connect to a</td><td>communications network</td><td colspan="2">global,</td><td>for example,</td>
<td>Internet.</td><td></td><td></td><td></td><td></td>
<td>When</td><td colspan="2">use in an environment</td><td>from</td><td>LAN network, the</td>
<td>computer 1902</td><td>can be connected to</td><td>the</td><td>net</td><td>local 1952 a</td>
via a wired and / or wireless 1956 communication network interface or adapter. The 1956 adapter can facilitate wired or wireless communication to the 1952 LAN, which can also comprise a wireless AP placed in the
103 same to communicate with the 1956 wireless adapter.
When used in a WAN network environment, computer 1902 can comprise a 1958 modem or can be connected to a communications server in WAN 1954 or has other means to establish communications through WAN 1954, such as by means of Internet. The 1958 modem, which can be internal or external and a wired or wireless device, can be connected to the system bus 1908 through the input device interface 1942. In a networked environment, program modules represented with respect to the computer 1902 or portions thereof, can be stored in the storage / memory device
<td>remote 1950. It</td><td>you should appreciate that network connections</td>
<td>shown are from</td><td>example and other means can be used</td>
<td>to establish</td><td>a communications link between</td>
computers.
Computer 1902 can be operable to communicate with any wireless device or entity operatively placed in wireless communication, for example a printer, scanner, desktop and / or laptop, portable data assistant, communications satellite, any piece of equipment or location associated with a wirelessly detectable label (for example, a kiosk, newspaper stand, bathroom), and telephone. This can include wireless wireless fidelity (Wi-Fi) and BLUETOOTH technologies<sup>MR</sup>. Therefore, communication can be
104 a predefined structure as with a conventional network or
<td>simply a communication</td><td>ad</td><td>hoc</td><td>between to</td><td>less</td><td>two</td>
<td>devices.</td><td></td><td></td><td></td><td></td><td></td>
<td>Wi-Fi can allow</td><td colspan="2">Connection</td><td colspan="2">to the Internet from</td><td>a</td>
<td>sofa in the home, a bed in</td><td>a</td><td colspan="2">room of</td><td>hotel or</td><td>a</td>
<td colspan="2">conference room at work,</td><td>without</td><td>wires</td><td>Wi-Fi</td><td>it is</td>
a wireless technology similar to that used in cellular telephony that allows these devices, for example, computers to send and receive data inside and outside; wherever within the reach of a base station. Wi-Fi networks use radio technologies called IEEE 802.11 (a, b, g, n, ac, etc.), to provide secure, reliable, fast wireless connectivity. A Wi-Fi network can be used to connect computers to each other, to the Internet, and to wired networks (which use IEEE 802.3 or Ethernet). Wi-Fi networks operate in the 2.4 and 5 GHz radio bands without a license for example or with products that contain both bands (dual band), so the networks can provide real performance similar to wired, lOBaseT, basic Ethernet networks Used in many offices.
Figure 20 represents an example 2000 mode of a mobile network platform 2010 that can either implement and take advantage of one or more aspects of the subject matter described herein. In one or more modalities, the mobile network platform 2010 can generate and receive signals transmitted and received by base stations (for example, devices of
105 base station 102, 104 or 520) or repeater devices (for example, repeater devices 710, or 806) associated with the subject matter described. In general, the 2010 wireless network platform may comprise components, for example, nodes, gateways, interfaces, servers, or various platforms, which facilitate both packet switching (PS) traffic (eg, Internet Protocol (IP) ), frame retransmission, asynchronous transfer mode (ATM) such as circuit switching (CS) traffic (eg voice and data), as well as control generation for wireless network telecommunication. As a non-limiting example, the 2010 wireless network platform may be included in telecommunications operator networks, and operator side components may be considered as discussed elsewhere herein, the mobile network platform 2010 comprises nodes of CS 2012 gateway - which may be in interface with CS traffic received from legacy networks such as 2040 telephone networks (for example, public switched telephone network (PSTN), or public land mobile network (PLMN)) or a signaling system network # 7 (SS7)
2070 The circuit switching gateway nodes 2012 can authorize and authenticate traffic (eg, voice) that emerges from these networks. In addition, the CS 2012 gateway nodes can access mobility, or roaming data generated through the SSC7 2070 network; for example mobility data stored in a record of
106 Visited location (VLR), which may reside in memory 2030. In addition, the CS 2012 gateway nodes are in interface with PS gateway and CS-based signaling and traffic nodes 2018. As an example, in a 3GPP UMTS network, CS 2012 gateway nodes can be implemented at least in part on the GPRS gateway (GGSN) support nodes. It should be appreciated that the specific functionality and operation of the CS 2012 gateway nodes, PS 2018 gateway nodes and 2016 service nodes, is provided and dictated by the radio technologies used by the 2010 mobile network platform to telecommunication.
