Addressable outlet and network including addressable outlets
12 claims: 12 independent, 0 dependent
- 1An outlet (30) for coupling a data unit (7) to data network over a service wiring (13) in a building, the service wiring concurrently carrying an analog service signal and a data signal over the same wires, said outlet comprising:a first connector (22, 31) connectable to said service wiring,a filter (24, 82) connected to said first connector for passing only the data signal,a second connector (38) connectable to said data unit,a hub (11) coupled between the filter and the second connector;characterized by:means for mechanically mounting the outlet to an interior wall of the building, anda processing unit (36) coupled to the hub and comprising an address unit (37) storing at least one address (39) identified in the network, the processing unit (36) being operative to identify and compose messages associated with said at least one address over the network, and wherein the address unit (37) stores different addresses (39) each associated with a respective addressable functionality of the outlet so as to allow separate addressing and diagnosis of each addressable functionality. Netzwerkanschluss (30) zum Verbinden einer Dateneinheit (7) mit einem Datennetzwerk über eine Service-Verkabelung (13) in einem Gebäude, wobei die Service-Verkabelung gleichzeitig ein analoges Servicesignal und ein Datensignal über dieselben Kabel überträgt, wobei der Netzwerkanschluss folgendes umfasst: ein erstes Verbindungselement (22, 31), das mit der Service-Verkabelung verbindbar ist,einen Filter (24, 82), der mit dem ersten Verbindungselement verbunden ist, um so nur das Datensignal durchzuleiten,ein zweites Verbindungselement (38), das mit der Dateneinheit verbindbar ist,einen Hub (11), der zwischen dem Filter und dem zweiten Verbindungselement angeschlossen ist,gekennzeichnet durch: Mittel zum mechanischen Befestigen des Netzwerkanschlusses an einer Innenwand des Gebäudes undeine Verarbeitungseinheit (36), die an den Hub angeschlossen ist und eine Adresseinheit (37) umfasst, die mindestens eine Adresse (39) speichert, die in dem Netzwerk identifiziert ist, wobei die Verarbeitungseinheit (36) dazu betrieben wird, Nachrichten zu identifizieren und zu verfassen, die mit der mindestens einen Adresse über das Netzwerk verknüpft sind, und wobei die Adresseinheit (37) verschiedene Adressen (39) speichert, die jeweils mit einer entsprechenden adressierbaren Funktionalität des Netzwerkanschlusses verknüpft sind, um eine separate Adressierung und Diagnose jeder adressierbaren Funktionalität zu ermöglichen. Prise (30) pour relier une unité (7) de données à un réseau de données par l'intermédiaire d'un câblage (13) de service dans un bâtiment, le câblage de service transportant simultanément un signal de service analogique et un signal de données sur les mêmes câbles, la prise comprenant: un premier connecteur (22, 31) pouvant être connecté au câblage de service,un filtre (24, 82) connecté au premier connecteur pour ne laisser passer que le signal de données,un deuxième connecteur (38) pouvant être connecté à l'unité de données,un concentrateur (11) relié entre le filtre et le deuxième connecteur ;caractérisée par : un moyen pour monter mécaniquement la prise dans une paroi intérieure du bâtiment, etune unité (36) de traitement reliée au concentrateur et comprenant une unité (37) d'adressage mémorisant au moins une adresse (39) identifiée sur le réseau, l'unité (36) de traitement ayant pour fonction d'identifier et de composer des messages associés à l'au moins une adresse sur le réseau, et dans lequel l'unité (37) d'adressage mémorise des adresses (39) différentes, chacune associée à une fonctionnalité adressable respective de la prise afin de permettre un adressage et un diagnostic séparés de chaque fonctionnalité adressable.
- 2Netzwerkanschluss nach Anspruch 1, der des weiteren ein Modem (25, 83) umfasst, das zwischen dem Hub (11) und dem ersten Verbindungselement (22, 81) angeschlossen ist. Prise suivant la revendication 1, comprenant en outre un modem (25, 83) relié entre le concentrateur (11) et le premier connecteur (22, 81). The outlet according to claim 1, further including a modem (25, 83) coupled between the hub (11) and the first connector (22, 81).
- 3Netzwerkanschluss nach Anspruch 2, bei dem die Service-Verkabelung (13) eine Telefonverkabelung ist und der des weiteren folgendes umfasst:einen Tiefpassfilter (23), der an das erste Verbindungselement (22) zum Isolieren der Telefonsignale angeschlossen ist, undein Telefonverbindungselement (56), das an den Tiefpassfilter angeschlossen ist und mit einer Telefoneinheit (26) verbindbar ist. Prise suivant la revendication 2, dans laquelle le câblage (13) de service est un câblage téléphonique, et comprenant en outre : un filtre (23) passe-bas relié au premier connecteur (22) pour isoler des signaux de téléphonie, etun connecteur (56) téléphonique relié au filtre passe-bas et pouvant être connecté à un poste (26) téléphonique. The outlet according to claim 2, wherein the service wiring (13) is telephone wiring and further comprising: a low pass filter (23) coupled to the first connector (22) for isolating telephony signals, anda telephone connector (56) coupled to the low pass filter and connectable to a telephone set (26).
- 4Netzwerkanschluss nach Anspruch 2, bei dem die Service-Verkabelung (13) eine Verkabelung für elektrische Energie ist und der des weiteren folgendes umfasst:einen Verteiler/Kombinator (82), der an das erste Verbindungselement (81) zum Isolieren der Energiesignale angeschlossen ist, undeine Verbindungseinheit für elektrische Energie (84), die an den Splitter/Kombinator angeschlossen ist und mit einer Energie verbrauchenden Vorrichtung verbindbar ist. Prise suivant la revendication 2, dans laquelle le câblage (13) de service est un câblage d'alimentation électrique et comprenant en outre : un séparateur/combineur (82) relié au premier connecteur (81) pour isoler des signaux de puissance, etun connecteur (84) d'alimentation électrique relié au séparateur/combineur et pouvant être connecté à un dispositif consommateur de puissance. The outlet according to claim 2, wherein the service wiring (13) is an electrical power wiring and further comprising: a splitter / combiner (82) coupled to the first connector (81) for isolating power signals, andan electrical power connector (84) coupled to the splitter / combiner and connectable to a power consuming device.
