CA2874867A1

Methods and systems of an all purpose broadband network

Abstract

The present disclosure is related to a large-scale broadband wireless network capable of providing a very high wireless data capacity. The broadband wireless network may combine proven leading edge commercial wireless design and architecture methodologies with advanced RF technologies to substantially improve spectrum efficiency, spectrum usage, and data performance, including beam forming, optimization servers, beam forming operations, locating and tracking user equipment, data transmission and reception control, reduction of inter-cell interference, delivery of real-time services, conserving back-haul, integration of a sensor platform, capability for implementing a dual-use network, data rate priority usage, usage-data reporting, mobile base-station replacement, and active hot standby redundancy.

CA2874867A1, drawing sheet 1
Sheet 1 of 57

Term

6.7 yearsto projected expiry

Projected expiry 13 June 2033, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

162 claims: 15 independent, 147 dependent

  1. 1
    CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 CLAIMS What is claimed is:L A system comprising: a first, cellular wireless RF base station node in RF communication with a mobile device, the first cellular wireless RF base station node being connected to a back haul network and having an RF coverage area: at least one first base station optimization server that is connected to the first cellular wireless RF base station and to the back haul network in parallel with the first cellular wireless RF base station node so as to permit a data packet to selectively flow either (a) between the first cellular wireless RF base station node and the back haul network, (b) between the at least one first base station optimization server and the back haul network, or (¢) between the first cellular wireless RF base station node and the at least one first base station optimization server;a second cellular wireless RF base station node, the second cellular wireless RF base station node being connected to a back haul network and having an RF coverage area.;at least one second base station optimization server that is connected to the second cellular wireless RF base station and to the back haul network in parallel with the second cellular wireless RF base station node so as to permit a data packet to selectively flow either (a) between the second cellular wireless RF base station node and the back haul network, (b) between the at least one second base station optimization server and the back haul network, or (¢) between the second cellular wireless RF base station node and the at least one second base station optimization server;a regional optimization server communicatively connected with a public data networkgateway (PGW) on the public data network side of the PGW and adapted to (a) run an application for providing services to the mobile device and (b) transfer the application’s functionality for the mobile device to the at least one base station optimization server of the first cellular wireless RF base station node based on a usage characteristic of the mobile device;and 169 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 a wireless control facility communicatively connected with the regional optimization server and at least one of the first and second cellular wireless RF base station nodes;wherein the respective RF coverage areas of the first and second cellular base station nodes overlap and the wireless control facility is adapted to manage during a mobile device handover of the mobile device from the first to the second cellular wireless RF base station node ta) the application’s connectivity with the mobile device, and (b) the application’s functionality transfer to the at least one base station optimization server of the second cellular wireless RF base station node,
  2. 16
    The system of claim I, wherein at least one of the at least one base station optimization sesver of the first cellular wireless RF base station node and the at least one base station optimization server of the second cellular wireless RF base station node is co-located with its respective one of the first and second cellular wireless RF base station nodes.
  3. 24
    A method comprising:providing a first cellular wireless RF base station node in RF communication with a mobile device, the first cellular wireless RF base station node being connected to a back haul network and having an RF coverage area;providing at least one first base station optimization server that is connected to the first cellular wireless RF base station and to the back haut network in parallel with the first cellular wireless RF base station node so as to permit a data packet to selectively flow either (a) between the first cellular wireless RF base station node and the back haul network, (b) between the at least one first base station 173 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 optimization server and the back haul network, or (¢) between the first cellular wireless RF base station node and the at least one first base station optimization server;providing a second cellular wireless RF base station node, the second cellular wireless RF base station node being connected to a back haul network and having an RF coverage area;providing second cellular wireless RF base station and to the back haul network in parallel with the second cellular wireless RF base station node so as to permit a data packet to selectively flow either (a) between the second cellular wireless RF base station node and the back haul network, s’b) between the at least one second base station optimization server and the back haul network, or (c) between the second cellular wireless RF base station node and the at least one second base station optimization server;providing a regional optimization server communicatively connected with a public data network gateway (PGW) on the public data network side of the PGW and adapted to (a) run an application for providing services to the mobile device and (b) transfer the application’s functionality for the mobile device to the at least one base station optimization server of the first cellular wireless RF base station node based on a usage characteristic of the mobile device;and providing a wireless control facility communicatively connected with the regional optimization server and at least one of the first and second cellular wireless RF base station nodes;wherein the respective RF coverage areas of the first and second cellular base station nodes overlap and the wireless control facility is adapted to manage during a mobile device handover of the mobile device from the first to the second cellular wireless RF base station node (a) the application’s connectivity with the mobile device, and (b) the application’s functionality transfer to the at least one base station optimization server of the second cellular wireless RF base station node.