In addition to receiving and processing signaling and switching traffic of CS circuits, PS 2018 gateway nodes can authorize and authenticate PS-based data sessions with attended mobile devices. The data sessions may comprise traffic, or content, exchanged with networks external to the 2010 wireless network platform, such as 2050 wide area networks (WAN), 2070 business networks, and 2080 service networks, which can be incorporated into the networks of local area (LAN), can also be put into interface with the mobile network platform 2010 through PS 2018 gateway nodes. It will be noted that WAN 2050 and 2060 enterprise networks can incorporate, at least in part, service networks as IP multimedia subsystem (IMS). Based on the layers of radio technology
107 available in the 2017 technology resources, the 2018 packet switching gateway nodes can generate packet data protocol contexts when a data session is established; Other data structures that facilitate routing of packed data can also be generated. To that end, in one aspect, PS 2018 gateway nodes may comprise a tunnel interface (e.g., tunnel termination gateway (TTG) in 3GPP UMTS networks (not shown)) that can facilitate communication packaged with various wireless networks, such as Wi-Fi networks.
In the 2000 mode, the 2010 wireless network platform also includes 2016 service nodes that, based on the radio technology layers available within 2017 technology resources, transport the different packed flows of data streams received through nodes PS 2018 gateway. It will be noted that for 2017 technology resources that rely primarily on 'CS communication, server nodes can distribute traffic without dependence on PS 2018 gateway nodes; for example, the server nodes may at least partly incorporate a mobile switching center. As an example, in a 3GPP UMTS network, the 2016 service nodes can be incorporated into the GPRS service support nodes (SGSN).
For radio technologies that take advantage of communication
108 packaged, the 2014 servers on the 2010 wireless network platform can run several applications that can generate multiple flows or different packed data streams, and manage (for example, schedule, line up, format ...) these flows. These applications may include additional features to standard services (for example, provisioning, billing, customer support ...) provided by the 2010 wireless network platform. Data streams (for example, contents that are part of a voice call or data session) can be transported to PS 2018 gateway nodes for authorization / authentication and initiation of a data session, and to service nodes. 2016 for communication after that. In addition to the application server, the 2014 servers may comprise public service servers, a public service server may comprise a provisioning server, an operation and maintenance server, a security server that can at least partly implement a certificate authority and firewalls as well as other security mechanisms, and the like. In one aspect, the security servers ensure the communication served through the 2010 wireless network platform to ensure the operation and integrity of network data in addition to authorization and authentication procedures that the CS 2012 gateway nodes and nodes PS 2018 gateway can represent. In addition, the servers of
109 Provisioning can provision external network services such as networks operated by a diverse service provider; for example, WAN 2050 or Global Positioning Systems (GPS) networks (not shown). Provisioning servers can also provision coverage through networks associated with the 2010 wireless network platform (for example, implemented and operated by the same service provider), such as the distributed antenna networks shown in Figure 1 that improve Wireless service coverage by providing more network coverage. Repeater devices such as those shown in Figures 7, 8 and 9 also improve network coverage in order to improve the subscriber's service experience via UE 2075.
