WO2005034361A2 - Intra- and/or inter-system interference reducing systems and methods for satellite communications systems - Google Patents

Intra- and/or inter-system interference reducing systems and methods for satellite communications systems Download PDF

Info

Publication number
WO2005034361A2
WO2005034361A2 PCT/US2004/022960 US2004022960W WO2005034361A2 WO 2005034361 A2 WO2005034361 A2 WO 2005034361A2 US 2004022960 W US2004022960 W US 2004022960W WO 2005034361 A2 WO2005034361 A2 WO 2005034361A2
Authority
WO
WIPO (PCT)
Prior art keywords
satellite
communications system
cell
radiotelephone communications
signal
Prior art date
Application number
PCT/US2004/022960
Other languages
French (fr)
Other versions
WO2005034361A3 (en
Inventor
Peter D. Karabinis
Gary G. Churan
Santanu Dutta
Dunmin Zheng
Original Assignee
Atc Technologies, Llc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Atc Technologies, Llc filed Critical Atc Technologies, Llc
Priority to JP2006521884A priority Critical patent/JP4695593B2/en
Priority to EP04809498A priority patent/EP1649707B1/en
Priority to AU2004306356A priority patent/AU2004306356B2/en
Priority to CN2004800279599A priority patent/CN1860804B/en
Priority to AT04809498T priority patent/ATE542311T1/en
Priority to BRPI0413040-5A priority patent/BRPI0413040A/en
Priority to CA2534079A priority patent/CA2534079C/en
Publication of WO2005034361A2 publication Critical patent/WO2005034361A2/en
Publication of WO2005034361A3 publication Critical patent/WO2005034361A3/en
Priority to IL173311A priority patent/IL173311A/en

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/14Relay systems
    • H04B7/15Active relay systems
    • H04B7/185Space-based or airborne stations; Stations for satellite systems
    • H04B7/1851Systems using a satellite or space-based relay
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/69Spread spectrum techniques
    • H04B1/707Spread spectrum techniques using direct sequence modulation
    • H04B1/7097Interference-related aspects

Definitions

  • This invention relates to radiotelephone communications systems and methods, and more particularly to terrestrial cellular and satellite cellular radiotelephone communications systems and methods.
  • Satellite radiotelephone communications systems and methods are widely used for radiotelephone communications. Satellite radiotelephone communications systems and methods generally employ at least one space-based component, such as one or more satellites that are configured to wirelessly communicate with a plurality of satellite radiotelephones.
  • a satellite radiotelephone communications system or method may utilize a single antenna beam covering an entire area served by the system.
  • multiple beams are provided, each of which can serve distinct geographical areas in the overall service region, to collectively serve an overall satellite footprint.
  • a cellular architecture similar to that used in conventional terrestrial cellular radiotelephone systems and methods can be implemented in cellular satellite-based systems and methods.
  • the satellite typically communicates with radiotelephones over a bidirectional communications pathway, with radiotelephone communication signals being communicated from the satellite to the radiotelephone over a downlink or forward link, and from the radiotelephone to the satellite over an uplink or return link.
  • the overall design and operation of cellular satellite radiotelephone systems and methods are well known to those having skill in the art, and need not be described further herein.
  • radiotelephone includes cellular and/or satellite radiotelephones with or without a multi-line display; Personal Communications System (PCS) terminals that may combine a radiotelephone with data processing, facsimile and/or data communications capabilities; Personal Digital Assistants (PDA) that can include a radio frequency transceiver and a pager, Internet/intranet access, Web browser, organizer, calendar and/or a global positioning system (GPS) receiver; and/or conventional laptop and/or palmtop computers or other appliances, which include a radio frequency transceiver. Radiotelephones may also be referred to herein as “radioterminals” or simply “terminals”.
  • terrestrial networks can enhance cellular satellite radiotelephone system availability, efficiency and/or economic viability by terrestrially reusing at least some of the frequency bands that are allocated to cellular satellite radiotelephone systems.
  • the satellite spectrum may be underutilized or unutilized in such areas.
  • the use of terrestrial retransmission can reduce or eliminate this problem.
  • the capacity of the overall system can be increased significantly by the introduction of " terrestrial retransmission, since terrestrial frequency reuse can be much denser than that of a satellite-only system.
  • the satellite radiotelephone system includes a space-based component that is configured to receive wireless communications from a first radiotelephone in a satellite footprint over a satellite radiotelephone frequency band, and an ancillary terrestrial network that is configured to receive wireless communications from a second radiotelephone in the satellite footprint over the satellite radiotelephone frequency band.
  • the space-based component also receives the wireless communications from the second radiotelephone in the satellite footprint over the satellite radiotelephone frequency band as interference, along with the wireless communications that are received from the first radiotelephone in the satellite footprint over the satellite radiotelephone frequency band.
  • An interference reducer is responsive to the space-based component and to the ancillary terrestrial network that is configured to reduce the interference from the wireless communications that are received by the space-based component from the first radiotelephone in the satellite footprint over the satellite radiotelephone frequency band, using the wireless communications that are received by the ancillary terrestrial network from the second radiotelephone in the satellite footprint over the satellite radiotelephone frequency band.
  • satellite radiotelephone systems that include a space-based component that is configured to provide wireless radiotelephone communications in a satellite footprint over a satellite radiotelephone frequency band.
  • the satellite footprint is divided into a plurality of satellite cells, in which satellite radiotelephone frequencies of the satellite radiotelephone frequency band are spatially reused.
  • An ancillary terrestrial network is configured to terrestrially reuse at least one of the satellite radiotelephone frequencies that is used in a satellite cell in the satellite footprint, outside the cell and in some embodiments separated therefrom by a spatial guardband.
  • the spatial guardband may be sufficiently large to reduce or prevent interference between the at least one of the satellite radiotelephone frequencies that is used in the satellite cell in the satellite footprint, and the at least one of the satellite radiotelephone frequencies that is terrestrially reused outside the satellite cell and separated therefrom by the spatial guardband.
  • the spatial guardband may be about half a radius of a satellite cell in width.
  • a satellite of a first satellite system includes a receive-only ancillary antenna that is configured to receive signals in at least some of the reused frequencies, from the second satellite system footprint. The received signal from the ancillary antenna can be used to reduce interference to the first satellite system by the second satellite system.
  • At least some of the signals from the second satellite radiotelephone system that have occupied at least some of the reused frequencies are routed by a gateway and/or other component of the second satellite system, before or after regeneration, to a gateway and/or other component of the first satellite system.
  • the routed signals may then be used for interference reduction.
  • other embodiments need not use a separate (receive-only) antenna or inter-system routing to reduce interference.
  • a desired signal plus interference received by a given satellite cell over one or more satellite radiotelephone frequencies, and received signals from at least one adjacent and/or non-adjacent satellite cells, received over the one or more satellite radiotelephone frequencies are provided to an adaptive interference reducer that includes a plurality of transversal filters and a control mechanism that is used to adaptively adjust coefficients of the transversal filters.
  • these embodiments of the present invention allow two separate satellite radiotelephone systems to share at least some frequencies, while reducing or minimizing potential interference.
  • Other embodiments of the present invention can use an adaptive interference reducer, including a plurality of transversal filters and a control mechanism, to reduce interference within the satellite radiotelephone system (intra-system interference) that is caused by terrestrial reuse and/or intra-satellite system reuse, of one or more frequencies that are used for space-based communications by a given satellite cell.
  • the signals that are received at the satellite by a given satellite cell over a given satellite frequency or frequencies, and the signals that are received at the satellite by adjacent and/or non-adjacent satellite cells over the given satellite frequency or frequencies are provided to an adaptive interference reducer, to reduce and/or eliminate interference from one or more ancillary terrestrial components and/or intra-satellite frequency reuse that also use the given satellite frequency or frequencies for terrestrial wireless and/or satellite communications.
  • signals at the given frequency or frequencies that are received from adjacent cells that do not reuse the given frequency or frequencies, or adjacent and/or non-adjacent satellite cells that do not reuse the given satellite frequency also are provided to the adaptive interference reducer to reduce or eliminate interference by the terrestrially reused satellite frequencies.
  • a first radio signal is received via a first satellite reception path, for example, an antenna or spot beam, which serves a satellite cell.
  • the received first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell.
  • a second radio signal is received via a second satellite reception path, for example, via another antenna or spot beam of the system and/or via a satellite of another satellite communications system.
  • the second radio signal includes the interfering signal.
  • the first and second radio signals are processed to recover the desired satellite uplink signal.
  • the second satellite reception path may be configured to preferentially receive radio transmissions from an area outside of the satellite cell.
  • the area outside of the satellite cell may include another satellite cell that uses the same frequency and/or a coverage area of another satellite communications system that uses the same frequency.
  • the first and second satellite reception paths may include respective first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system.
  • the second satellite cell may use a frequency assigned to the first satellite cell, may be adjacent a third satellite cell that uses a frequency assigned to the first satellite cell, may overlap or be adjacent a terrestrial cell that uses a frequency assigned to the first satellite cell and/or may overlap or be adjacent a coverage area of a second satellite radiotelephone communications system that uses the frequency assigned to the first satellite cell.
  • the first satellite reception path includes a ⁇ first satellite antenna positioned at a first satellite of the satellite radiotelephone communications system
  • the second satellite reception path includes a second satellite antenna positioned at a second satellite of the satellite radiotelephone communications system.
  • the first satellite reception path may include a first satellite antenna positioned at a satellite of the satellite radiotelephone communications system
  • the second satellite reception path may include a second satellite antenna positioned at the same satellite.
  • the second satellite reception path may include a satellite of a second satellite radiotelephone communications system.
  • the second satellite reception path may further include a terrestrial antenna configured to receive a feeder link transmission from the satellite of the second satellite radiotelephone communications system, and the second radio signal may be conveyed via the terrestrial antenna.