  4. 30
    A system for supporting cellular mobile transceiver device communications, the system comprising:a cellular LTE base transceiver station adapted for RF frequency division duplexing (FDD) communication with a plurality of mobile transceiver devices within a ceil coverage area of the cellular LTE base transceiver station, the cellular LTE wireless base transceiver station comprising an agile beam forming antenna system that is a dapted to provide full coverage of the ceil coverage area by generating a number m different sets of fixed-position patterns of a number N RF beams, each RF beam sized to cover a sub-area of the cell coverage area wi th the ceil coverage area being covered with the number m times the number N RF beam patterns, wherein 1 < m < 4, and the antenna system is adapted to generate each of the m sets of N RF beam patterns in a different one-millisecond sub-frame of an LTE frame such that the m sets of N RF beams are generated in a sequence across four contiguous one-millisecond subframes.
  5. 37
    A method, comprising:generating a number m different, sets of fixed position patterns of a number N RF beams across a number of contiguous LTE sub-frames with an agile beam forming antenna, system of a cellular LTE base transceiver station, wherein the cellular LTE base transceiver station is in RF frequency-division duplexing communication with a plurality of mobile transceiver devices within a cell coverage area of the cellular LTE base transceiver station, each RF beam is sized to cover a sub -area of the cell coverage area, the number m times the number N RF beam patterns cover the cell coverage area, and i T m < 4,
  6. 46
    A system for supporting cellular mobile transceiver device communications, the system comprising:a cellular LTE base transceiver station that is adapted for RF time-division duplexing (TDD) communication with a plurality of mobile transceiver devices within a cell coverage area of the cellular LTE base transceiver station, the cellular LTE wireless base transceiver station comprising an agile beam forming antenna system that is adapted to generate a number m different sets of fixed-position patterns of a number N RF beams, each RF beam sized to cover a sub-area of the cell coverage area with the cell coverage area being covered with the number m times the number N RF beam patterns such that each one of the ni sets of N RF beam patterns is generated in one or more of the sub-frames of an LTE TDD frame, and s uch that the m sets of N RF beams are generated in a sequence across a plurality of contiguous LTE TDD subframes, wherein 1 < ni < 3 and ni is determined at least in-part based on a selected LTE TDD uplink/downlink (U/D) configuration.
  7. 69
    A method, comprising:generating a number m different sets of fixed-position patterns of a number N RF beams across a plurality of sub-frames of each of one or more LTE time division duplexing (TDD) frames with an agile beam forming antenna system of a cellular LTE base transceiver station, wherein the cellular LTE base transceiver station is in RF TDD communication with a plurality of mobile transceiver devices within a cell coverage area of the cellular LTE base transceiver station, each RF beam sized to cover a. sub-area of the ceil coverage area, the number m times the number N RF beam patterns cover the cell coverage area, 1 < m < 3, each one of the m sets of N RF beam patterns Is generated in one or more of the sub-frames of an LTE TDD frame, 181 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 and m is determined at least in-part from a selected LTE TDD uplink/downlink (U/D) configuration.
  8. 79
    80. The method of claim 79, wherein one of the firs t or second sets of RF beam patterns is generated in at least one of sub-frames 0, 4, 5, and 9 of the ten contiguous one-millisecond sub-frames of each LTE TDD frame.
  9. 90
    92. A system for scheduling cellular mobile transceiver device communications, the system comprising:a cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices within a. cell coverage area of the cellular LTE base transceiver station, the cellular LTE base transceiver station comprising an agile beam forming antenna system that generates a number m different sets of fixed-position patterns of a number N RF beams, each RF beam covering a sub-area of the cell coverage area where the m times N RF beam patterns cover the area of the ceil coverage area;and a processor-based scheduler facility in communicative connection with ihe cellular LTE base transceiver station, wherein the scheduler facility schedules communications between the cellular LTE base transceiver station and the plurality of the mobile transceiver devices, wherein the scheduler facility schedules communications with a target mobile transceiver device to take place in one of the m times N RF beams based on a location determination of the target mobile transceiver device within the cell coverage area, determined through a location determination algorithm that utilizes at least one of a channel quality indicator (CQI) measurement and a sounding reference signal (SRS) measurement collected through a communicative interaction between the cellular LTE base transceiver station and the target mobile transceiver device.
  10. 92