It will be noted that the servers 2014 may comprise one or more processors configured to at least partially confer the functionality of the macro network platform 2010. For that purpose, the one or more processors may execute code instructions stored in memory 2030, by way of example. It should be appreciated that the servers 2014
<td>they can understand a</td><td colspan="2">manager</td><td>2015 content,</td><td>what</td><td>Opera</td>
<td>substantially of</td><td>the</td><td>same</td><td>way I know</td><td colspan="2">described</td>
<td>previously.</td><td></td><td></td><td></td><td></td><td></td>
<td>In the mode</td><td>from</td><td>example</td><td>2000 memory</td><td> 2030</td><td>may</td>
store information related to the operation of the 2010 wireless network platform. Other information
110 Operational may include provisioning of information on mobile devices served through the 2010 wireless platform network, subscriber databases; application intelligence, pricing schemes, for example, promotional rates, fixed rate programs, coupon campaigns; technical specifications consistent with telecommunications protocols for operation of various layers of radio, or wireless technology; etc. The 2030 memory can also store information from at least one of the 2040 telephone networks, WAN 2050, 2060 business networks, or SS7 2070 network. ' In one aspect, for example, memory 2030 can be accessed as part of a data storage component or as a remotely connected memory store.
In order to provide a context for the different aspects of the subject matter described, it is proposed that Figure 20, and the following analysis, provide a brief, general description of a suitable environment in which the different aspects of the subject matter described may be implemented. . While the matter has been described above in the general context of computer-executable instructions of a computer program that runs on a computer and / or computers, those skilled in the art will recognize that the subject matter described can also be implemented in combination. with other program modules. In general, program modules include routines,
111 programs, components, data structures, etc., that carry out particular tasks and / or implement particular abstract data types.
Figure 21 represents an illustrative embodiment of a communication device. 2100 . The communication device 2100 can serve as an illustrative mode of devices such as mobile devices and devices inside buildings referred to by the description (for example, in Figures 1 and 14).
The communication device 2100 may comprise a wired and / or wireless transceiver 2102 (in the present transceiver 2102), a user interface (UI) 2104, a power supply 2114, a location receiver 2116, a motion sensor 2118, an orientation sensor 2120, and a controller 2106 to manage operations thereof. The 2102 transceiver can support short-range or long-range wireless access technologies such as Bluetooth<sup>MR</sup>, ZigBee<sup>MR</sup>, WiFi, DECT, or other cellular communication technologies, to mention just a few (Bluetooth<sup>MR </sup>and ZigBee<sup>MR</sup> are trademarks of the Bluetooth Special Interest Group<sup>MR</sup> and the ZigBee Alliance<sup>MR</sup>, respectively). Cellular technologies may include, for example, CDMAIX, UMTS / HSDPA, GSM / GPRS, TDMA / EDGE, EV / DO, WÍMAX, SDR, LTE, as well as other next-generation wireless communication technologies when they arise. The 2102 transceiver can also be adapted to support access technologies
112 wired circuit switching (such as PSTN), wired packet switching access technologies (such as TCP / IP, VoIP, etc.), and combinations thereof.
The UI 2104 may include a pressurizable or touch-sensitive keyboard 2108 with a navigation mechanism such as a roller ball, a joystick, a mouse, or a navigation disk for manipulating operations of the communication device 2100. The keyboard 2108 can be an integral part of a housing assembly of the communication device 2100 an independent device operatively coupled thereto by a related wired interface (such as a USB cable) or a wireless interface that supports, for example, Bluetooth<sup>MR</sup>. The keyboard 2108 may represent a numeric keypad commonly used by telephones, and / or a QWERTY keyboard with alphanumeric keys. The UI 2104 may also include a screen 2110 such as monochrome or color LCD (Liquid Crystal Display), OLED (Organic Light Emitting Diode) or other display technology suitable for transporting images to an end user of the communication device 2100. In an embodiment where the screen 2110 is touch sensitive, a portion of or all of the keyboard 2108 may be presented by means of the screen 2110 with navigation features.