  • the terrestrial antenna may be coupled to a gateway of the second satellite radiotelephone communications system, and the second radio signal may be conveyed to the first satellite radiotelephone communications system via the gateway of the second satellite radiotelephone communications system.
  • the terrestrial antenna may be coupled to a gateway of the first satellite radiotelephone communications system, e.g., directly or through other elements of the first system, and the second radio signal may be conveyed from the terrestrial antenna to the gateway of the first satellite radiotelephone communications system.
  • the first and second radio signals may be applied to respective first and second transversal filters. Outputs of the first and second transversal filters may be combined, and the desired signal may be recovered from the combined outputs. The first and second transversal filters may be adjusted responsive to the combined outputs.
  • first and second radio signals are received via respective first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source in the first satellite cell using a frequency assigned to the first satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the first satellite cell, and the second radio signal includes the interfering signal.
  • the first and second radio signals are processed using, for example, an adaptive interference reducer, to recover the desired satellite uplink signal.
  • a first radio signal is received via a first satellite reception path that serves a satellite cell of the first satellite radiotelephone communications system.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source communicating with the second satellite radiotelephone communications system using the frequency assigned to the satellite cell.
  • a second radio signal is received via a second satellite reception path configured to preferentially receive transmissions from a coverage area of the second satellite communications system.
  • the second radio signal includes the interfering signal.
  • the first and second radio signals are processed to recover the desired satellite uplink signal.
  • methods of operating a first satellite radiotelephone communications to reduce interference from a second satellite communications system are provided.
  • a first radio signal is received via a first satellite configured to preferentially receive transmissions from a coverage area of the first satellite radiotelephone communications system.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source in the coverage area of the first satellite radiotelephone communications system and an interfering signal transmitted from a second source communicating with the second satellite communications system using the frequency.
  • a second radio signal is received via a second satellite configured to preferentially receive transmissions from a coverage area of the second satellite communications system.
  • the second radio signal includes the interfering signal.
  • the first and second radio signals are processed to recover the desired satellite uplink signal.
  • the second radio signal may be received from the second satellite via a terrestrial antenna configured to receive feeder link transmissions from the second satellite.
  • a system includes a first satellite reception path that serves a satellite cell and that receives a first radio signal.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell.
  • the system further includes a second satellite reception path that receives a second radio signal including the interfering signal.
  • the system also includes an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
  • an apparatus includes an interference-suppressing signal processor configured to receive a first radio signal from a first satellite reception path that serves a satellite cell.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell.
  • the interference- suppressing signal processor is further configured to receive a second radio signal from a second satellite reception path that receives a second radio signal including the interfering signal, and to process the first and second radio signals to recover the desired satellite uplink signal.
  • the interference-suppressing signal processor may include an adaptive interference reducer.
  • the interference-suppressing signal processor may include first and second transversal filters that receive respective ones of the first and second radio signals, a combiner that combines outputs of the first and second transversal filters, and a detector that recovers the desired signal from the combined outputs.
  • the interference-suppressing signal processor may further include a controller that adjusts the first and second transversal filters responsive to the combined outputs.
  • a satellite radiotelephone communications system includes first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system and that receive respective first and second radio signals.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source in the first satellite cell using a frequency assigned to the first satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the first satellite cell.
  • the second radio signal includes the interfering signal.
  • the system further includes an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
  • a system in yet further embodiments of the present invention, includes a first satellite reception path that serves a satellite cell of a first satellite radiotelephone communications system and receives a first radio signal therefrom.
  • the first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source communicating with a second satellite radiotelephone communications system using the frequency assigned to the satellite cell.
  • the system also includes a second satellite reception path that preferentially receives transmissions from a coverage area of a second satellite communications system and that receives a second radio signal including the interfering signal.
  • the system further includes an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
  • a system in additional embodiments, includes a first satellite configured to preferentially receive transmissions from a coverage area of a first satellite radiotelephone communications system and that receives a first radio signal including a desired satellite uplink signal transmitted from a first source in the coverage area of the first satellite radiotelephone communications system using a frequency and an interfering signal transmitted from a second source communicating with a second satellite communications system using the frequency.
  • the system also includes a terrestrial antenna configured to receive feeder link transmissions from a second satellite configured to preferentially receive transmissions from a coverage area of the second satellite communications system and that receives a second radio signal including the interfering signal.
  • the system further includes an interference- suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
  • Figure 1 is a schematic diagram illustrating a satellite communications system and operations thereof according to some embodiments of the present invention.
  • Figure 2 is a cell layout diagram, illustrating exemplary operations of a satellite communications system according to further embodiments of the present invention.
  • Figure 3 is a schematic diagram of an interference-suppressing signal processor according to some embodiments of the present invention.
  • Figures 4 and 5 are schematic diagrams illustrating satellite communications systems and operations thereof according to additional embodiments of the present invention.
  • a "satellite reception path” generally refers to one or more elements that are configured to receive and convey satellite- received signals, i.e., signals that impinge upon a satellite from, for example, terrestrially positioned sources, such as radiotelephones.
  • a satellite reception path may include, but is not limited to, a satellite antenna, a spot beam supported by a satellite antenna, electronic circuitry that receives and transports signals received by a satellite antenna, and terrestrially-based antennas and hardware that receive a satellite-received signal via, for example, a "bent pipe,” "fat pipe” or other satellite relay mechanism.
  • a "radio signal" received by such a satellite reception path may include a radio-frequency carrier modulated signal transmitted by a source and/or data, voice or other signals combined with or embedded in such a radio-frequency signal.
  • Some embodiments of the present invention will be described herein relative to first and second satellite radiotelephone communications systems.
  • the first satellite radiotelephone communications system, and components thereof may be referred to as “MSV” and may, in some embodiments, correspond to a satellite radiotelephone system provided by Mobile Satellite Ventures, LP, the assignee of the present invention.
  • the second satellite radiotelephone system and/or components thereof may be referred to as "non-MSV".
  • Figure 1 illustrates a satellite 100 that is configured with two antennas 110, 120 according to some embodiments of the present invention.
  • the antennas 110, 120 of the satellite 100 may be of different sizes (in the illustrated embodiments, 26 meters and 9 meters, respectively) and may be directed toward different service footprints 130, 140.
  • the service footprints may be disjoint (as is illustrated in Figure 1), may have some overlap, or be fully overlapping.
  • Figure 1 shows the larger one 110 of the two satellite antennas 110, 120 directed toward an area 130 labeled "MSV service footprint", while the smaller antenna 120, also referred to herein as an ancillary antenna, is directed toward an area 140 labeled "non-MSV service footprint.”
  • the smaller antenna 120 may be configured to receive only.
  • the larger antenna 110 may be configured to receive and transmit.
  • Each antenna 110, 120 may be configured to form a plurality of spot beams (cells) over its respective footprint or area.
  • Satellite terminal transmissions 142 that may be intended for a non-MSV satellite (such as an Inmarsat satellite) may also be intercepted (intentionally or unintentionally) by at least one MSV satellite.
  • At least some satellite terminal transmissions by non-MSV satellite terminals may be co-channel with at least some of MSV's satellite terminal transmissions.
  • at least some satellite terminal transmissions by non-MSV satellite terminals that are intended for a non-MSV satellite and are co-channel with at least some satellite tenninal transmissions 132 of MSV's satellite terminals (intended for MSV's satellite(s)) may cause co-channel interference to at least some of MSV's satellite receivers.
  • systems and methods are provided that are capable of adaptively mitigating the effects of inter-system co-channel interference in order to allow improved communications performance and also to potentially facilitate more efficient reuse of radio frequency resources between systems.
  • At least one ancillary antenna on an MSV satellite may be configured and/or positioned to maximize its reception of emissions by non-MSV satellite terminals that are intended for a non- MSV satellite.
  • This antenna thus configured and/or positioned, may receive substantially strong interference signals that may be used at an MSV infrastructure element (such as a satellite gateway) to mitigate (reduce, suppress or substantially eliminate) interference signals that may be received by the MSV satellite antenna whose mission is to provide communications service to MSV's user terminals over MSV's service area.
  • an MSV infrastructure element such as a satellite gateway
  • an Ancillary Terrestrial Network comprising a plurality of Ancillary Terrestrial Components (ATCs) may be deployed over certain areas of MSV's service footprint 130.
  • An ATC comprises one or more radiating infrastructure elements, such as a base station with associated back-end infrastructure. At least one radioterminal may communicate with the at least one radiating infrastructure element. Signals 134 that are radiated by an ATC may inadvertently be intercepted by MSV's satellite(s) 100, causing additional interference.
  • SBN Space Based Component
  • SBC Space Based Component
  • ground infrastructure e.g., at least one gateway
  • SBN includes systems and/or methods for adaptively mitigating interference received from at least certain elements of the ATN.
  • the SBN also includes systems and/or methods that are capable of adaptively mitigating interference caused by intra-system frequency reuse.
  • Figure 2 illustrates an example of intra-system frequency reuse. As is illustrated in Figure 2, a given frequency set, frequency set 1 for example, may be used and reused for satellite communications over at least a portion of a system's footprint in accordance with, for example, a seven-cell frequency reuse pattern.
  • a given satellite cell such as satellite cell S, configured to receive at least some frequencies of frequency set 1 from radioterminals that are operative over its footprint, may also receive interference from other intra-system terminal emissions intended, for example, for satellite cells T through Y that may be radiating at least some of the same frequencies as the radioterminals that are operative over satellite cell S.
  • Figure 2 also illustrates the location of two ATCs, labeled as A and B, which may also be reusing all or some of the frequencies of frequency set 1.
  • ATC emissions of ATC A and/or B may also cause interference to one or more receivers associated with satellite cell S and/or other satellite cells.
  • Spatial guardbands as described in the above-cited U.S. Patent Application Publication No.
  • At least some signals of at least some of the neighboring satellite cells of a given satellite cell may contain signals that are correlated with at least some components of an aggregate interference of the given satellite cell (such as satellite cell S).