    94. The system of claim 92, wherein a CQI-based location determination algorithm and an SRS-based location determination algorithm are used concurrently to determine the RF beam for communication transmissions with the target, mobile transceiver device.
  11. 99
    101. A method for scheduling cellular mobile transceiver device communications, the method comprising:generating a number m different sets of fixed position patterns of a number N narrow RF beams across a number of contiguous LTE sub-frames from an agile beam forming antenna system of a cellular LTE. base transceiver station, where the cellular LTE base transceiver station is in communication with a plurality of mobile transceiver devices within a celi coverage area of the cellular LTE base transceiver station, each RE beam covering a sub186 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 area of the cell coverage area where the m times N RF beam patterns cover the area of the cell coverage area, and scheduling communications between the cellular LTE base transceiver station and the plurality of mobile devices through a processor-based scheduler facility in communicative connection with the cellular LTE base transceiver station, wherein the scheduler facility schedules communications with a target mobile transceiver device to take place in one of the m times N RF beams based on a location determination of the ta rget mobile transceiver device within the cell coverage area determined through a location determination algorithm that utilizes at least one of a channel quality indicator (CQI) measurement and a sounding reference signal (SRS) measurement collected through a communicative interaction between the cellular LTE base transceiver and the tarset mobile transceiver device.
  12. 101
    103. The method of claim 101, wherein a CQI-based location determination algorithm and an SRS-based location determination algorithm are used concurrently to determine the RE beam for communication transmissions with the target mobile transceiver device,
  13. 108
    110. À system for baseband data transmission and reception in cellular mobile transceiver device communications, the system comprising;a. cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices within a cell coverage area of the cellular LTE base transceiver station, the cellular LTE wireless base transceiver station comprising a digital baseband processing facility, a digital interface, an RF facility, and an agile beam forming antenna system, wherein the cellular LTE base transceiver station is in communication with the mobile transceiver devices through a cell-wide RF transmit signal, a cell-wide RF receive signal, plus a number m different sets of fixed-position patterns of a number N RF' transmit beams and a number N RF receive beams, each of the N RF transmit and N RF receive beams co vering a sub-area of the cell-wide coverage area where the m times N RF beam patterns cover the area of the cell-wide coverage area;wherein the digital baseband processing facility provides N transmit beam digital data streams and a cell-wide transmit digital data stream to the RF facility through the digital interface for transmission through the agile beam forming antenna system, and the RF facility provides N receive beam digital data streams and a cell-wide receive digital data stream from the agile beam forming antenna system to the digital baseband processing facility through the digital interface;wherein the digital baseband processing facility processes transmissions to the mobile transceiver devices through at least one of the N transmit beam digital data streams and the cell-wide transmit digital data stream for transmission in at least one of the m times N RF beams and the cell-wide RF transmit signal, and processes receptions from the mobile transceiver devices through at least one of the N receive beam digital data streams and the cell-wide receive digital data stream from at least one of the m times N RF receive beams and the cell-wide RF receive signal. 188 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581
  14. 114
    116. The system of claim 114, wherein the cellular LTE base transceiver station reschedules the SRS transmissions of a mobile transceiver device whenever the mobile transceiver device moves to a new RF beam sub-area to enable the SRS transmissions to continue to occur during a sub-frame when an RE beam covers the location of the mobile transceiver device.
  15. 139
    142. The system of claim 139, wherein the digital baseband processing facility reassigns a mobile transceiver device to a new list whenever the mobile transceiver device moves to a new RF beam sub-area.
  16. 140
    143. A method, comprising:providing a cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices within a ceil coverage area of the cellular LTE base transceiver station, the cellular LTE wireless base transceiver station comprising a digital baseband processing facility, a digital interface, an RE facility, and an agile beam forming antenna system, wherein the cellular LTE base transceiver station is in communication with the mobile transceiver devices through a cell-wide RF transmit signal, a cell-wide RF receive signal, plus a number m different sets of fixed-position patterns of a number N RF transmit beams and a number m different sets of fixedposition patterns of a number N RF receive beams, each of N RF beams covering a sub193 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 area of the cell-wide coverage area where the m times N RF beam patterns cover the area of the cell-wide coverage area, wherein the digital baseband processing facility provides N transmit beam digital data streams and a cell-wide transmit digital data stream to the RF’ facility through the digital interface for transmission through the agile beam forming antenna system, and the RF facility provides N receive beam digital data streams and a cell-wide receive digital data stream from the agile beam forming antenna system to the digital baseband processing facility through the digital interface, wherein the digital baseband processing facility processes transmissions to the mobile transceiver devices through at least one of the N transmit beam digital data streams and the cell-wide transmit digital data, stream in at least one of the m times N RF transmit beams and the cell-wide RF transmit signal, and processes receptions from the mobile transceiver devices through at least one of the N receive beam digital data streams and the cell-wide receive digital data, stream from at least one of the m times N RF receive beams and the cell-wide RF receive signal.