The 2110 screen can use touch screen technology to also serve as a user interface to detect user input. As a touch screen, the
113 2100 communication device can be adapted to present a user interface that has graphical user interface (GUI) elements that can be selected by a user with a touch of a finger. The touchscreen
<td colspan="2">2110 can</td><td>to be</td><td colspan="2">equipped</td>
<td>resistive</td><td>or</td><td>other</td><td>shapes</td><td>from</td>
<td>detect</td><td>the</td><td colspan="2">amount of</td><td>area</td>
User has been placed on with capacitive technology, sensing technology to surface the finger of a portion of the touch screen. This detection information can be used to control the manipulation of GUI elements or other functions of the user interface. The screen 2110 can be an integral part of the housing assembly of the independent communication device coupled in a wired interface related wireless interface.
The UI 2104 can also 2112 that uses low-volume technology (such as audio
2100 or a communicative device thereto by one (such as a cable) or one including an audio audio system for transporting audio heard in close proximity to a human ear) and high volume audio (such as speaker for hands-free operation). The 2112 audio system may also include a microphone to receive audible signals from an end user. The 2112 audio system can also be used for voice recognition applications. The UI 2104 may further include an image sensor 2113 such as a docking device (CCD) camera for <sup>1</sup> * 'fc *
114 'capture static or moving images.
The power supply 2114 may utilize common energy management technologies such as replaceable and rechargeable batteries, supply regulation technologies, supply communication and / or charging system technologies for energy to the components of the device.
2100 To facilitate long-range or short-range portable communications, the external power system through an interface connection technologies
The global location (GPS) receiver with one in which such range. ..Alternatively, or charge as appropriate physics.
As receiver device location capability signals generated by one can be used as navigation.
Use accelerometer technology, a motion device in can use CD power sources supplied from
GPS as a USB port or others can use assisted positioning system technology to identify 2100 communication with GPS satellite constellation base, to facilitate location services
The gyroscope detection sensor, or other movement 2118 can move such as a suitable detection technology to detect communication movement
2100 in three-dimensional space. The orientation sensor 2120 can use detection technology. orientation such as a magnetometer to detect the orientation of the device
115 2100 communication (north, south, west, and east, as well as combined orientations in degrees, minutes, or other appropriate orientation metrics).
The communication device 2100 can use the transceiver 2102 to also determine a proximity to a cellular access point, WiFi, Bluetooth<sup>MR</sup>, or other wireless access point by detection techniques such as using a received signal strength indicator (RSSI) and / or measurements of signal arrival time (TOA) or flight time (TOF). Controller 2106 may use computational technologies such as a microprocessor, a digital signal processor (DSP), programmable gate arrangements, application specific integrated circuits, and / or a video processor with associated storage memory such as Flash, ROM , RAM, SRAM, DRAM, or other storage technologies to execute computer instructions, control, and process data supplied by the aforementioned components of the communication device 2100.
Other components not shown in Figure 21 can be used in one or more embodiments of the description. For example, the communication device 2100 may include a slot for adding or removing an identity module such as a Subscriber Identity Module (SIM) card or Universal Integrated Circuit Card (UICC). SIM or UICC cards can be used to identify services
116 Subscriber, run programs, store subscriber data, etc.
In the specification, the terms such as storage, storage, data warehouse, data storage, database, and substantially any other information storage component relevant to the operation and functionality of a component, refer to memory components, or entities incorporated in a memory or components comprising the memory.
It will be appreciated that the memory components described herein may be either volatile memory or nonvolatile memory, or may comprise both volatile and nonvolatile memory, by way of illustration, and without limitation, volatile memory, nonvolatile memory, storage of disk, and memory storage. In addition, nonvolatile memory may be included in read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable ROM (EEPROM), or flash memory. Volatile memory may comprise random access memory (RAM), which acts as an external cache memory. By way of illustration and without limitation, RAM is available in many forms such as synchronous RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), dual data rate SDRAM (DDR SDRAM), Enhanced SDRAM (ESDRAM ), DRAM Synchlink (SLDRAM), and RAM Rambus direct (DRRAM). In addition, the described memory components of systems or methods in the
117 It is proposed that they understand, without limiting themselves to understanding, these and any other types of memory.