  • Such signals may be transported to, for example, a satellite gateway via a satellite feeder link, such as the satellite feeder link 101 illustrated on the left-hand side of Figure 1, to serve as inputs to an interference suppressor.
  • At least some signals that may be relevant to suppression of interference that may be received by the satellite antenna 110 serving the MSV footprint 130 may be transported to, for example, an MSV satellite gateway via a satellite feeder link, such as the satellite feeder link 102 illustrated on the right-hand side of Figure 1.
  • the two satellite feeder links 101 , 102 illustrated in Figure 1 may use different frequencies and/or different frequency bands to transmit information to the ground to two or more spatially proximate or spatially distant receive antennas.
  • the infonnation transported to the ground (i.e., to a satellite gateway) by the feeder links 101, 102 illustrated in Figure 1 may be accommodated by a single feeder link using the frequencies of a single frequency band.
  • a satellite may be configured with two or more feeder links, using the frequencies of one or more frequency bands, to transport information from a satellite to at least one ground facility (i.e., a satellite gateway) via spatially separate and/or spatially proximate feeder link receive antennas on the ground.
  • Figure 3 illustrates an architecture of an adaptive receiver 300, also referred to as an adaptive interference reducer, that may be configured at a satellite gateway (and/or other location) to suppress interference that may be generated by intra- and/or inter-system frequency reuse.
  • the receiver architecture of Figure 3 is shown operative to suppress interference that may be superimposed on a given
  • the receiver 300 depicted in Figure 3 combines (in a combiner 320), in accordance with a control law or performance index (of a controller 340), such as a Least Mean Squared Error (LMSE) control law or performance index, via a plurality of (fractionally- and/or synchronously-spaced, feed-forward and/or decision-feedback) transversal filters 310, a plurality of signal inputs from a plurality of satellite cells that may be formed by one or more satellite antennas and/or satellites, to form a decision variable for recovering a desired signal in a detector 330.
  • LMSE Least Mean Squared Error
  • control laws other than LMSE
  • zero-forcing may be used to form and/or update the transversal filter coefficients.
  • different control law input signals may be required by the different control laws to derive update information for the plurality of transversal filter co efficients.
  • the error quantity see Figure 3
  • the output of the decision stage of Figure 3 are inputs to the control law.
  • the number of transversal filter coefficients per transversal filter need not be the same over the ensemble of transversal filters depicted in Figure 3 .
  • Some transversal filters may, for example, have seven (7) coefficients or taps, while others may have five (5) or only three (3) and some transversal filters may be limited to a single coefficient. In some embodiments, all transversal filters have ah identical number of coefficients or taps (greater than or equal to one). Furthermore, in some embodiments, the architecture of each transversal filter of the ensemble of transversal filters of Figure 3 may not be the same for all transversal filters of the ensemble. For example, some transversal filters may be synchronously-spaced, others fractionally- spaced, and others decision- feedback with either synchronously- or fractionally-spaced feed-forward sections.
  • the top (first) transversal filter input labeled S denotes the desired signal plus interference, as received by satellite cell S (see Figure 2).
  • the transversal filter inputs T through Y represent signals that may be correlated with, among other signals, the interference in S that is due to intra- satellite system frequency reuse. These signals T through Y represent signals from adjacent satellite system cells that use the same frequency or frequencies as cell S. It will be understood that non-adjacent satellite cells that use the same frequency or frequencies as the cell S, shown by some or all of the cross-hatched cells other that cells S-Y, may also be provided to the transversal filters.
  • the transversal filter inputs A3 through A7 and B6 through B4 represent signals that may be correlated with, among other signals, the interference components of S generated by ATC A and B, respectively. Fe ⁇ wer or more A and/or B signals and a correspondingly fewer or more transversal filters than the numbers shown in Figure 3 may be provided in some embodiments.
  • the signals from the three adjacent cells to an ATC that is tenestrially retransmitting the same frequency or frequencies as cell S are provided.
  • the signals from satellite cells 3, 5 and 7 are provided as inputs
  • ATC B the signals from satellite cells 4, 6 and 7 are provided.
  • signals from non- adjacent satellite cells also may be provided.
  • the transversal filter inputs Ii through I provide signals from the smaller antenna of Figure 1 , that may be correlated with, among other signals, the interference components of S that are due to inter-system frequency reuse. It is understood that, in general, all transversal filter input signals shown in Figure 3 may provide both interference and desired signal components. In some embodiments, the number of antenna(s) of a satellite that may be directed toward another satellite radiotelephone system service footprint may be reduced or eliminated. Thus, in some embodiments, the small antenna of the satellite of Figure 1 may be eliminated. In such embodiments, the transversal filter inputs Ii through I N of Figure 3 may be replaced with signals derived from the co-system (intra-system) satellite antenna cell patterns.
  • some embodiments of the present invention can use an adaptive interference reducer to reduce, minimize or eliminate intra- and/or inter-system interference by providing as input signals for a plurality of transversal filters, signals of a given satellite cell (such as S) and adjacent satellite cells (such as T-Y) that reuse one or more frequencies of the given satellite cell (such as S).
  • input signals from satellite cells S-Y may be used as inputs to an adaptive interference reducer, to reduce interference from co-frequency intra-system reuse.
  • inventions of the present invention can add one or more of the following groups of signals as inputs to an adaptive interference reducer, to further reduce interference: (1) Signals from non-adjacent cells, such as one or more cross-hatched cells 1 of Figure 2, other than cells S-Y that reuse one or more frequencies of the given satellite cell S; (2) Signals from satellite cells that contain an ATC which is terrestrially reusing at least one of the satellite frequencies as the given satellite cell, such as satellite cell 6 that contains ATC B therein, or satellite cells 3, 7 and 5, that contain ATC A therein; (3) Signals from satellite cells that are immediately adjacent a cell described in (2) above; (4) Signals from satellite cells that are remote from the satellite cells described in (2) above; (5) Signals from an ancillary antenna at the satellite that is pointed at the satellite footprint of another satellite system that reuses at least one of the frequencies of the given satellite cell S, for example, input signals IJ-I N of Figure 3; (6) Signals from a second satellite in the given satellite radiotelephone system, that receives at least one of the
  • a system 400 includes a first and second satellite reception paths 410, 420.
  • the first satellite reception path 410 serves a satellite cell 442 of a coverage area 440 of a satellite radiotelephone communications system (e.g., the MSV system of Figure 1).
  • the first satellite reception path 410 may include, for example, a spot beam of a satellite (e.g., the satellite 100 of Figure 1), along with other components for conveying satellite-received signals.
  • the first satellite reception path 410 receives a first signal including a desired signal 455 transmitted by a source 450 (e.g., a mobile subscriber terminal) and an interfering signal transmitted by a second source, which may include, for example, an interfering signal 465a transmitted by a source 460a within the coverage area 440 (e.g., another mobile terminal and/or an ATC) and/or an interfering signal 465b transmitted by a source 460b positioned outside of the coverage area (e.g., in a coverage area 470 of a second satellite communications system).
  • the signals received by the first and second satellite reception paths 410, 420 are provided to an interference-suppressing signal processor 430, which processes the received signals to recover the desired signal 455.
  • the spot beam 515 receives a signal including a desired signal 515 transmitted by a terminal in the cell 513 and an interfering signal 523 transmitted using the same frequency by a source, e.g., a mobile terminal, that is in communication with a satellite 521 of the second system 520.
  • the satellite 521 of the second system 520 receives a second signal that also includes the interfering signal 523.
  • the first system 510 includes a gateway 518 served by a terrestrial antenna 517 that receives a feeder downlink signal 516 from the satellite 511. It will be appreciated that the feeder downlink signal 516 includes the signal received by the spot beam 514 using, for example, "bent pipe,” "fat pipe” or other satellite communications techniques.
  • the second system 520 similarly includes a gateway 526 that is served by a terrestrial antenna 525 that receives a feeder downlink signal 524 from the satellite 520. It will be further appreciated that the feeder downlink signal 524 includes the terrestrially generated interfering signal 523 received by the satellite 521.
  • the signal received by the satellite 521 of the second system 520 is conveyed from the gateway 526 of the second system 520 to the gateway 518 of the first system 510.
  • the gateway 518 of the first system 510 may include an interference reducer (IR) 519 that is configured to process the signals received by the first and second satellites 511 , 521 to recover the desired signal 515.
  • IR interference reducer
  • the recovered signal 515 may be conveyed on to other network components 530, such as telephony network components (switches, routers, etc.) and/or ATN components.
  • the IR 519 may receive other signal inputs that provide information on interference signals, for example, signal inputs from other spot beams, satellites and/or ancillary antennas along the lines described above with reference to Figures 1- 3.
  • an interfering signal may be obtained by directly capturing a downlink feeder signal transmitted by the interfering system.
  • a terrestrial antenna 517b may be coupled to the gateway 518 of the first system 510 and configured to receive the downlink feeder signal 525 of the interfering second system 520.
  • the first and second antennas 517a, 517b may be physically separate antennas and/or spatially diverse antenna beams supported by a single antenna structure and, for example, a beamforming network.
  • the terrestrial antenna 517a may be coupled to the first system 510 in any of a number of different ways.
  • the IR 519 may be positioned in a different component of the first system 510, and may be distributed among multiple components of the first system 510.
  • the drawings and specification there have been disclosed exemplary embodiments of the invention. Although specific terms are employed, they are used in a generic and descriptive sense only and not for purposes of limitation, the scope of the invention being defined by the following claims.

Abstract

A first radio signal is received via a first satellite reception path, for example, an antenna or spot beam, which serves a satellite cell. The received first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell. A second radio signal is received via a second satellite reception path, for example, via another antenna or spot beam of the system and/or via a satellite antenna beam of another system. The second radio signal includes the interfering signal. The first and second radio signals are processed to recover the desired satellite uplink signal.