- 5Netzwerkanschluss nach Anspruch 2, bei dem die Service-Verkabelung eine Verkabelung für Kabelfernsehen ist und des weiteren folgendes umfasst:einen Verteiler/Kombinator (82), der an das erste Verbindungselement (81) zum Isolieren der Kabelfernseh-Signale angeschlossen ist, undein Kabelfernseh-Verbindungselement (84), das an den Verteiler/Kombinator angeschlossen ist und mit einer Kabelfernsehvorrichtung verbindbar ist. Prise suivant la revendication 2, dans laquelle le câblage de service est un câblage de télévision par câble et comprenant en outre : un séparateur/combineur (82) relié au premier connecteur (81) pour isoler des signaux de télévision par câble, etun connecteur (84) de télévision par câble relié au séparateur/combineur et pouvant être connecté à un dispositif de télévision par câble. The outlet according to claim 2, wherein the service wiring is a cable television wiring and further comprising: a splitter / combiner (82) coupled to the first connector (81) for isolating cable television signals, anda cable television connector (84) coupled to the splitter / combiner and connectable to a cable television device.
- 6Netzwerkanschluss nach einem der voranstehenden Ansprüche, bei dem die Service-Verkabelung eine Telefon-, eine Energie- oder eine CATV-Verkabelung ist. Prise suivant l'une quelconque des revendications précédentes, dans laquelle le câblage de service est l'un ou l'autre d'un câblage téléphonique, d'alimentation électrique et de télévision par câble. The outlet according to any one of the preceding claims, wherein the service wiring is one out of telephone, power and CATV wiring.
- 7Netzwerkanschluss nach einem der voranstehenden Ansprüche, der zur Befestigung in einer in einer Wand vorgesehenen Netzwerkanschluss-Ausnehmung konfiguriert ist. Prise suivant l'une quelconque des revendications précédentes, configurée pour être montée dans une cavité de prise intégrée à un mur. The outlet according to any one of the preceding claims, being configured for mounting in an in-wall outlet cavity.
- 9A method for isolating a fault in a service wiring installation in a building, the service wiring concurrently carrying an analog service signal and a data signal over the same wires, said service wiring installation including a plurality of outlets and wiring segments interconnecting said outlets to form a signal path, each of the outlets being couplable to the service wiring and to one or more data units and at least one of the outlets being configured for wall mounting and being addressable and operable to reply to an interrogation message, said method comprising sending an interrogation message addressed to the outlets said message including a request for an acknowledge message, and isolating the fault location by analyzing the returning messages, characterized by:storing in said at least one of the outlets different addresses each associated with a respective addressable functionality of the outlet so as to allow separate addressing and diagnosis of each addressable functionality. Procédé pour isoler un défaut dans une installation de câblage de service dans un bâtiment, le câblage de service transportant simultanément un signal de service analogique et un signal de données sur les mêmes câbles, l'installation de câblage de service comportant une pluralité de prises et de segments de câblage interconnectant les prises pour former un trajet de signal, chacune des prises pouvant être reliée au câblage de service et à une ou plusieurs unités de données, et au moins l'une des prises étant configurée pour être montée dans un mur et étant adressable et pouvant être mise en fonctionnement pour répondre à un message d'interrogation, le procédé comprenant l'envoi d'un message d'interrogation adressé aux prises, le message comportant une demande de message d'accusé de réception, et l'isolation de la position du défaut par analyse des messages renvoyés, caractérisé par : la mémorisation, dans l'au moins une des prises, de différentes adresses, chacune associée à une fonctionnalité adressable respective de la prise afin de permettre un adressage et un diagnostic séparés de chaque fonctionnalité adressable. Verfahren zum Isolieren eines Fehlers in einer Service-Verkabelung-Installation in einem Gebäude, wobei die Service-Verkabelung gleichzeitig ein analoges ServiceSignal und ein Datensignal über dieselben Kabel überträgt, wobei die Service-Verkabelung-Installation eine Mehrzahl von Netzwerkanschlüssen und Verkabelungssegmenten umfasst, die die Netzwerkanschlüsse miteinander verbinden, um einen Signalweg auszubilden, wobei jeder der Netzwerkanschlüsse an die Service-Verkabelung und an eine oder mehrere Dateneinheiten anschließbar ist und mindestens einer der Netzwerkanschlüsse dazu konfiguriert ist, in einer Wand befestigt zu werden und dazu adressierbar zu sein und dazu betrieben zu werden, auf eine Anfragenachricht zu antworten, wobei das Verfahren das Senden einer Anfragenachricht umfasst, die an die Netzwerkanschlüsse adressiert ist, wobei die Nachricht eine Anforderung für eine Empfangsnachricht umfasst und den Ort des Fehlers durch Analysieren der Antwortnachrichten isoliert, gekennzeichnet durch: das Speichern von verschiedenen Adressen in dem mindestens einen der Netzwerkanschlüsse, von denen jede mit einer entsprechenden adressierbaren Funktionalität des Netzwerkanschlusses verknüpft ist, um eine separate Adressierung und Diagnose von jeder adressierbaren Funktionalität zu ermöglichen.
- 10Procédé suivant la revendication 9, dans lequel l'isolation du défaut est effectuée depuis un endroit distant relié à l'installation de câblage de service. The method of claim 9 wherein the fault isolation is performed from a remote location coupled with the service wiring installation. Verfahren nach Anspruch 9, bei dem die Isolierung eines Fehlers von einem entfernten Ort ausgeführt wird, der an die Service-Verkabelung-Installation angeschlossen ist.