In addition, it will be indicated that the subject matter described can be practiced with other computer system configurations, which comprise single-processor or multiprocessor computer systems, mini-computer devices, central computers, as well as personal computers, devices. laptops (for example, PDA, telephone, clock, tablet computers, netbooks ...), programmable or microprocessor-based industrial or consumer electronics, and the like. The illustrated aspects can also be practiced in distributed computing environments where tasks are carried out by means of remote processing devices that are linked through a communications network; however, some but not all aspects of the description., can be practiced in autonomous computers. In a distributed computing environment, program modules can be placed on both local and remote memory storage devices.
Some of the modalities described herein may also employ artificial intelligence (AI) to facilitate the automation of one or more features described herein. For example, artificial intelligence can be used to determine positions around
118 of a wire that should be placed dielectric waveguides
604 and 606 in order to increase the maximum transfer efficiency. The modalities (for example, in connection with the automatic identification of the acquired cell sites that provide a maximum value / benefit after the addition to a communication network employ different AI-based schemes different modalities employ the priority classifier of each site. thereof.
can take
In addition, it can be done to determine a classification or classifier is an input function, x the input belongs trust (class). This statistical analysis x3, cell of the acquired network. One that maps a class, classification and / or factoring in costs forecasting or inferring a perform support employ.
Space split vector attributes to one is probabilistic and action utilities than one automatically. A trustworthy machine to say, f (x) = use a (for example, user desires vectors of
The SVM operates by finding a hyper-surface in that of possible entries, which the hyper-surface attempts the activation criteria of the non-activation criteria.
Intuitively, this makes the classification correct to test the data that is
119 close, but not identical to training data. Other approaches to classification of directed and non-directed models include, for example, Naive Bayes, Bayesian networks, decision trees, neural networks, diffuse logic models, and independence probabilistic.
they can use classification models that
This is also provide different classification patterns as used in inclusive statistical regression that is used to develop priority models.
As will be readily appreciated, one or more of the modalities may employ classifiers that are explicitly trained (for example, by generic training data), as well as implicitly trained (for example, by observing EU behavior, operator preferences, historical information, reception of extrinsic information). For example, SVMs can be configured through a training or learning phase within a classifier constructor and feature selection module. Therefore, classifiers can be used to automatically learn and perform different functions, which include, but are not limited to determination according to a predetermined criterion of which of the acquired cell sites will benefit a maximum number of subscribers and / or which of the
120 Acquired cell sites will add a minimum value to the existing communication network coverage, etc.
As used in some contexts in this application, in some embodiments, the terms component, system and the like are proposed to refer to, or understand, a computer related computer entity or an entity related to an operational apparatus with one or more specific functionalities, where the entity can be either hardware, a combination of hardware and software, software, or running software. As an example, a component can be, but is not limited to, a process that runs on a processor, a processor, an object, an executable, a thread of execution, computer-executable instructions, a program, and / or a computer By way of illustration and not limitation, both an application that runs on a server and the server can be a component. One or more components may reside within a process and / or thread of execution and a component may be placed on a computer and / or distributed between two or more computers. In addition, these components can be executed from different computer readable media that have different data structures stored therein. The components can communicate through local and / or remote processes such as according to a signal that has one or more
121 data packets (for example, data of a component that interacts with another component in a local system, distributed system, and / or through a network such as the Internet with other systems through the signal). As another example, a component can be an apparatus with specific functionality provided by mechanical parts operated by electrical or electronic circuitry, which is operated by a software or firmware application executed by a processor, where the processor can be internal or external to the apparatus and run at least part of the software or firmware application. As yet another example, a component may be an apparatus that provides specific functionality through electronic components without mechanical parts, the electronic components may comprise a processor therein to execute software or firmware that at least partially confers the functionality of the Electronic components. While different components have been illustrated as separate components, it will be appreciated that multiple components can be implemented as a single component, or a single component can be implemented as multiple components, without departing from the example embodiments.