Description

INTRA- AND/OR INTER-SYSTEM INTERFERENCE REDUCING SYSTEMS AND METHODS FOR SATELLITE COMMUNICATIONS SYSTEMS
Related Application The present application claims priority from United States Provisional Application Serial Number 60/490,993, entitled Intra- And/Or Inter-System Interference Reducing Systems and Methods for Satellite Communications Systems, filed July 30, 2003 and incorporated herein by reference in its entirety.
Field of the Invention This invention relates to radiotelephone communications systems and methods, and more particularly to terrestrial cellular and satellite cellular radiotelephone communications systems and methods.
Background of the Invention Satellite radiotelephone communications systems and methods are widely used for radiotelephone communications. Satellite radiotelephone communications systems and methods generally employ at least one space-based component, such as one or more satellites that are configured to wirelessly communicate with a plurality of satellite radiotelephones. A satellite radiotelephone communications system or method may utilize a single antenna beam covering an entire area served by the system. Alternatively, in cellular satellite radiotelephone communications systems and methods, multiple beams are provided, each of which can serve distinct geographical areas in the overall service region, to collectively serve an overall satellite footprint. Thus, a cellular architecture similar to that used in conventional terrestrial cellular radiotelephone systems and methods can be implemented in cellular satellite-based systems and methods. The satellite typically communicates with radiotelephones over a bidirectional communications pathway, with radiotelephone communication signals being communicated from the satellite to the radiotelephone over a downlink or forward link, and from the radiotelephone to the satellite over an uplink or return link. The overall design and operation of cellular satellite radiotelephone systems and methods are well known to those having skill in the art, and need not be described further herein. Moreover, as used herein, the term "radiotelephone" includes cellular and/or satellite radiotelephones with or without a multi-line display; Personal Communications System (PCS) terminals that may combine a radiotelephone with data processing, facsimile and/or data communications capabilities; Personal Digital Assistants (PDA) that can include a radio frequency transceiver and a pager, Internet/intranet access, Web browser, organizer, calendar and/or a global positioning system (GPS) receiver; and/or conventional laptop and/or palmtop computers or other appliances, which include a radio frequency transceiver. Radiotelephones may also be referred to herein as "radioterminals" or simply "terminals". As is well known to those having skill in the art, terrestrial networks can enhance cellular satellite radiotelephone system availability, efficiency and/or economic viability by terrestrially reusing at least some of the frequency bands that are allocated to cellular satellite radiotelephone systems. In particular, it is known that it may be difficult for cellular satellite radiotelephone systems to reliably serve densely populated areas, because the satellite signal may be blocked by high-rise structures and/or may not penetrate into buildings. As a result, the satellite spectrum may be underutilized or unutilized in such areas. The use of terrestrial retransmission can reduce or eliminate this problem. Moreover, the capacity of the overall system can be increased significantly by the introduction of" terrestrial retransmission, since terrestrial frequency reuse can be much denser than that of a satellite-only system. In fact, capacity can be enhanced where it may be mostly needed, i.e., in densely populated urban/industrial/commercial areas. As a result, the overall system can become much more economically viable, as it may be able to serve a much larger subscriber base. Finally, satellite radiotelephones for a satellite radiotelephone system having a terrestrial component within the same satellite frequency band and using substantially the same air interface for both terrestrial and satellite communications can be more cost effective and/or aesthetically appealing. Conventional dual band/dual mode alternatives, such as the well known Thuraya, Indium and/or Globalstar dual mode satellite/terrestrial radiotelephone systems, may duplicate some components, which may lead to increased cost, size and/or weight of the radiotelephone. United States Patent No. 6,684,057, to coinventor Karabinis, and entitled Systems and Methods for Terrestrial Reuse of Cellular Satellite Frequency Spectrum, the disclosure of which is hereby incorporated herein by reference in its entirety as if set forth fully herein, describes that a satellite radiotelephone frequency can be reused terrestrially by an ancillary terrestrial network even within the same satellite cell, using interference cancellation techniques. In particular, the satellite radiotelephone system according to some embodiments of published Patent Application 2003/0054760 includes a space-based component that is configured to receive wireless communications from a first radiotelephone in a satellite footprint over a satellite radiotelephone frequency band, and an ancillary terrestrial network that is configured to receive wireless communications from a second radiotelephone in the satellite footprint over the satellite radiotelephone frequency band. The space-based component also receives the wireless communications from the second radiotelephone in the satellite footprint over the satellite radiotelephone frequency band as interference, along with the wireless communications that are received from the first radiotelephone in the satellite footprint over the satellite radiotelephone frequency band. An interference reducer is responsive to the space-based component and to the ancillary terrestrial network that is configured to reduce the interference from the wireless communications that are received by the space-based component from the first radiotelephone in the satellite footprint over the satellite radiotelephone frequency band, using the wireless communications that are received by the ancillary terrestrial network from the second radiotelephone in the satellite footprint over the satellite radiotelephone frequency band. United States Patent Application Publication No. 2003/0054761 Al, published March 20, 2003 to coinventor Karabinis and entitled Spatial Guardhands for Terrestrial Reuse of Satellite Frequencies, the disclosure of which is hereby incorporated herein by reference in its entirety as if set forth fully herein, describes satellite radiotelephone systems that include a space-based component that is configured to provide wireless radiotelephone communications in a satellite footprint over a satellite radiotelephone frequency band. The satellite footprint is divided into a plurality of satellite cells, in which satellite radiotelephone frequencies of the satellite radiotelephone frequency band are spatially reused. An ancillary terrestrial network is configured to terrestrially reuse at least one of the satellite radiotelephone frequencies that is used in a satellite cell in the satellite footprint, outside the cell and in some embodiments separated therefrom by a spatial guardband. The spatial guardband may be sufficiently large to reduce or prevent interference between the at least one of the satellite radiotelephone frequencies that is used in the satellite cell in the satellite footprint, and the at least one of the satellite radiotelephone frequencies that is terrestrially reused outside the satellite cell and separated therefrom by the spatial guardband. The spatial guardband may be about half a radius of a satellite cell in width.
Summary of the Invention Some embodiments of the present invention allow two satellite radiotelephone systems to use the same frequency or frequencies in geographically distinct, overlapping and/or congruent footprints while reducing interference in a given system (inter-system interference) that is caused by the same frequency signal(s) that is (are) used by the other system. In some embodiments, a satellite of a first satellite system includes a receive-only ancillary antenna that is configured to receive signals in at least some of the reused frequencies, from the second satellite system footprint. The received signal from the ancillary antenna can be used to reduce interference to the first satellite system by the second satellite system. In other embodiments, at least some of the signals from the second satellite radiotelephone system that have occupied at least some of the reused frequencies are routed by a gateway and/or other component of the second satellite system, before or after regeneration, to a gateway and/or other component of the first satellite system. The routed signals may then be used for interference reduction. Finally, other embodiments need not use a separate (receive-only) antenna or inter-system routing to reduce interference. Rather, in a given satellite radiotelephone system, a desired signal plus interference received by a given satellite cell over one or more satellite radiotelephone frequencies, and received signals from at least one adjacent and/or non-adjacent satellite cells, received over the one or more satellite radiotelephone frequencies, are provided to an adaptive interference reducer that includes a plurality of transversal filters and a control mechanism that is used to adaptively adjust coefficients of the transversal filters.