- 11Procédé suivant la revendication 9, dans lequel l'installation de câblage de service est sélectionnée parmi un câblage téléphonique, un câblage d'alimentation électrique et un câblage de télévision par câble. The method of claim 9 wherein the service wiring installation is selected from telephone wiring, electrical power wiring and cable television wiring. Verfahren nach Anspruch 9, bei dem die Service-Verkabelung-Installation aus einer aus einer Telefonverkabelung, einer Verkabelung für elektrische Energie und einer Kabelanschlussverkabelung ausgewählt ist.
- 12Procédé suivant l'une quelconque des revendications 9 à 11, comprenant la configuration de la prise pour son montage dans une cavité de prise intégrée à un mur. The method according to any one of claims 9 to 11 including configuring said outlet for mounting in an in-wall outlet cavity. Verfahren nach einem der Ansprüche 9 bis 11, das ein Konfigurieren des Netzwerkanschlusses zum Befestigen in einer in einer Wand vorgesehenen Netzwerkanschluss-Ausnehmung umfasst.
Independent claims12
57 paragraphs in 5 sections, as filed
FIELD OF THE INVENTION
The present invention relates to the field of wired Local Area Networks (LAN's) using outlets, and, more specifically, to an addressable outlet for use in such networks.
BACKGROUND OF THE INVENTION
Outlets
The term "outlet" herein denotes an electro-mechanical device, which facilitates easy, rapid connection and disconnection of external devices to and from wiring installed within a building. An outlet commonly has a fixed connection to the wiring, and permits the easy connection of external devices as desired, commonly by means of an integrated connector in a faceplate. The outlet is normally mechanically attached to, or mounted in, a wall. Non-limiting examples of common outlets include: telephone outlets for connecting telephones and related devices; CATV outlets for connecting television sets, VCR's, and the like; and electrical outlets for connecting power to electrical appliances. The term "wall" herein denotes any interior or exterior surface of a building, including, but not limited to, ceilings and floors, in addition to vertical walls.
LAN Environment
Figure 1 shows a typical prior art LAN environment <b>10.</b> Such a network commonly uses 10BaseT or 100BaseTX Ethernet IEEE802.3 interfaces and topology, and features a hub <b>11</b> as a concentrating device, into which all devices are connected. Devices are connected to the hub <b>11</b> by data connectors <b>14a, 14b,</b> and <b>14c,</b> which are housed within network outlets <b>15a, 15b,</b> and <b>15c</b> respectively. Connections to the hub <b>11</b> are via cables <b>13a, 13b,</b> and <b>13c</b> respectively. Data connectors <b>14a, 14b,</b> and <b>14c</b> may be, for example, type RJ-45 connectors; and cables <b>13a, 13b,</b> and <b>13c</b> may be, for example, Category 5 cabling. The data portion of network <b>10</b> uses data units (which may be computers) <b>7a, 7b,</b> and <b>7c,</b> which connect to network connectors <b>14a, 14b,</b> and <b>14c</b> via cables <b>16a, 16b,</b> and <b>16c,</b> respectively. A server <b>12</b> may also be connected to the hub <b>11,</b> and can perform the external connection functionality, as well as other server functions as applied in the art.
Although Figure 1 refers to the hub <b>11</b> as a concentrating device, it is to be understood that any type of device having multiple network interfaces and supporting a suitable connectivity can be used, non-limiting examples of which include shared hubs, switches (switched hubs), routers, and gateways. Hence, the term "hub" herein denotes any such device without limitation. Furthermore, network <b>10</b> can be any packet-based network, either in-building or distributed, such as a LAN or the Internet.
The topology of network <b>10</b> as shown in Figure 1 incurs various maintenance difficulties. The wiring from the hub <b>11</b> to the data unit <b>7a,</b> for example, includes wire <b>13a,</b> connector <b>14a</b> and wire <b>16a.</b> Because these conductors are continuous, there is no easy way to distinguish a break or short-circuit in wire <b>13a</b> from a break or short-circuit in wire <b>16a,</b> nor from a break or short-circuit in connector <b>14a.</b> Troubleshooting such failures requires disconnecting cables and inserting dedicated test equipment or making elaborate and thorough substitutions of components that are known to be functional. Such procedures are complicated, labor-intensive, time-consuming, and expensive. Furthermore, in the common case of an outlet to which no data unit is connected, there is no simple way to test the continuity of wiring from the hub to the outlet. In addition, in many cases it is necessary to test the LAN from a remote place (such as via the Internet) in cases where it is not possible to attach testing equipment to non-connected outlets.
Discussion of network management and example of network management system are part of U.S. Patent 5,812,750 to Dev <i>et al.</i>
Home Networking
Most existing offices and some of the newly built buildings facilitate the network structure of network 10. However, implementing such a network in existing buildings typically requires installation of new wiring infrastructure. Such installation of new wiring may be impractical, expensive and hassle-oriented. As a result, many technologies (referred to as "no new wires" technologies) have been proposed in order to facilitate a LAN in a building without adding new wiring. Some of these techniques use existing wiring used also for other purposes such as telephone, electricity, cable television, and so forth. Doing so offers the advantage of being able to install such systems and networks without the additional and often substantial cost of installing separate wiring within the building. In order to facilitate multiple use of wiring within a building, specialized outlets are sometimes installed, which allow access to the wiring for multiple purposes. An example of home networking over coaxial cables using outlets is described in WO 02/065229 published 22 August, 2002 entitled: 'Cableran Networking over Coaxial Cables' to Cohen <i>et al.</i>
The use of such wiring for additional purposes creates a need for ways of easily determining the condition of the wiring and obtaining this information remotely.
Home networking using existing telephone lines will be described as an example.
Definitions and background
The term "telephony" herein denotes in general any kind of telephone service, including analog and digital service, such as Integrated Services Digital Network (ISDN).