  17. 141
    144. A system for reducing inter-cell interference in a cellular mobile communications network, the system comprising:a first cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices within each cell coverage area of the first cellular LTE base transceiver station, the first cellular L'T'E wireless base transceiver station comprising a number of cells and an agile beam forming antenna, system that generates in each ceil a number ml different sets of fixed-position patterns of a number NI RF beams, each RF beam covering a sub-area of the cell coverage area, of the first cellular LTE base transceiver station where the ml times N1 RF beam patterns in each cell cover the area of the respecti ve cell coverage area of the first cellular LTE base transceiver station, wherein the first cellular LTE base transceiver station illuminates the NI RF beams in each ceil such that none of the illuminated RF beam sub-areas are adjacent to one another;and a second cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices within each cell coverage area of the second cellular LTE base transceiver station, the second cellular LTE wireless base transceiver station comprising a number of cells and an agile beam forming antenna system that generates in each cell a number m2 different sets of fixed-position patterns of a number 194 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 N2 RF beams, each RF beam covering a sub-area of the cell coverage area of the second cellular LTE base transceiver station where the m2 times N2 RF beam patterns in each cell cover the area of the respective cell coverage area of the second cellular LTE base transceiver station, wherein the second cellular LTE base transceiver station illuminates the N2 RF beams in each cell such that none of the illuminated RF beam sub-areas are adjacent, to one another;wherein whenever the first cellular LTE base transceiver station illuminates an RF beam on a sub area of its cell coverage area that is adjacent to the cell coverage area of another of the cells of the firs t cellular LTE base transceiver station , the RF beam pattern generated by the first cellular LTE base transceiver station in these cells is such that none of its illuminated RE beam sub areas are adjacent to one another;wherein whenever the second cellular LTE base transceiver station illuminates an RF beam on a sub area of its ceil coverage area that Is adjacent to the cell coverage area of another of the ceils of the second cellular LTE base transceiver station, the RF beam pattern generated by the second cellular LTE base transceiver station in these cells is such that none of its illuminated RF beam sub areas are adjacent, to one another;and wherein whenever the first cellular LTE base transceiver station illuminates an RF beam on a sub-area, of its ceil coverage area that is adjacent to the cell coverage area of the second cellular LTE base transceiver station, the RF beam pattern generated by the second cellular LTE base transceiver station is such that, none of its illuminated RF beam sub-areas are adjacent, to the RF beam sub-areas being illuminated in the cell coverage area of the first cellular LTE base transceiver station.
  18. 145
    148. The system of claim 145, wherein the number ml and m2 is torn, and the number NI and N2 is four.
  19. 154
    157. The system of claim 154, wherein the synchronization is through a precision time protocol.
  20. 157
    160. A method for reducing inter-cell interference in a cellular mobile communications network, the method comprising:providing a first, cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices w ithin each cell coverage area, of the first cellular LTE base transceiver station, the first cellular LTE wireless base transceiver station comprising a number of ceils and an agile beam forming antenna system that generates in each cell a number ml different sets of fixed-position patterns of a number NI RF beams, each RF’ beam covering a sub-area, of the ceil coverage area of the first cellular LTE base transceiver station where the ml times NI RF beam patterns in each cell cover the area of the respective cell coverage area of the first cellular LTE base transceiver station, wherein the first cellular LEE base transceiver station illuminates the N1 RF beams in each cell such that none of the illuminated RF beam sub-areas are adjacent to one another;and providing a second cellular LTE base transceiver station adapted for communication with a plurality of mobile transceiver devices within each cell coverage area of the second cellular LTE base transceiver station, the second cellular LTE wireless base transceiver station comprising a number of cells and an agile beam forming antenna system that generates in each cell a number m2 different sets of fixedposition patterns of a number N2 RF’ beams, each RF' beam covering a sub-area of the cell coverage area of the second cellular LTE base transceiver station where the m2 times N2 RF beam patterns in each cell cover the area of the respective cell coverage area of the second cellular LTE base transceiver station, wherein the second cellular LTE base transceiver station illuminates the N2 RF beams in each cell such that none of the illuminated RF beam sub-areas are adjacent to one another, and 197 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 wherein whenever the first cellular LTE base transceiver station illuminates an RF beam on a sub area of its ceil coverage area that is adjacent to the cell coverage area of another of the cells of the first cellular LTE base transceiver station, the RF beam pattern generated by the first cellular LTE base transceiver station in these