In addition, different modalities can be implemented as a manufacturing method, device or article using engineering techniques and / or standard programming for
122 produce software, firmware, hardware or - any combination thereof to control a computer to implement the described matter. The term manufacturing article as used herein is intended to encompass a computer program accessible from any device readable by computer or storage readable by computer / media. For example, computer readable storage media may include, but are not limited to, magnetic storage devices (e.g., hard disk, floppy disk, magnetic strips), optical discs (e.g., compact disk (CD), disk Versatile digital (DVD)), smart cards and flash memory devices (for example, card, memory card, key unit). Of course, those skilled in the art will recognize that many modifications can be made to this configuration without departing from the scope or spirit of the different modalities.
In addition, the words example and example are used herein in the sense that they act as an instance or illustration. Any modality or design described herein as an example or example will not necessarily be considered as preferred or advantageous with respect to other designs or modalities. On the contrary, the use of the word example or example proposes that
123 presents concepts in a concrete way, as used in this application, the term or is proposed to mean one or inclusive rather than one or -exclusive. That is, unless specified in a way or clearly by context,
X uses A or
B is proposed to mean any of the natural inclusive permutations. That is, if X employs
TO; X uses B; or X uses both A and B, so X uses
A or B is satisfied under any of the previous instances. In addition, articles one and one as used in this application and the appended claims should generally be considered to mean one or more unless otherwise specified or clearly by the context that is directed to a singular form.
In addition, the terms such as user equipment, mobile station, subscriber station, access terminal, terminal, headphones, mobile device (and / or terms representing similar terminology) may refer to a wireless device used by a subscriber or user of a wireless communication service to receive or transfer data, control, voice, video, sound, games or substantially any data stream or signal stream. The above terms are used interchangeably herein and with reference to the related figures.
124
In addition, the terms user, subscriber, consumer, customer and the like are used interchangeably throughout the description, unless the context justifies particular distinctions between the terms. It should be appreciated that these terms may refer to human entities' or automated components supported through artificial intelligence (for example, an ability to make inference based, at least, on complex mathematical formalisms), which provides simulated vision, sound recognition, etc.
As used herein, the term "processor" may refer to substantially any computer processing unit or device that comprises, but is not limited to comprising, single core processors; processors with multiple software execution capabilities; multi-core processors; multi-core processors with multiple software execution capabilities; multi-core processors with multi-wire hardware execution technology; parallel platforms; and parallel platforms with distributed shared memory. Additionally, a processor may refer to an integrated circuit, a specific application integrated circuit (ASIC), a digital signal processor (DSP), a field programmable gate array (FPGA), a controller
125 Programmable logic (PLC), a complex programmable logic device (CPLD), a discrete or logic gate of transistors, discrete hardware components or any combination thereof designed to perform the functions described herein. Processors can take advantage of nano-scale architectures, such as, but not limited to, quantum or molecular transistors, switches and gates to optimize space usage or improve user equipment performance. A processor can also be implemented as a combination of computing processing units.
As used herein, the terms such as data storage, database, and substantially any other information storage component relevant to the operation and functionality of a component, refer to memory components, or entities incorporated into a memory or components that comprise memory. It will be appreciated that the computer readable memory components or storage media described herein may be either volatile memory or nonvolatile memory or may include both volatile and nonvolatile memory.
What has been described above includes simple examples of 'different modalities'; It is certainly not
126 It is possible to describe each conceivable combination of components or methodologies for the purpose of describing these examples, but a person skilled in the art can recognize that many additional combinations and permutations of the present modalities are possible. Consequently, the modalities described and / or claimed herein are proposed to cover all these modifications, alterations and variations that fall within the spirit and scope of the appended claims. In addition, to the extent that the term includes used in either the detailed description or in the claims, it is proposed that this term be inclusive in a manner similar to the term that it comprises as being understood is interpreted when used as a word of transition into a claim.