Analog telephony, popularly known as "Plain Old Telephone Service" ("POTS") has been in existence for over 100 years, and is well-designed and well-engineered for the transmission and switching of voice signals in the 3-4 KHz portion (or "band") of the audio spectrum. The familiar POTS network supports real-time, low-latency, high-reliability, moderate-fidelity voice telephony, and is capable of establishing a session between two end-points, each using an analog telephone set.
The terms "telephone", "telephone set", and "telephone device" herein denote any apparatus, without limitation, which can connect to a Public Switch Telephone Network ("PSTN"), including apparatus for both analog and digital telephony, non-limiting examples of which are analog telephones, digital telephones, facsimile ("fax") machines, automatic telephone answering machines, voice modems, and data modems.
The terms "data unit", "computer" and "personal computer" ("PC") as used herein include workstations and other data terminal equipment (DTE) with interfaces for connection to a local area network
In-home telephone service usually employs two or four wires, to which telephone sets are connected via telephone outlets.
Home networking over telephone lines.
Figure 2 shows the wiring configuration of a prior-art telephone system including a network 20 for a residence or other building, wired with a telephone line 5, which has a single wire pair that connects to a junction-box 34, which in turn connects to a Public Switched Telephone Network (PSTN) 39 via a cable 33 ('local loop'), terminating in a public switch 32, which establishes and enables telephony from one telephone to another. The term "high-frequency" herein denotes any frequency substantially above such analog telephony audio frequencies, such as that used for data. ISDN typically uses frequencies not exceeding 100KHz (typically the energy is concentrated around 40KHz). The term "telephone line" herein denotes electrically-conducting lines which are intended primarily for the carrying and distribution of analog telephony signals, and includes, but is not limited to, such electrically-conducting lines which may be pre-existing within a building and which may currently provide analog telephony service.
Junction box 34 separates the in-home circuitry from the PSTN and is used as a test facility for troubleshooting as well as for new wiring in the home. A plurality of telephones may connect to telephone lines 5 via a plurality of telephone outlets. Each outlet has a connector (often referred to as a "jack"), commonly being in the form of RJ-11 connectors in North-America. Each outlet may be connected to a telephone unit via a compatible "plug" connector that inserts into the jack.
Wiring 5 is usually based on a serial or "daisy-chained" topology, wherein the wiring is connected from one outlet to the next in a linear manner; but other topologies such as star, tree, or any arbitrary topology may also be used. Regardless of the topology, however, the telephone wiring system within a residence always uses wired media: two or four copper wires terminating in one or more outlets which provide direct access to these wires for connecting to telephone sets.
It is often desirable to use existing telephone wiring simultaneously for both telephony and data networking. In this way, establishing a new local area network in a home or other building is simplified, because there is no need to install additional wiring.
The concept of frequency domain / division multiplexing (FDM) is well-known in the art, and provides means of splitting the bandwidth carried by a wire into a low-frequency band capable of carrying an analog telephony signal and a high-frequency band capable of carrying data communication or other signals. Such a mechanism is described, for example, in U.S. Patent 4,785,448 to Reichert <i>et al.</i> (hereinafter referred to as "Reichert"). Also widely used are xDSL systems, primarily Asymmetric Digital Subscriber Loop (ADSL) systems.
Examples of relevant pior-art in this field are the technology commonly known as HomePNA (Home Phoneline Networking Alliance), WO 99/12330 to Foley and as disclosed in U.S. Patent 5,896,443 to Dichter (hereinafter referred to as "Dichter"). Dichter and others suggest a method and apparatus for applying a frequency domain /division multiplexing (FDM) technique for residential telephone wiring, enabling the simultaneous carrying of telephony and data communication signals. The available bandwidth over the wiring is split into a low-frequency band capable of carrying an analog telephony signal, and a high-frequency band capable of carrying data communication signals. In such a mechanism, telephony is not affected, while a data communication capability is provided over existing telephone wiring within a home.
In addition to illustrating a residential telephone system, Figure 2 also shows the arrangement of a Dichter network. Network <b>20</b> serves both analog telephones and provides a local area network of data units. Data Terminal Equipment (DTE) units <b>7a, 7b, 7c</b> and <b>7d</b> are connected to the local area network via Data Communication Equipment (DCE) units, <b>25a, 25b, 25c</b> and <b>25d,</b> respectively. Examples of Data Communication Equipment include, but are not limited to, modems, line drivers, line receivers, and transceivers (the term "transceiver" herein denotes a combined transmitter and receiver), which enables data communication over the high spectrum of telephone line <b>5.</b> DCE units ('phoneline modems') <b>25a, 25b, 25c</b> and <b>25d</b> are respectively connected to high pass filters (HPF) <b>24a, 24b, 24c and 24d,</b> which allow access to the high-frequency band carried by telephone line <b>5.</b> In order to avoid interference to the data network caused by the telephones, low pass filters (LPF's) <b>23a, 23b, 23c</b> and <b>23d</b> are added to isolate the POTS carrying band, so that telephones <b>26a, 26b, 26c</b> and <b>26d</b> connects to telephone line <b>5</b> for providing PSTN. Furthermore, a low pass filter may also be connected to Junction Box <b>34</b> (not shown in the figure), in order to filter noise induced from or input to PSTN wiring <b>33.</b>
WO 01/71980 published September 27, 2001 entitled <i>"Telephone Outlet and System for a Local Area Network Over Telephone Lines"</i> in the name of the present inventor and assigned to the present assignee, describes the integration of DCE <b>25,</b> HPF <b>24,</b> and LPF <b>23</b> components into outlets <b>21</b> in order to reduce complexity, as shown in figure 2. This allows direct connection of telephone sets <b>6a, 6b, 6c,</b> and <b>6d</b> to outlets <b>21a, 21b, 21c,</b> and <b>21d,</b> respectively, via dedicated connectors (as is done in prior-art common telephone outlets), as well as direct and easy connection of data units <b>7a, 7b, 7c,</b> and <b>7d</b> to the respective outlets via dedicated jacks, as is usually done in LAN systems (as shown in figure 1).