cells is such that none of its illuminated RF beam sub areas are adjacent to one another, and wherein whenever the second cellular LTE base transceiver station illuminates an RF beam on a sub area of its cell coverage area, that is adjacent to the ceil coverage area of another of the cells of the second cellular LTE base transceiver station, the RF beam pattern generated by the second cellular LTE base transceiver station in these cells is such that none of its illuminated RF beam sub areas are adjacent, to one another, and wherein whenever the first cellular LTE base transceiver station illuminates an RE beam on a sub-area of its cell coverage area that is adjacent to the cell coverage area of the second cellular LTE base transceiver station, the RF beam pattern generated by the second cellular LTE base transceiver station is such that none of its illuminated RF beam sub-areas are adjacent to the RF beam sub-areas being illuminated in the ceil coverage area of the first, cellular LTE base transceiver station.
  21. 158
    161. A system comprising:a cellular LTE base transceiver station in RF communication with a first and a second mobile transceiver device, the cellular LTE base transceiver station being connected to a back haul network and having an RF coverage area;and a ba.se station optimization server that is connected to the cellular LTE base transceiver station and to the back haul network in parallel with the cellular LTE base transceiver station so as to permit a data packet to selectively flow between any one of (a) the cellular LTE base transceiver station and the back haul network, (b) the base station optimization server and the back haul network, and (c) the cellular LTE base transceiver station and the base station optimization server, the base station optimization server being communicatively connected io the first and the second mobile transceiver devices via LTE bearers that are redirected through the cellular LTE base transceiver station for each mobile transceiver device, and comprising a publish-subscribe broker communications facility to which the first and tire second mobile transceiver devices are connected via their redirected bearers, and wherein the publish-subscribe broker communications facility is adapted to route a packet stream, on behalf of an 198 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 application that publishes its streaming application data, to the first and the second mobile transceiver devices, wherein the first and second mobile transceiver devices both subscribe to the application data and receive at least a common portion of a stream of application data from the publish-subscribe broker communications facility,
  22. 160
    163. A system comprising:a first cellular LTE base transceiver station in RE communication with a first and a second mobile transceiver device, the first cellular LTE base transceiver station being connected to a back haul network and having a first RF coverage area;a first base station optimization server that Is connected to the first cellular LTE base transceiver station and to the back haul network in parallel with the first cellular LTE base transceiver station, the first base station optimization server being communicatively connected to the first and second mobile transceiver devices via LTE bearers that are redirected through the first cellular LTE base transceiver station for each of the first and the second mobile transceiver devices, and comprising a. first publish-subscribe broker communications •facility to which the first and the second mobile transceiver devices are connected via their redirected bearers, and wherein fire first publish-subscribe broker communications facility is adapted to route a packet stream, on behalf of an application that publishes its streaming application data, to the first and the second mobile transceiver devices, wherein the first and the second mobile transceiver devices both subscribe to fire application data, and receive at least a common portion of a stream of application data from the first publish-subscribe broker communications facility;a second cellular LTE base transceiver station in RF communication with a third and a. fourth mobile transceiver device, the second cellular LTE base transceiver station being connected to a back haul network and having a second RF coverage area;199 SUBSTITUTE SHEET (RULE 26) CA 02874867 2014-11-26 WO 2013/188629 PCT/US2013/045581 a second bass station optimization server that is connected to the second cellular LTE base transceiver station and to the back haul network in parallel with the second cellular LTE base transceiver station, the second base station optimization server being communicatively connected to the third and the fourth mobile transceiver devices via LTE bearers that are redirected through the second cellular ET E base transceiver station for each of the third and the 'fourth mobile transceiver devices, and comprising a second publish-subscribe broker communications facility to which the third and the fourth mobile transceiver devices are connected via their redirected bearers, and wherein the second nublish-snbscribe broker communications facility is adapted to route a packet stream, on behalf of an application that publishes Its streaming application data, to the third and tbs fourth mobile transceiver devices, wherein the third and the fourth mobile transceiver devices both subscribe to the application data, and receive at least a common portion of a stream of application data from the second publish-subscribe broker communications facility;and a regional optimization server communicatively connected with a public data network gateway (PGW) on the public data network side of the PGW and adapted to run an application for providing services to the plurality of mobile transceiver devices, the regional optimization server comprising a third publish-subscribe broker communications facility that Is adapted to route to the first and Ihe second publish-subscribe broker communications facilities a packet stream on behalf of an application that publishes its streaming application data,
Independent claims22