Accordingly, these embodiments of the present invention allow two separate satellite radiotelephone systems to share at least some frequencies, while reducing or minimizing potential interference. Other embodiments of the present invention can use an adaptive interference reducer, including a plurality of transversal filters and a control mechanism, to reduce interference within the satellite radiotelephone system (intra-system interference) that is caused by terrestrial reuse and/or intra-satellite system reuse, of one or more frequencies that are used for space-based communications by a given satellite cell. In some embodiments, the signals that are received at the satellite by a given satellite cell over a given satellite frequency or frequencies, and the signals that are received at the satellite by adjacent and/or non-adjacent satellite cells over the given satellite frequency or frequencies, are provided to an adaptive interference reducer, to reduce and/or eliminate interference from one or more ancillary terrestrial components and/or intra-satellite frequency reuse that also use the given satellite frequency or frequencies for terrestrial wireless and/or satellite communications. In other embodiments, signals at the given frequency or frequencies that are received from adjacent cells that do not reuse the given frequency or frequencies, or adjacent and/or non-adjacent satellite cells that do not reuse the given satellite frequency, also are provided to the adaptive interference reducer to reduce or eliminate interference by the terrestrially reused satellite frequencies. Yet other embodiments of the present invention can combine the embodiments that were described above, to provide both inter- and intra-system interference reduction, minimization and/or cancellation. Accordingly, inter- and/or intra-system interference from terrestrial and/or space-based reuse of satellite radiotelephone frequencies can be reduced, minimized or eliminated. In some embodiments of the present invention, methods of operating a satellite radiotelephone communications system are provided. A first radio signal is received via a first satellite reception path, for example, an antenna or spot beam, which serves a satellite cell. The received first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell. A second radio signal is received via a second satellite reception path, for example, via another antenna or spot beam of the system and/or via a satellite of another satellite communications system. The second radio signal includes the interfering signal. The first and second radio signals are processed to recover the desired satellite uplink signal. In further embodiments, the second satellite reception path may be configured to preferentially receive radio transmissions from an area outside of the satellite cell. For example, the area outside of the satellite cell may include another satellite cell that uses the same frequency and/or a coverage area of another satellite communications system that uses the same frequency. In some embodiments of the present invention, the first and second satellite reception paths may include respective first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system. The second satellite cell may use a frequency assigned to the first satellite cell, may be adjacent a third satellite cell that uses a frequency assigned to the first satellite cell, may overlap or be adjacent a terrestrial cell that uses a frequency assigned to the first satellite cell and/or may overlap or be adjacent a coverage area of a second satellite radiotelephone communications system that uses the frequency assigned to the first satellite cell. According to some embodiments, the first satellite reception path includes a Λ first satellite antenna positioned at a first satellite of the satellite radiotelephone communications system, and the second satellite reception path includes a second satellite antenna positioned at a second satellite of the satellite radiotelephone communications system. In other embodiments, the first satellite reception path may include a first satellite antenna positioned at a satellite of the satellite radiotelephone communications system, and the second satellite reception path may include a second satellite antenna positioned at the same satellite. In yet further embodiments, the second satellite reception path may include a satellite of a second satellite radiotelephone communications system. The second satellite reception path may further include a terrestrial antenna configured to receive a feeder link transmission from the satellite of the second satellite radiotelephone communications system, and the second radio signal may be conveyed via the terrestrial antenna. The terrestrial antenna may be coupled to a gateway of the second satellite radiotelephone communications system, and the second radio signal may be conveyed to the first satellite radiotelephone communications system via the gateway of the second satellite radiotelephone communications system. The terrestrial antenna may be coupled to a gateway of the first satellite radiotelephone communications system, e.g., directly or through other elements of the first system, and the second radio signal may be conveyed from the terrestrial antenna to the gateway of the first satellite radiotelephone communications system. According to other aspects of the present invention, the first and second radio signals may be applied to respective first and second transversal filters. Outputs of the first and second transversal filters may be combined, and the desired signal may be recovered from the combined outputs. The first and second transversal filters may be adjusted responsive to the combined outputs. According to other aspects of the present invention, first and second radio signals are received via respective first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system. The first radio signal includes a desired satellite uplink signal transmitted from a first source in the first satellite cell using a frequency assigned to the first satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the first satellite cell, and the second radio signal includes the interfering signal. The first and second radio signals are processed using, for example, an adaptive interference reducer, to recover the desired satellite uplink signal. In additional embodiments of the present invention, a first radio signal is received via a first satellite reception path that serves a satellite cell of the first satellite radiotelephone communications system. The first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source communicating with the second satellite radiotelephone communications system using the frequency assigned to the satellite cell. A second radio signal is received via a second satellite reception path configured to preferentially receive transmissions from a coverage area of the second satellite communications system. The second radio signal includes the interfering signal. The first and second radio signals are processed to recover the desired satellite uplink signal. According to some embodiments of the present invention, methods of operating a first satellite radiotelephone communications to reduce interference from a second satellite communications system are provided. A first radio signal is received via a first satellite configured to preferentially receive transmissions from a coverage area of the first satellite radiotelephone communications system. The first radio signal includes a desired satellite uplink signal transmitted from a first source in the coverage area of the first satellite radiotelephone communications system and an interfering signal transmitted from a second source communicating with the second satellite communications system using the frequency. A second radio signal is received via a second satellite configured to preferentially receive transmissions from a coverage area of the second satellite communications system. The second radio signal includes the interfering signal. The first and second radio signals are processed to recover the desired satellite uplink signal. The second radio signal may be received from the second satellite via a terrestrial antenna configured to receive feeder link transmissions from the second satellite. In some system embodiments of the present invention, a system includes a first satellite reception path that serves a satellite cell and that receives a first radio signal. The first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell. The system further includes a second satellite reception path that receives a second radio signal including the interfering signal. The system also includes an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal. In further embodiments of the present invention, an apparatus includes an interference-suppressing signal processor configured to receive a first radio signal from a first satellite reception path that serves a satellite cell. The first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell. The interference- suppressing signal processor is further configured to receive a second radio signal from a second satellite reception path that receives a second radio signal including the interfering signal, and to process the first and second radio signals to recover the desired satellite uplink signal. The interference-suppressing signal processor may include an adaptive interference reducer. The interference-suppressing signal processor may include first and second transversal filters that receive respective ones of the first and second radio signals, a combiner that combines outputs of the first and second transversal filters, and a detector that recovers the desired signal from the combined outputs. The interference-suppressing signal processor may further include a controller that adjusts the first and second transversal filters responsive to the combined outputs. According to additional embodiments of the present invention, a satellite radiotelephone communications system includes first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system and that receive respective first and second radio signals. The first radio signal includes a desired satellite uplink signal transmitted from a first source in the first satellite cell using a frequency assigned to the first satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the first satellite cell. The second radio signal includes the interfering signal. The system further includes an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal. In yet further embodiments of the present invention, a system includes a first satellite reception path that serves a satellite cell of a first satellite radiotelephone communications system and receives a first radio signal therefrom. The first radio signal includes a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source communicating with a second satellite radiotelephone communications system using the frequency assigned to the satellite cell. The system also includes a second satellite reception path that preferentially receives transmissions from a coverage area of a second satellite communications system and that receives a second radio signal including the interfering signal. The system further includes an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal. In additional embodiments, a system includes a first satellite configured to preferentially receive transmissions from a coverage area of a first satellite radiotelephone communications system and that receives a first radio signal including a desired satellite uplink signal transmitted from a first source in the coverage area of the first satellite radiotelephone communications system using a frequency and an interfering signal transmitted from a second source communicating with a second satellite communications system using the frequency. The system also includes a terrestrial antenna configured to receive feeder link transmissions from a second satellite configured to preferentially receive transmissions from a coverage area of the second satellite communications system and that receives a second radio signal including the interfering signal. The system further includes an interference- suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
Summary of the Invention Figure 1 is a schematic diagram illustrating a satellite communications system and operations thereof according to some embodiments of the present invention. Figure 2 is a cell layout diagram, illustrating exemplary operations of a satellite communications system according to further embodiments of the present invention. Figure 3 is a schematic diagram of an interference-suppressing signal processor according to some embodiments of the present invention. Figures 4 and 5 are schematic diagrams illustrating satellite communications systems and operations thereof according to additional embodiments of the present invention. Detailed Description Specific exemplary embodiments of the invention now will be described with reference to the accompanying drawings. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. In the drawings, like numbers refer to like elements. It will be understood that when an element is referred to as being "connected" or "coupled" to another element, it can be directly connected or coupled to the other element or intervening elements may be present. Furthermore, "connected" or "coupled" as used herein may include wirelessly connected or coupled. As used herein the term