The topology of network <b>20</b> as shown in figure 2 exhibits the maintenance difficulties previously discussed. The data flow from data unit <b>7a</b> to data unit <b>7b,</b> for example, is via wiring <b>16a,</b> wiring <b>5b</b> and wiring <b>16b,</b> as well as connectors such as <b>22a</b> and <b>22b.</b> Having continuous data flow, there is no easy way to distinguish a short-circuit in wiring <b>16a</b> from a short-circuit in wiring <b>16b,</b> or from a short-circuit in wiring <b>5b,</b> or from a short-circuit in any of the interim connectors. Similarly, a break in the wiring cannot be easily or remotely isolated to wiring <b>16a</b> or wiring <b>16b.</b> Troubleshooting any of the above failures can only be accomplished by trial and error and requires disconnecting cables <b>16a, 16b, 16c,</b> and <b>16d,</b> and inserting other data units to the outlets. If the failure, however, is in wiring <b>5c,</b> more troubleshooting will be necessary, and can ultimately involve disconnecting the entire network. As noted above, this is a complicated, expensive, labor-intensive, and time-consuming effort. Furthermore, in the common case of an outlet into which no data units are connected, there is no simple way to test wiring continuity to the outlet. In addition, as explained in WO 99/03255 to Bell, in many cases it is required to test the LAN from a remote place (e.g. via the Internet), and no local presence is available to approach the disconnected outlets for attaching testers.
US 4,787,082 entitled Data flow control arrangement for local area network (Delaney <i>et al</i>.) published November 22, 1988 discloses a local data distribution network wherein a plurality of bi-directional data distribution busses are each connected to a bus master control circuit at a terminal end of the bus. Connected to each of the data distribution busses are a plurality of passive outlets to which intelligent connectors or stations may be connected. Each station has a unique address and is utilized for individually coupling data processing devices to the bus. A bus termination hub switching facility cooperates with the included group of bus master control circuits to interconnect data processing stations on the various busses. The bus termination hub facility includes bus monitoring, status polling and maintenance facilities. A faulty bus is disconnected if a fault is discovered during monitoring intervals. It remains disconnected until the fault is corrected.
JP 55132197A2 published October 14, 1980 in the name of Sharp Corporation and entitled <i>"Unit Controlling Electric Equipment Making Use of House Wiring"</i> relates to the control of electrical equipment connected to house wiring. An address information signal is sent through a coupling unit from a transmission controller to house wiring. On the reception side, reception controllers receive the address information signal through coupling units inserted into sockets provided at respective positions of the house wiring. From one of controllers whose incorporated address information agrees with the received address information, answer information is sent back to the transmission side. On the transmission side, an operation command code is sent out upon receiving the answer information from the reception side so as to control electric equipment.
In both above prior art patents, passive outlets are used, hence there is no way to distinguish between a failure in the wiring into which the outlets are connected, and a failure in the wiring / equipment connected to the outlet.
US Patent 4,785,448 to Reichert Andrew et al. entitled "System for Communicating Digital Data on a Standard Office Telephone System" teaches a device for coupling a data unit to data network over a service wiring in a building, the service wiring concurrently carrying an analog telephone signal and data signal over the same wires.
PCT publication WO 02/102019 to Rubinstein Alan et al. entitled "Network Management Device and Method" teaches a method for isolating a fault in a wiring installation in a building, the wiring installation including a plurality of outlets and wiring segments interconnecting said outlets to form a signal path, each of the outlets being couplable to the wiring and to one or more data units.
There is thus a widely recognized need for, and it would be highly advantageous to have, a method and system for allowing remote diagnosis of LAN environment outlets without requiring local access to the network and without dismantling the network. This goal is met by the present invention.
SUMMARY OF THE INVENTION
It is an object of the present invention to allow convenient determination of the status of installed wiring within a building, and the outlets and connectors thereto.
It is a further object of the present invention to allow convenient determination of the condition of devices and apparatus connected to the various outlets of an installed wiring system. It is moreover an object of the present invention to permit such determination remotely.
Viewed from a first aspect, the present invention provides an outlet for coupling a data unit to data network over a service wiring in a building, the service wiring concurrently carrying an analog service signal and a data signal over the same wires, said outlet comprising: <ul id="ul0001" list-style="none" compact="compact"><li>a first connector connectable to said service wiring,</li><li>a filter connected to said first connector for passing only the data signal,</li><li>a second connector connectable to said data unit,</li><li>a hub coupled between the filter and the second connector;</li></ul> characterized by: <ul id="ul0002" list-style="none" compact="compact"><li>means for mechanically mounting the outlet to an interior wall of the building, and</li><li>a processing unit coupled to the hub and comprising an address unit storing at least one address identified in the network, the processing unit being operative to identify and compose messages associated with said at least one address over the network, and wherein the address unit stores different addresses each associated with a respective addressable functionality of the outlet so as to allow separate addressing and diagnosis of each addressable functionality</li></ul>
Viewed from a second aspect, the present invention provides a method for isolating a fault in a service wiring installation in a building, the service wiring concurrently carrying an analog service signal and a data signal over the same wires, said service wiring installation including a plurality of outlets and wiring segments interconnecting said outlets to form a signal path, each of the outlets being couplable to the service wiring and to one or more data units and at least one of the outlets being configured for wall mounting and being addressable and operable to reply to the interrogation message, said method comprising sending an interrogation message addressed to the network entities, said message including a request for an acknowledge message, and isolating the fault location by analyzing the returning messages, characterized by: <ul id="ul0003" list-style="none" compact="compact"><li>storing in said at least one of the outlets different addresses each associated with a respective addressable functionality of the outlet so as to allow separate addressing and diagnosis of each addressable functionality.</li></ul>
Outlets according to the present invention include, but are not limited to, electrical power outlets, telephone outlets, and cable television outlets.