Although they have been illustrated described herein in specific modalities, it should be appreciated that any arrangement that achieves the same or a similar purpose can be replaced by the modalities described or shown by the description.
It is proposed that the description cover any and all adaptations or variations of different modalities.
Combinations of the above modalities, and other modalities not specifically described herein, can be used in the description. For example, one or more characteristics of one or more modalities may be combined with one or more characteristics of one or more other.
127 modalities In one or more modalities, the characteristics that are mentioned positively can also be mentioned negatively and excluded from the modality with or without replacement by another structural and / or functional characteristic. The steps or functions described with respect to the modalities of the description can be carried out in any order. The steps or functions described with respect to the modalities of the description can be carried out separately or in combination with other steps or functions of the description, as well as other modalities or other steps that have not been described in the description. In addition, more or less of all the features described with respect to one modality can also be used.
Contents5
38 sheets
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25 members in 9 offices
Priority claims7
| Document | Office | Kind | Date |
|---|---|---|---|
| 14488346 | United States of America | – | |
| 201414488346 | United States of America | A | |
| 2015047315 | United States of America | W | |
| 14488346 | – | – | – |
| PCTUS2015047315 | – | – | – |
| US201414488346 | – | – | – |
| WO2015US47315 | – | – | – |
Members25
| Document | Office | Kind | |
|---|---|---|---|
| US2016080839A1 | United States of America | A1 | |
| CA2960976A1 | Canada | A1 | |
| WO2016043949A1 | World Intellectual Property Organization (WIPO) | A1 | |
| US2016261310A1 | United States of America | A1 | |
| KR20170056636A | Republic of Korea | A | |
| MX2017003603A | Mexico | A | |
| EP3195607A1 | European Patent Office (EPO) | A1 | |
| CN107113026A | China | A | |
| JP2017529795A | Japan | A | |
| US9906269B2 | United States of America | B2 | |
| US2018138944A1 | United States of America | A1 | |
| BR112017005501A2 | Brazil | A2 | |
| US10063280B2 | United States of America | B2 | |
| US10075212B2 | United States of America | B2 | |
| US2018302123A1 | United States of America | A1 | |
| US10135491B2 | United States of America | B2 | |
| JP6457076B2 | Japan | B2 | |
| US2019052312A1 | United States of America | A1 | |
| KR101954595B1 | Republic of Korea | B1 | |
| KR20190025053A | Republic of Korea | A | |
| MX364594BThis record | Mexico | B | |
| JP2019097172A | Japan | A | |
| US10361750B2 | United States of America | B2 | |
| CA2960976C | Canada | C | |
| EP3195607B1 | European Patent Office (EPO) | B1 |
2 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Grant or registrationFG | FG | |
| Grant or registrationFG | FG |
Numbers
- Publication
- 364594
- Publication, DOCDB
- 364594
- Publication, EPODOC
- MX364594
- Application
- 2017003603
- Application, DOCDB
- 2017003603
- Application, EPODOC
- MX20170003603
Titles2
- Spanish
- MONITORIZACION Y MITIGACION DE CONDICIONES EN UNA RED DE COMUNICACION.
- English
- MONITORING AND MITIGATION OF CONDITIONS IN A COMMUNICATION NETWORK.
Classification
- CPC, 15
- H04B3/46
- H04B3/52
- H04B3/546
- G08C23/06
- H04Q9/00
- H04B2203/5458
- H04B2203/5495
- H04Q2209/30
- H04Q2209/60
- H01Q1/46
- H04B17/345
- H01P3/10
- H01P3/16
- H01P5/087
- H01P5/103
- IPC, 9
- H04B3 52
- G08C19 16
- G08C23 06
- H01Q1 46
- H04B3 46
- H04B3 54
- H04B17 345
- H04L45 28
- H04Q9 00