"and/or" includes any and all combinations of one or more of the associated listed items. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless expressly stated otherwise. It will be further understood that the terms "includes," "comprises," "including" and/or "comprising," when used in this specification, specify the presence of stated features, integers, steps, operations, / elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein. Some embodiments of the present invention described herein involve the use of diverse satellite reception paths to receive desired satellite uplink signals and one or more interfering signals. As used herein, a "satellite reception path" generally refers to one or more elements that are configured to receive and convey satellite- received signals, i.e., signals that impinge upon a satellite from, for example, terrestrially positioned sources, such as radiotelephones. Accordingly, a satellite reception path may include, but is not limited to, a satellite antenna, a spot beam supported by a satellite antenna, electronic circuitry that receives and transports signals received by a satellite antenna, and terrestrially-based antennas and hardware that receive a satellite-received signal via, for example, a "bent pipe," "fat pipe" or other satellite relay mechanism. As used herein, a "radio signal" received by such a satellite reception path may include a radio-frequency carrier modulated signal transmitted by a source and/or data, voice or other signals combined with or embedded in such a radio-frequency signal. Some embodiments of the present invention will be described herein relative to first and second satellite radiotelephone communications systems. For convenience, the first satellite radiotelephone communications system, and components thereof, may be referred to as "MSV" and may, in some embodiments, correspond to a satellite radiotelephone system provided by Mobile Satellite Ventures, LP, the assignee of the present invention. The second satellite radiotelephone system and/or components thereof may be referred to as "non-MSV". However, it will be understood that the invention is not limited to applications involving combinations of MSV and non-MSV systems, and that any first and second satellite radiotelephone communications systems may be encompassed by the designations MSV and non- MSV. Figure 1 illustrates a satellite 100 that is configured with two antennas 110, 120 according to some embodiments of the present invention. The antennas 110, 120 of the satellite 100 may be of different sizes (in the illustrated embodiments, 26 meters and 9 meters, respectively) and may be directed toward different service footprints 130, 140. The service footprints may be disjoint (as is illustrated in Figure 1), may have some overlap, or be fully overlapping. Specifically, Figure 1 shows the larger one 110 of the two satellite antennas 110, 120 directed toward an area 130 labeled "MSV service footprint", while the smaller antenna 120, also referred to herein as an ancillary antenna, is directed toward an area 140 labeled "non-MSV service footprint." The smaller antenna 120 may be configured to receive only. The larger antenna 110 may be configured to receive and transmit. Each antenna 110, 120 may be configured to form a plurality of spot beams (cells) over its respective footprint or area. Satellite terminal transmissions 142 that may be intended for a non-MSV satellite (such as an Inmarsat satellite) may also be intercepted (intentionally or unintentionally) by at least one MSV satellite. At least some satellite terminal transmissions by non-MSV satellite terminals may be co-channel with at least some of MSV's satellite terminal transmissions. Thus, at least some satellite terminal transmissions by non-MSV satellite terminals that are intended for a non-MSV satellite and are co-channel with at least some satellite tenninal transmissions 132 of MSV's satellite terminals (intended for MSV's satellite(s)) may cause co-channel interference to at least some of MSV's satellite receivers. According to some embodiments of the present invention, systems and methods are provided that are capable of adaptively mitigating the effects of inter-system co-channel interference in order to allow improved communications performance and also to potentially facilitate more efficient reuse of radio frequency resources between systems. At least one ancillary antenna on an MSV satellite (the smaller antenna 120 on the MSV satellite of Figure 1) may be configured and/or positioned to maximize its reception of emissions by non-MSV satellite terminals that are intended for a non- MSV satellite. This antenna, thus configured and/or positioned, may receive substantially strong interference signals that may be used at an MSV infrastructure element (such as a satellite gateway) to mitigate (reduce, suppress or substantially eliminate) interference signals that may be received by the MSV satellite antenna whose mission is to provide communications service to MSV's user terminals over MSV's service area. Still referring to Figure 1 , an Ancillary Terrestrial Network (ATΝ) comprising a plurality of Ancillary Terrestrial Components (ATCs) may be deployed over certain areas of MSV's service footprint 130. An ATC comprises one or more radiating infrastructure elements, such as a base station with associated back-end infrastructure. At least one radioterminal may communicate with the at least one radiating infrastructure element. Signals 134 that are radiated by an ATC may inadvertently be intercepted by MSV's satellite(s) 100, causing additional interference. According to some embodiments of the present invention, the Space Based
Network (SBN), including a Space Based Component (SBC) (e.g., at least one satellite) and ground infrastructure (e.g., at least one gateway), includes systems and/or methods for adaptively mitigating interference received from at least certain elements of the ATN. According to some embodiments of the present invention, the SBN also includes systems and/or methods that are capable of adaptively mitigating interference caused by intra-system frequency reuse. Figure 2 illustrates an example of intra-system frequency reuse. As is illustrated in Figure 2, a given frequency set, frequency set 1 for example, may be used and reused for satellite communications over at least a portion of a system's footprint in accordance with, for example, a seven-cell frequency reuse pattern. A given satellite cell, such as satellite cell S, configured to receive at least some frequencies of frequency set 1 from radioterminals that are operative over its footprint, may also receive interference from other intra-system terminal emissions intended, for example, for satellite cells T through Y that may be radiating at least some of the same frequencies as the radioterminals that are operative over satellite cell S. Figure 2 also illustrates the location of two ATCs, labeled as A and B, which may also be reusing all or some of the frequencies of frequency set 1. Thus, ATC emissions of ATC A and/or B may also cause interference to one or more receivers associated with satellite cell S and/or other satellite cells. Spatial guardbands, as described in the above-cited U.S. Patent Application Publication No. 2003/0054761 Al, are shown by the unshaded rings of Figure 2. Referring to Figures 1 and 2 and to the satellite antenna 110 that is serving MSV's service footprint 130 (see Figure 1), at least some signals of at least some of the neighboring satellite cells of a given satellite cell, such as satellite cell S, may contain signals that are correlated with at least some components of an aggregate interference of the given satellite cell (such as satellite cell S). Such signals may be transported to, for example, a satellite gateway via a satellite feeder link, such as the satellite feeder link 101 illustrated on the left-hand side of Figure 1, to serve as inputs to an interference suppressor. Relative to the satellite antenna 120 that is directed toward the non-MSV service footprint 140, at least some signals that may be relevant to suppression of interference that may be received by the satellite antenna 110 serving the MSV footprint 130, may be transported to, for example, an MSV satellite gateway via a satellite feeder link, such as the satellite feeder link 102 illustrated on the right-hand side of Figure 1. The two satellite feeder links 101 , 102 illustrated in Figure 1 may use different frequencies and/or different frequency bands to transmit information to the ground to two or more spatially proximate or spatially distant receive antennas. In some embodiments the infonnation transported to the ground (i.e., to a satellite gateway) by the feeder links 101, 102 illustrated in Figure 1 may be accommodated by a single feeder link using the frequencies of a single frequency band. In other embodiments, a satellite may be configured with two or more feeder links, using the frequencies of one or more frequency bands, to transport information from a satellite to at least one ground facility (i.e., a satellite gateway) via spatially separate and/or spatially proximate feeder link receive antennas on the ground. Figure 3 illustrates an architecture of an adaptive receiver 300, also referred to as an adaptive interference reducer, that may be configured at a satellite gateway (and/or other location) to suppress interference that may be generated by intra- and/or inter-system frequency reuse. Specifically, the receiver architecture of Figure 3 is shown operative to suppress interference that may be superimposed on a given
"desired signal" received by satellite cell S. As such, the receiver 300 depicted in Figure 3 combines (in a combiner 320), in accordance with a control law or performance index (of a controller 340), such as a Least Mean Squared Error (LMSE) control law or performance index, via a plurality of (fractionally- and/or synchronously-spaced, feed-forward and/or decision-feedback) transversal filters 310, a plurality of signal inputs from a plurality of satellite cells that may be formed by one or more satellite antennas and/or satellites, to form a decision variable for recovering a desired signal in a detector 330. Those skilled in the art will recognize that different control laws (other than LMSE), such as zero-forcing, may be used to form and/or update the transversal filter coefficients. Those skilled in the art will also recognize that different control law input signals may be required by the different control laws to derive update information for the plurality of transversal filter co efficients. For example, in accordance with the zero-forcing control law, the error quantity (see Figure 3) and the output of the decision stage of Figure 3 are inputs to the control law. It will also be recognized by those of skill in the art that the number of transversal filter coefficients per transversal filter need not be the same over the ensemble of transversal filters depicted in Figure 3 . Some transversal filters may, for example, have seven (7) coefficients or taps, while others may have five (5) or only three (3) and some transversal filters may be limited to a single coefficient. In some embodiments, all transversal filters have ah identical number of coefficients or taps (greater than or equal to one). Furthermore, in some embodiments, the architecture of each transversal filter of the ensemble of transversal filters of Figure 3 may not be the same for all transversal filters of the ensemble. For example, some transversal filters may be synchronously-spaced, others fractionally- spaced, and others decision- feedback with either synchronously- or fractionally-spaced feed-forward sections. Refening again to Figure 3, it is seen that the top (first) transversal filter input labeled S denotes the desired signal plus interference, as received by satellite cell S (see Figure 2). The transversal filter inputs T through Y represent signals that may be correlated with, among other signals, the interference in S that is due to intra- satellite system frequency reuse. These signals T through Y represent signals from adjacent satellite system cells that use the same frequency or frequencies as cell S. It will be understood that non-adjacent satellite cells that use the same frequency or frequencies as the cell S, shown by some or all of the cross-hatched cells other that cells S-Y, may also be provided to the transversal filters. The transversal filter inputs A3 through A7 and B6 through B4 represent signals that may be correlated with, among other signals, the interference components of S generated by ATC A and B, respectively. Fe^wer or more A and/or B signals and a correspondingly fewer or more transversal filters than the numbers shown in Figure 3 may be provided in some embodiments. In particular, in Figure 3, the signals from the three adjacent cells to an ATC that is tenestrially retransmitting the same frequency or frequencies as cell S are provided. Thus, for ATC A, the signals from satellite cells 3, 5 and 7 are provided as inputs, and for ATC B, the signals from satellite cells 4, 6 and 7 are provided. In other embodiments, signals from non- adjacent satellite cells also may be provided. The transversal filter inputs Ii through I provide signals from the smaller antenna of Figure 1 , that may be correlated with, among other signals, the interference components of S that are due to inter-system frequency reuse. It is understood that, in general, all transversal filter input signals shown in Figure 3 may provide both interference and desired signal components. In some embodiments, the number of antenna(s) of a satellite that may be directed toward another satellite radiotelephone system service footprint may be reduced or eliminated. Thus, in some embodiments, the small antenna of the satellite of Figure 1 may be eliminated. In such embodiments, the transversal filter inputs Ii through IN of Figure 3 may be replaced with signals derived from the co-system (intra-system) satellite antenna cell patterns. Thus, some embodiments of the present invention can use an adaptive interference reducer to reduce, minimize or eliminate intra- and/or inter-system interference by providing as input signals for a plurality of transversal filters, signals of a given satellite cell (such as S) and adjacent satellite cells (such as T-Y) that reuse one or more frequencies of the given satellite cell (such as S). Thus, in some embodiments, input signals from satellite cells S-Y may be used as inputs to an adaptive interference reducer, to reduce interference from co-frequency intra-system reuse. Other embodiments of the present invention can add one or more of the following groups of signals as inputs to an adaptive interference reducer, to further reduce interference: (1) Signals from non-adjacent cells, such as one or more cross-hatched cells 1 of Figure 2, other than cells S-Y that reuse one or more frequencies of the given satellite cell S; (2) Signals from satellite cells that contain an ATC which is terrestrially reusing at least one of the satellite frequencies as the given satellite cell, such as satellite cell 6 that contains ATC B therein, or satellite cells 3, 7 and 5, that contain ATC A therein; (3) Signals from satellite cells that are immediately adjacent a cell described in (2) above; (4) Signals from satellite cells that are remote from the satellite cells described in (2) above; (5) Signals from an ancillary antenna at the satellite that is pointed at the satellite footprint of another satellite system that reuses at least one of the frequencies of the given satellite cell S, for example, input signals IJ-IN of Figure 3; (6) Signals from a second satellite in the given satellite radiotelephone system, that receives at least one of the frequencies of the given cell, if the space based network includes multiple satellites, as shown in Figure 3 by the dashed box labeled "Input signals from second satellite"; and/or (7) Signals from another satellite radiotelephone system that reuses at least one of the frequencies of satellite cell S that may be provided, for example, by a gateway of the other satellite radiotelephone system. Subcombinations and combinations of these input signals also may be provided to the adaptive interference reducer. Further embodiments of the present invention are illustrated in Figure 4. As shown, a system 400 includes a first and second satellite reception paths 410, 420. The first satellite reception path 410 serves a satellite cell 442 of a coverage area 440 of a satellite radiotelephone communications system (e.g., the MSV system of Figure 1). It will be appreciated that the first satellite reception path 410 may include, for example, a spot beam of a satellite (e.g., the satellite 100 of Figure 1), along with other components for conveying satellite-received signals. The first satellite reception path 410 receives a first signal including a desired signal 455 transmitted by a source 450 (e.g., a mobile subscriber terminal) and