The term "information network" herein denotes any system that allows multiple devices to send and receive information of any kind, wherein each device may be uniquely identified for purposes of sending and receiving information. Information networks include, but are not limited to, data networks, control networks, cable networks, and telephone networks. A data network utilizing outlets according to the present invention can be a local area network (LAN) or part of a wide-area network, including the Internet.
Therefore, according to the present invention there is provided an outlet for use with wiring installed in a building, and having at least one address that uniquely identifies the outlet within an information network.
BRIEF DESCRIPTION OF THE DRAWINGS
The invention is herein described, by way of non-limiting example only, with reference to the accompanying drawings, wherein: <ul id="ul0004" list-style="none" compact="compact"><li>Figure 1 shows a prior art local area network.</li><li>Figure 2 shows a prior art local area network over telephone lines.</li><li>Figure 3 shows a local area network outlet according to the present invention.</li><li>Figure 4 shows a local area network according to the present invention.</li><li>Figure 5 shows a local area network over telephone lines outlet according to the present invention.</li><li>Figure 6 illustrates the front panel of a telephone outlet according to the present invention.</li><li>Figure 7 shows a local area network over telephone lines according to the present invention.</li><li>Figure 8 illustrates a general form of an outlet according to the present invention, which can serve in various wired network environments, such as CATV and electrical power networks.</li><li>Figure 9 shows a remote-managed local area network according to the present invention.</li></ul>
DESCRIPTION OF THE INVENTION
The principles and operation of a network according to the present invention may be understood with reference to the drawings and the accompanying description. The drawings and descriptions are conceptual only. In actual practice, a single component can implement one or more functions; alternatively, each function can be implemented by a plurality of components and circuits. In the drawings and descriptions, identical reference numerals indicate those components that are common to different embodiments or configurations.
Figure 3 schematically shows an outlet <b>30</b> according to a first embodiment of the invention. As shown in Figure 3, outlet <b>30</b> includes a three-port hub <b>11.</b> One port goes to a connector <b>31,</b> which connects the outlet <b>30</b> to network wiring as previously described, and as is known in the art (such as to wiring <b>13a</b> in Figure 1). Another hub port goes to a connector <b>38,</b> enabling connection of a data unit as described previously and as is known in the art (such as to data unit <b>7a</b> via wiring <b>16a</b> in Figure 1). The third port goes to a processing unit <b>36,</b> integrated within outlet <b>30.</b> Processing unit <b>36</b> provides the basic functionality of a data unit (such as data unit <b>7a</b> of Figure 1), and principally includes an address unit <b>37,</b> with a stored address <b>39,</b> that is unique within the network. For example, in an Ethernet network using interfaces 10BaseT or 100BaseTX according to IEEE802.3, the processing unit <b>36</b> may include a MAC (Media Access Control) address or an IP (Internet Protocol) address, as the address <b>39.</b> In this manner, outlet <b>30</b> becomes an addressable entity within the network, and is able to respond to messages carrying address <b>39,</b> or to transmit messages containing address <b>39</b> as a source. Because the outlet <b>30</b> is an addressable entity in the network, it is possible to execute remote diagnostics to determine the status and health of the outlet <b>30.</b> For example, a message calling for a reply can be sent to the outlet <b>30.</b> Receiving an answer from such an outlet confirms the existence of the outlet in the network, as well as the basic functionality of the outlet and any connections to the outlet via which the answer is received. Furthermore, one or more status devices may be integrated in the outlet and addressed either individually or as a group, to providing meaningful data about the outlet status and the condition of the network in general. Typical status devices are voltage sensors, continuity detectors, hub activity indicators, transducers etc. Network condition includes, but is not limited to, such factors as continuity of wiring, connector status, connected devices, topology, signal delays, latencies, and routing patterns. Although the outlet <b>30</b> has been described above as having a single data networking interface <b>38,</b> multiple interfaces can be supported, each connected to a different port of hub <b>11.</b> Processing unit <b>36</b> may also be capable of analyzing received messages, in order to perform actions in response thereto, as well as composing messages for sending, in order to respond to received messages, or to initiate messages to other devices on the network. For example, processing unit 36 may detect an abnormal condition or emergency situation, and may therefore notify other devices on the network via messages.
Managed devices such as managed hub, managed switch and router are known in the art. Outlet <b>30</b> may be viewed as a managed device housed within an outlet.
Figure 4 shows a Local Area Network (LAN) <b>40</b> according to the present invention. Basically, the infrastructure of network <b>40</b> is the same as that of prior art network <b>10</b> (Figure 1), in which hub <b>11</b> is connected in a 'star' topology to various end units via network wiring <b>13a</b> and <b>13b,</b> which are connected respectively to outlets <b>15a</b> and <b>15b</b> (in Figure 1). However, according to the present invention, outlets <b>15a</b> and <b>15b</b> of prior-art network <b>10</b> are replaced by outlets <b>30a</b> and <b>30b,</b> respectively, which contain addressable processing units <b>36a</b> and <b>36b,</b> as previously described with reference to Figure 3. For example, outlet <b>30a</b> has built-in processing unit <b>36a</b>, addressing unit <b>37a,</b> and address <b>39a.</b> Outlet <b>30a</b> allows for connection of data unit <b>7a</b> via a connector <b>38a</b> using wiring <b>16a.</b> Similarly, outlet <b>30b</b> allows data unit <b>7b</b> to be connected to the network via wiring <b>16b</b> to a connector <b>38b.</b> Addressing units <b>37a</b> and <b>37b</b> integrated within outlets <b>30a</b> and <b>30b,</b> respectively, allow for unique identification of outlets <b>30a</b> and <b>30b</b> by addresses <b>39a</b> and <b>39b,</b> respectively.
Network <b>40</b> offers the advantages of being able to individually address each outlet, hence allowing remote diagnostics. The outlets <b>30a</b> and <b>30b</b> of network <b>40</b> can now facilitate fault localization. For example, the server <b>12</b> will transmit a message to outlet <b>30a,</b> using outlet <b>30a</b> address, followed by a message to data unit <b>7a.</b> In the case wherein outlet <b>30a</b> responds to the server <b>12</b> and data unit <b>7a</b> does not respond, the most probable scenario is that the connection between the data unit and outlet <b>30a</b> is faulty or no data unit is connected to outlet <b>30a.</b> Hence, assuming data unit <b>7a</b> is connected, the fault is easily limited only to connector <b>38a,</b> wiring <b>16a</b> or data unit <b>7a.</b> Similarly, in the case wherein no reply is received from outlet <b>30a,</b> the fault is localized to cable <b>13a,</b> connector <b>31a</b> or outlet <b>30a.</b>
Powering the outlet <b>30</b> can be implemented either locally, by connecting a power supply to each outlet, or, preferably, via the network itself. In the latter case, commonly known as "Power over LAN", the power can be carried to the outlet from a central location either by an additional wire pair, using the well-known phantom configuration, or by the FDM (Frequency Division / Domain Multiplexing) method. The latter commonly employs DC feeding, which is frequency-isolated from the data carried in the higher part of the spectrum.
In another embodiment, the present invention is used in a data network over in-building telephone lines, where analog telephony signals are carried in the low-frequency portion of the spectrum, and data communication signals are carried in the high-frequency portion. Figure 5 shows an outlet <b>50</b> according the present invention, which is able to separate and combine signals in different portions of the spectrum. Outlet <b>50</b> connects to the telephone wiring via a connector *<b>22,</b> preferably located at the rear part of outlet <b>50,</b> where outlet <b>50</b> mechanically mounts to an interior wall of the building. A Low Pass Filter (LPF) <b>23</b> isolates the analog telephony part of the spectrum for connection to an analog telephone via a jack <b>56.</b> Jack <b>56</b> is preferably a standard telephone jack, such as RJ-11 in North-America. Data communication signals are isolated by a High Pass Filter (HPF) <b>24,</b> which connects to a Data Communications Equipment (DCE) unit <b>25,</b> which serves as a modem for data communications over the telephone line media. An integrated hub <b>11</b> allows sharing data between processing unit <b>36,</b> including address unit <b>37</b> with address <b>39,</b> and a data jack <b>38,</b> for connecting external devices to the network via DCE unit <b>25.</b> Processing unit <b>36</b> with integrated address unit <b>37</b> allows messages directed to or from the outlet to be uniquely routed. Outlet <b>50</b> supports both standard analog telephony (via jack <b>56)</b> as well as data communications via jack <b>38.</b>
Figure 6 pictorially illustrates the front panel of a telephone outlet <b>50</b> according to the present invention, having both telephony connector <b>56</b> and data connector <b>38.</b>
Figure 7 illustrates a network <b>70</b> that operates over telephone lines <b>5a, 5b,</b> and <b>5c,</b> and employs outlets <b>50a</b> and <b>50b</b> according to the present invention. Network <b>70</b> supports regular PSTN telephony service via analog telephone sets <b>26a</b> and <b>26b,</b> connected to the telephone connectors of outlets <b>50a</b> and <b>50b</b> respectively. Simultaneously, data networking can be accomplished by data units <b>7a</b> and <b>7b.</b> Outlets <b>50a</b> and <b>50b</b> can each be addressed by any other outlet or data unit in the network using dedicated addresses <b>39a</b> and <b>39b,</b> conveyed by address units <b>37a</b> and <b>37b,</b> respectively. Similarly, outlets <b>50a</b> and <b>50b</b> can address any other entity in the network, and as such both the outlets and the various network segments can be fault isolated as described above.
Although the invention has been so far demonstrated as relating to telephone wiring and telephone outlets, the invention can be similarly applied to any type of wired networking within a building, such as CATV or electrical power wiring. Figure 8 illustrates an outlet <b>80,</b> which is a general embodiment of the present invention. Outlet <b>80</b> is similar in overall layout to the outlet <b>50</b> shown in Figure 5. Outlet <b>80</b> connects to the relevant wiring via a connector <b>81</b> and contains an integrated data/service splitter/combiner unit <b>82,</b> which isolates the data carried over the wiring from the main service signal. In the case of telephony, unit <b>82</b> contains a low-pass filter (such as LPF <b>23a</b> as shown in Figure 7) and a high-pass filter (such as HPF <b>24a</b> as shown in Figure 7). In the case of electrical power wiring, the AC power is split by unit <b>82</b> and fed to a socket <b>84,</b> for supplying electrical power as is normal for such an outlet. In this case, a modem <b>83</b> being a power-line carrier (PLC) modem interfaces the hub <b>11</b> to the integrated data/service splitter/combiner unit <b>82</b> to allow data communication over the power line. Similarly, in the case of a CATV application, where the CATV wiring is used for the network infrastructure, modem <b>83</b> is a coaxial cable modem, and unit <b>82</b> isolates the CATV signal from the data signal.
Although the invention has been so far described as relating to Ethernet/IP-based data networks, the invention can be similarly applied to any type of data network. Furthermore, although packet networks are the most common for local area networks, the invention is not restricted to packet networks only, and can be applied to any digital data network, where network entities are identified uniquely by addresses.
Furthermore, although the invention has been described as relating to networks based on continuous electrical conducting media (telephone, CATV, or electrical power), and the relevant modem and associated circuitry are connected in parallel to the wiring infrastructure, the invention can be applied equally to the case wherein the wiring is not continuous, but is in discrete segments. Such an arrangement is disclosed in WO 0007322 published February 10, 2000 and entitled <i>"Local Area Network of Serial Intelligent Cells</i>" in the name of the present inventor and assigned to the present assignee.