an interfering signal transmitted by a second source, which may include, for example, an interfering signal 465a transmitted by a source 460a within the coverage area 440 (e.g., another mobile terminal and/or an ATC) and/or an interfering signal 465b transmitted by a source 460b positioned outside of the coverage area (e.g., in a coverage area 470 of a second satellite communications system). The signals received by the first and second satellite reception paths 410, 420 are provided to an interference-suppressing signal processor 430, which processes the received signals to recover the desired signal 455. The signal processor 430 may include, for example, an adaptive interference reducer along the lines described above with reference to Figure 3. In further embodiments of the present invention, inter-system interference may be suppressed using a satellite reception path that is responsive to elements of an interfering satellite communications system. For example, as shown in Figure 5, interference in a first satellite radiotelephone communications system 510 introduced by an adjacent or overlapping second satellite communications system 520 may be reduced by capturing feeder downlink signals 524 that include information on interfering signals generated by users and/or components of the interfering system 520. In particular, the first satellite radiotelephone communications system 510 includes at least one satellite 511 that supports a satellite reception path that includes a spot beam 514 that serves a satellite cell 513. The spot beam 515 receives a signal including a desired signal 515 transmitted by a terminal in the cell 513 and an interfering signal 523 transmitted using the same frequency by a source, e.g., a mobile terminal, that is in communication with a satellite 521 of the second system 520. The satellite 521 of the second system 520 receives a second signal that also includes the interfering signal 523. As shown, the first system 510 includes a gateway 518 served by a terrestrial antenna 517 that receives a feeder downlink signal 516 from the satellite 511. It will be appreciated that the feeder downlink signal 516 includes the signal received by the spot beam 514 using, for example, "bent pipe," "fat pipe" or other satellite communications techniques. The second system 520 similarly includes a gateway 526 that is served by a terrestrial antenna 525 that receives a feeder downlink signal 524 from the satellite 520. It will be further appreciated that the feeder downlink signal 524 includes the terrestrially generated interfering signal 523 received by the satellite 521. The signal received by the satellite 521 of the second system 520 is conveyed from the gateway 526 of the second system 520 to the gateway 518 of the first system 510. The gateway 518 of the first system 510 may include an interference reducer (IR) 519 that is configured to process the signals received by the first and second satellites 511 , 521 to recover the desired signal 515. The recovered signal 515 may be conveyed on to other network components 530, such as telephony network components (switches, routers, etc.) and/or ATN components. It will be appreciated that the IR 519 may receive other signal inputs that provide information on interference signals, for example, signal inputs from other spot beams, satellites and/or ancillary antennas along the lines described above with reference to Figures 1- 3. Referring to Figure 6, in other embodiments of the present invention, for example, in applications in which signals generated in conjunction with an interfering system are not directly available from the interfering system, an interfering signal may be obtained by directly capturing a downlink feeder signal transmitted by the interfering system. For example, in addition to a terrestrial antenna 517a configured to receive downlink feeder signals 516 transmitted by the satellite 511 of the first system 510, a terrestrial antenna 517b may be coupled to the gateway 518 of the first system 510 and configured to receive the downlink feeder signal 525 of the interfering second system 520. It will be appreciated that the first and second antennas 517a, 517b may be physically separate antennas and/or spatially diverse antenna beams supported by a single antenna structure and, for example, a beamforming network. It will be appreciated that the terrestrial antenna 517a may be coupled to the first system 510 in any of a number of different ways. It will be further appreciated that the IR 519 may be positioned in a different component of the first system 510, and may be distributed among multiple components of the first system 510. In the drawings and specification, there have been disclosed exemplary embodiments of the invention. Although specific terms are employed, they are used in a generic and descriptive sense only and not for purposes of limitation, the scope of the invention being defined by the following claims.

Claims

What is Claimed is: 1. A method of operating a satellite radiotelephone communications system, the method comprising: receiving a first radio signal via a first satellite reception path that serves a satellite cell, the received first radio signal including a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell; receiving a second radio signal via a second satellite reception path, the second radio signal including the interfering signal; and processing the first and second radio signals to recover the desired satellite uplink signal.
2. A method according to Claim 1 , wherein the second satellite reception path is configured to preferentially receive radio transmissions from an area outside of the satellite cell.
3. A method according to Claim 2, wherein the area outside of the satellite cell comprises another satellite cell that uses the same frequency and/or a coverage area of another satellite communications system that uses the same frequency.
4. A method according to Claim 2, wherein the first and second satellite reception paths comprise respective first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system.
5. A method according to Claim 4, wherein the second satellite cell uses a frequency assigned to the first satellite cell.
6. A method according to Claim 4, wherein the second satellite cell is adjacent a third satellite cell that uses a frequency assigned to the first satellite cell.
7. A method according to Claim 4, wherein the second satellite cell overlaps or is adjacent a terrestrial cell that uses a frequency assigned to the first satellite cell.
8. A method according to Claim 4, wherein the satellite radiotelephone communications system comprises a first satellite radiotelephone communications system, and wherein the second satellite cell overlaps or is adjacent a coverage area of a second satellite radiotelephone communications system.
9. A method according to Claim 2, wherein the first satellite reception path comprises a first satellite antenna positioned at a first satellite of the satellite radiotelephone communications system, and wherein the second satellite reception path comprises a second satellite antenna positioned at a second satellite of the satellite radiotelephone communications system.
10. A method according to Claim 2, wherein the first satellite reception path comprises a first satellite antenna positioned at a satellite of the satellite radiotelephone communications system, and wherein the second satellite reception path is positioned at the same satellite. ;
11. A method according to Claim 2, wherein the satellite radiotelephone communications system comprises a first satellite radiotelephone communications system, and wherein the second satellite reception path comprises a satellite of a second satellite radiotelephone communications system.
12. A method according to Claim 11, wherein the second satellite reception path further comprises a terrestrial antenna configured to receive a feeder link transmission from the satellite of the second satellite radiotelephone communications system, and wherein the method further comprises conveying the second radio signal via the terrestrial antenna.
13. A method according to Claim 12, wherein the terrestrial antenna is coupled to a gateway of the second satellite radiotelephone communications system, and wherein the method further comprises conveying the second radio signal to the first satellite radiotelephone communications system via the gateway of the second satellite radiotelephone communications system.
14. A method according to Claim 12, wherein the terrestrial antenna is coupled to a gateway of the first satellite radiotelephone communications system, and wherein the method further comprises conveying the second radio signal from the terrestrial antenna to the gateway of the first satellite radiotelephone communications system.
15. A method according to Claim 1 , wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises applying the first and second radio signals to an adaptive interference reducer.
16. A method according to Claim 1 , wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises: applying the first and second radio signals to respective first and second transversal filters; combining outputs of the first and second transversal filters; and recovering the desired signal from the combined outputs.
17. A method according to Claim 16, further comprising adjusting the first and second transversal filters responsive to the combined outputs.
18. A method according to Claim 1, wherein receiving a second radio signal via a second satellite reception path comprises one or more of the following: receiving the second radio signal via a different satellite antenna spot beam than the first radio signal; receiving the second radio signal via a different satellite antenna than the first radio signal; receiving the second radio signal via a different satellite than the first radio signal; and receiving the second radio signal via a terrestrial antenna configured to receive feeder link transmissions from a satellite of a different satellite radiotelephone communications system.
19. A method according to Claim 1 , wherein the first and second satellite reception paths are configured to provide discrimination between the first and second sources based on a signal characteristic other than frequency.
20. A method of operating a satellite radiotelephone communications system, the method comprising: receiving first and second radio signals via respective first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system, the first radio signal including a desired satellite uplink signal transmitted from a first source in the first satellite cell using a frequency assigned to the first satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the first satellite cell, the second radio signal including the interfering signal; and processing the first and second radio signals to recover the desired satellite uplink signal.
21. A method according to Claim 20, wherein the second satellite cell uses a frequency assigned to the first satellite cell.
22. A method according to Claim 20, wherein the second satellite cell is adjacent a third satellite cell that uses a frequency assigned to the first satellite cell.
23. A method according to Claim 20, wherein the second satellite cell overlaps or is adjacent a terrestrial cell that uses a frequency assigned to the first satellite cell.
24. A method according to Claim 20, wherein the satellite radiotelephone communications system comprises a first satellite radiotelephone communications system, and wherein the second satellite cell overlaps or is adjacent a coverage area of a second satellite radiotelephone communications system.
25. A method according to Claim 20, wherein the first and second spot beams are supported by respective first and second satellites of the satellite radiotelephone communications system.
26. A method according to Claim 20, wherein the first and second spot beams are supported by the same satellite of the satellite radiotelephone communications system.
27. A method according to Claim 20, wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises applying the first and second radio signals to an adaptive interference reducer.
28. A method according to Claim 20, wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises: applying the first and second radio signals to respective first and second transversal filters; combining output of the first and second transversal filters; and recovering the desired signal from the combined outputs.
29. A method according to Claim 28, further comprising adjusting the first and second transversal filters responsive to the combined outputs.
30. A method of operating a first satellite radiotelephone communications to reduce interference from a second satellite communications system, the method comprising: receiving a first radio signal via a first satellite reception path that serves a satellite cell of the first satellite radiotelephone communications system, the received first radio signal including a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source communicating with the second satellite radiotelephone communications system using the frequency assigned to the satellite cell; receiving a second radio signal via a second satellite reception path configured to preferentially receive transmissions from a coverage area of the second satellite communications system, the second radio signal including the interfering signal; and processing the first and second radio signals to recover the desired satellite uplink signal.
31 . A method according to Claim 30, wherein the first and second satellite reception paths are positioned at a satellite of the first satellite radiotelephone communications system.
32. A method according to Claim 31 , wherein the first and second satellite reception paths comprise respective first and second antennas positioned at the satellite of the first satellite radiotelephone communications system and configured such that the first and second antennas preferentially receive transmissions from respective first and second coverage areas of the first satellite radiotelephone communications system and the second satellite communications systems.
33. A method according to Claim 30, wherein the first satellite reception path comprises a first antenna positioned at a satellite of the first satellite radiotelephone communications system, and wherein the second satellite reception path comprises a second antenna positioned at a satellite of the second satellite radiotelephone communications system.
34. A method according to Claim 30, wherein the second satellite reception path comprises a terrestrial antenna configured to receive feeder link transmissions from a satellite of the second satellite radiotelephone communications system.
35. A method according to Claim 30, wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises applying the first and second radio signals to an adaptive interference reducer.
36. A method according to Claim 30, wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises: applying the first and second radio signals to respective first and second transversal filters; combining output of the first and second transversal filters; and recovering the desired signal from the combined outputs.