Although outlets <b>30, 50</b> and <b>80</b> are each described above as having a single data connection, it is to be understood that multiple data network interfaces can be included within an outlet, each connected to different port of the respective hub (such as hub <b>11a</b>, as shown in Figure 7).
In addition, although the present invention has been described with respect to a single address associated with each outlet, it will be appreciated that multiple addresses can also be assigned to an outlet. Different addresses can be associated with different data ports and/or with different functionalities of the outlet-thus improving fault isolation by separately addressing the addressable data ports or functionalities until an absence of a response signal to a diagnostic message indicates that the addressed port and/or functionality of the outlet is faulty or that there is a break in the connection path thereto.
While the invention has been described with regard to local area networks, wherein the fault is localized locally, it will be appreciated that assigning addresses to outlets facilitates also remote diagnostics and fault localization. Such a network <b>90</b> is described in Figure 9. Network <b>90</b> comprises local area network part similar to network <b>40</b> above (Phoneline, CATV or powerline based networks can equally be used). However, an external connection is added to an external network <b>92.</b> The connection makes use of a gateway <b>93,</b> bridging between the external WAN and the internal LAN, commonly known as Integrated Access Device (IAD), Home or Residential Gateway (RG). For example, the external network can be a Wide Area Network (WAN), either wired or non-wired. For example, the external network <b>92</b> can be the Internet. The connection can be via different access technologies such as xDSL (using xDSL modem), CATV based (using Cable Modem or Set Top Box) or wireless (satellite or terrestrial). A remote server <b>91</b> is a data unit connected remotely to the WAN <b>92,</b> and hence can communicate with the local area network and its components, data units <b>7a, 7b</b> and outlets <b>30a</b> and <b>30b.</b> In such an arrangement, fault isolation can be performed remotely, managed by the server <b>91.</b> By communicating with the outlets <b>30a</b> and <b>30b</b> and the data units <b>7a</b> and <b>7b,</b> the server <b>91</b> can determine the fault localization to a segment level as described above. Furthermore, the remote server <b>91</b> may check the system integrity up to the outlets level, even if no data units are connected or operative. In such a case, a Telco (through xDSL connection) or CATV provider (through Cable modem or set-top-box) can remotely test and verify the status of the network within a home.
Contents5
9 sheets
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Every citation, both ways
| Document | Relation | Office |
|---|---|---|
| EP0200016A | Cites | European Patent Office (EPO) |
| WO0171980A | Cites | World Intellectual Property Organization (WIPO) |
| WO9837648A | Cites | World Intellectual Property Organization (WIPO) |
| WO02102019A | Cites | World Intellectual Property Organization (WIPO) |
| GB2301743A | Cites | United Kingdom |
| US4785448A | Cites | United States of America |
23 members in 8 offices
Priority claims9
| Document | Office | Kind | Date |
|---|---|---|---|
| 15282402 | Israel | A | |
| 15282402 | Israel | A | |
| 15282402 | Israel | – | |
| 0300948 | Israel | W | |
| 0300948 | Israel | W | |
| 15282402 | – | – | – |
| IL20020152824 | – | – | – |
| IL2003000948 | – | – | – |
| WO2003IL00948 | – | – | – |
Members23
| Document | Office | Kind | |
|---|---|---|---|
| CA2505301A1 | Canada | A1 | |
| WO2004045151A2 | World Intellectual Property Organization (WIPO) | A2 | |
| AU2003282347A1 | Australia | A1 | |
| AU2003282347A8 | Australia | A8 | |
| WO2004045151A3 | World Intellectual Property Organization (WIPO) | A3 | |
| US2005025162A1 | United States of America | A1 | |
| EP1563643A2 | European Patent Office (EPO) | A2 | |
| CN1711721A | China | A | |
| EP1563643B1This record | European Patent Office (EPO) | B1 | |
| DE60311139D1 | Germany | D1 | |
| EP1826955A1 | European Patent Office (EPO) | A1 | |
| DE60311139T2 | Germany | T2 | |
| US2007286232A1 | United States of America | A1 | |
| US2008175256A1 | United States of America | A1 | |
| US2008198777A1 | United States of America | A1 | |
| US2008205606A1 | United States of America | A1 | |
| US7522615B2 | United States of America | B2 | |
| CN100508488C | China | C | |
| CN101605080A | China | A | |
| US7911992B2 | United States of America | B2 | |
| US7990908B2 | United States of America | B2 | |
| IL152824A | Israel | A | |
| US8295185B2 | United States of America | B2 |
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Numbers
- Publication
- 1563643
- Publication, DOCDB
- 1563643
- Publication, EPODOC
- EP1563643
- Application
- 3773960
- Application, DOCDB
- 03773960
- Application, EPODOC
- EP20030773960
Titles3
- German
- ADDRESSIERBARE TELEFONSTECKDOSE UND DATENNETZ MIT SOLCHEN TELEFONSTECKDOSEN
- English
- ADDRESSABLE OUTLET AND NETWORK INCLUDING ADDRESSABLE OUTLETS
- French
- PRISE TELEPHONIQUE ADRESSABLE ET RESEAU UTILISANT CETE PRISE TELEPHONIQUE
Classification
- CPC, 10
- H04L12/44
- H04L12/2803
- H04L12/2818
- H04L12/2827
- H04L29/12839
- H04L41/0677
- H04L2012/2843
- H04L61/6022
- H04L2012/2845
- H04L2101/622
- IPC, 5
- H04L12 44
- H04M11 06
- H04L12 24
- H04L12 26
- H04L12 28
Designated states27
- Contracting states, 27
- Austria
- Belgium
- Bulgaria
- Switzerland
- Cyprus
- Czechia
- Germany
- Denmark
- Estonia
- Spain
- Finland
- France
- United Kingdom
- Greece
- Hungary
- Ireland
- Italy
- Liechtenstein
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Portugal
- Romania
- Sweden
and 3 moreShow fewer
- Slovenia
- Slovakia
- Türkiye