37. A method according to Claim 36, further comprising adjusting the first and second transversal filters responsive to the combined outputs.
38. A method of operating a first satellite radiotelephone communications to reduce interference from a second satellite communications system, the method comprising: receiving a first radio signal via a first satellite configured to preferentially receive transmissions from a coverage area of the first satellite radiotelephone communications system, the received first radio signal including a desired satellite uplink signal transmitted from a first source in the coverage area of the first satellite radiotelephone communications system and an interfering signal transmitted from a second source communicating with the second satellite communications system using the frequency; receiving a second radio signal via a second satellite configured to preferentially receive transmissions from a coverage area of the second satellite communications system, the second radio signal including the interfering signal; and processing the first and second radio signals to recover the desired satellite uplink signal.
39. A method according to Claim 38, wherein receiving a second radio signal via a second satellite comprises receiving the second radio signal from the second satellite via a terrestrial antenna configured to receive feeder link transmissions from the second satellite.
40. A method according to Claim 39, wherein receiving the second radio signal from the second satellite via a terrestrial antenna comprises receiving the second radio signal from the second satellite via the terrestrial antenna and a gateway of the second satellite communications system.
41. A method according to Claim 38, wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises applying the first and second radio signals to an adaptive interference reducer.
42. A method according to Claim 38, wherein processing the first and second radio signals to recover the desired satellite uplink signal comprises: applying the first and second radio signals to respective first and second transversal filters; combining output of the first and second transversal filters; and recovering the desired signal from the combined outputs.
43. A method according to Claim 42, further comprising adjusting the first and second transversal filters responsive to the combined outputs.
44. A system comprising: a first satellite reception path that serves a satellite cell and that receives a first radio signal including a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell; a second satellite reception path that receives a second radio signal including the interfering signal; and an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
45. A system according to Claim 44, wherein the second satellite reception path is configured to preferentially receive radio transmissions from an area outside of the satellite cell.
46. A system according to Claim 45, wherein the area outside of the satellite cell comprises another satellite cell that uses the same frequency and/or a coverage area of another satellite communications system that uses the same frequency.
47. A system according to Claim 45, wherein the first and second satellite reception paths comprise respective first and second spot beams that serve respective first and second satellite cells of a satellite radiotelephone communications system.
48. A system according to Claim 47, wherein the second satellite cell uses a frequency assigned to the first satellite cell.
49. A system according to Claim 47, wherein the second satellite cell is adjacent a third satellite cell that uses a frequency assigned to the first satellite cell.
50. A system according to Claim 47, wherein the second satellite cell overlaps or is adjacent a terrestrial cell that uses a frequency assigned to the first satellite cell.
51. A system according to Claim 47, wherein the satellite radiotelephone communications system comprises a first satellite radiotelephone communications system, and wherein the second satellite cell overlaps or is adjacent a coverage area of a second satellite radiotelephone communications system.
52. A system according to Claim 45, wherein the first satellite reception path comprises a first satellite antenna positioned at a first satellite of a satellite radiotelephone communications system, and wherein the second satellite reception path comprises a second satellite antenna positioned at a second satellite of the satellite radiotelephone communications system.
53. A system according to Claim 45, wherein the first satellite reception path comprises a first satellite antenna positioned at a satellite of a satellite radiotelephone communications system, and wherein the second satellite reception path positioned at the same satellite.
54. A system according to Claim 45, wherein the satellite cell comprises a satellite cell of a first satellite radiotelephone communications system, and wherein the second satellite reception path comprises a satellite of a second satellite radiotelephone communications system.
55. A system according to Claim 54, wherein the second satellite reception path further comprises a terrestrial antenna configured to receive a feeder link transmission from the satellite of the second satellite radiotelephone communications system, and wherein the method further comprises conveying the second radio signal via the terrestrial antenna.
56. A system according to Claim 55, wherein the terrestrial antenna is coupled to a gateway of the second satellite radiotelephone communications system, and wherein the interference-suppressing signal processor receives the second radio signal to the first satellite radiotelephone communications system via the gateway of the second satellite radiotelephone communications system.
57. A system according to Claim 55, wherein the terrestrial antenna is coupled to a gateway of the first satellite radiotelephone communications system, and wherein the interference-suppressing signal processor receives the second radio signal from the terrestrial antenna and the gateway of the first satellite radiotelephone communications system.
58. A system according to Claim 44, wherein the interference-suppressing signal processor comprises an adaptive interference reducer.
59. A system according to Claim 44, wherein the interference-suppressing signal processor comprises: first and second transversal filters that receive respective ones of the first and second radio signals; a combiner that combines outputs of the first and second transversal filters; and a detector that recovers the desired signal from the combined outputs.
60. A system according to Claim 59, wherein the interference-suppressing signal processor further comprises a controller that adjusts the first and second transversal filters responsive to the combined outputs.
61. A system according to Claim 44, wherein the first and second satellite reception paths are configured to provide discrimination between the first and second sources based on a signal characteristic other than frequency.
62. An apparatus comprising: an interference-suppressing signal processor configured to receive a first radio signal from a first satellite reception path that serves a satellite cell, the first radio signal including a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the satellite cell, to receive a second radio signal from a second satellite reception path that receives a second radio signal including the interfering signal, and to process the first and second radio signals to recover the desired satellite uplink signal.
63. An apparatus according to Claim 62, wherein the interference- suppressing signal processor comprises an adaptive interference reducer.
64. An apparatus according to Claim 62, wherein the interference- suppressing signal processor comprises: first and second transversal filters that receive respective ones of the first and second radio signals; a combiner that combines outputs of the first and second transversal filters; and a detector that recovers the desired signal from the combined outputs.
65. A signal processor according to Claim 64, wherein the interference- suppressing signal processor further comprises a controller that adjusts the first and second transversal filters responsive to the combined outputs.
66. A satellite radiotelephone communications system comprising: first and second spot beams that serve respective first and second satellite cells of the satellite radiotelephone communications system and that receive respective first and second radio signals, the first radio signal including a desired satellite uplink signal transmitted from a first source in the first satellite cell using a frequency assigned to the first satellite cell and an interfering signal transmitted from a second source using the frequency assigned to the first satellite cell, the second radio signal including the interfering signal; and an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
67. A system according to Claim 66, wherein the second satellite cell uses a frequency assigned to the first satellite cell.
68. A system according to Claim 66, wherein the second satellite cell is adjacent a third satellite cell that uses a frequency assigned to the first satellite cell.
69. A system according to Claim 66, wherein the second satellite cell overlaps or is adjacent a terrestrial cell that uses a frequency assigned to the first satellite cell.
70. A system according to Claim 66, wherein the satellite radiotelephone communications system comprises a first satellite radiotelephone communications system, and wherein the second satellite cell overlaps or is adjacent a coverage area of a second satellite radiotelephone communications system.
71. A system according to Claim 66, wherein the first and second spot beams are supported by respective first and second satellites of the satellite radiotelephone communications system.
72. A system according to Claim 66, wherein the first and second spot beams are supported by the same satellite of the satellite radiotelephone communications system.
73. A system according to Claim 66, wherein the interference-suppressing signal processor comprises an adaptive interference reducer.
74. A system according to Claim 66, wherein the interference-suppressing signal processor comprises: first and second transversal filters that receive respective ones of the first and second radio signals; a combiner that combines outputs of the first and second transversal filters; and a detector that recovers the desired signal from the combined outputs.
75. A system according to Claim 74, wherein the interference-suppressing signal processor further comprises a controller that adjusts the first and second transversal filters responsive to the combined outputs.
76. A system comprising: a first satellite reception path that serves a satellite cell of a first satellite radiotelephone communications system and receives a first radio signal therefrom, the received first radio signal including a desired satellite uplink signal transmitted from a first source using a frequency assigned to the satellite cell and an interfering signal transmitted from a second source communicating with a second satellite radiotelephone communications system using the frequency assigned to the satellite cell; a second satellite reception path that preferentially receives transmissions from a coverage area of a second satellite communications system and that receives a second radio signal including the interfering signal; and an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
77. A system according to Claim 76, wherein the first and second satellite reception paths are positioned at a satellite of the first satellite radiotelephone communications system.
78. A system according to Claim 77, wherein the first and second satellite reception paths comprise respective first and second antennas positioned at the satellite of the first satellite radiotelephone communications system and configured such that the first and second antennas preferentially receive transmissions from respective first and second coverage areas of the first satellite radiotelephone communications system and the second satellite communications systems.
79. A system according to Claim 76, wherein the first satellite reception path comprises a first antenna positioned at a satellite of the first satellite radiotelephone communications system, and wherein the second satellite reception path comprises a second antenna positioned at a satellite of the second satellite radiotelephone communications system.
80. A system according to Claim 76, wherein the second satellite reception path comprises a terrestrial antenna configured to receive feeder link transmissions from a satellite of the second satellite radiotelephone communications system.
81. A system according to Claim 76, wherein the interference-suppressing signal processor comprises an adaptive interference reducer.
82. A system according to Claim 76, wherein the interference-suppressing signal processor comprises: first and second transversal filters that receive respective ones of the first and second radio signals; a combiner that combines output of the first and second transversal filters; and a detector that recovers the desired signal from the combined outputs.
83. A system according to Claim 82, wherein the interference-suppressing signal processor further comprises a controller that adjusts the first and second transversal filters responsive to the combined outputs.
84. A system comprising: a first satellite configured to preferentially receive transmissions from a coverage area of a first satellite radiotelephone communications system and that receives a first radio signal including a desired satellite uplink signal transmitted from a first source in the coverage area of the first satellite radiotelephone communications system using a frequency and an interfering signal transmitted from a second source communicating with a second satellite communications system using the frequency; a tenestrial antenna configured to receive feeder link transmissions from a second satellite configured to preferentially receive transmissions from a coverage area of the second satellite communications system and that receives a second radio signal including the interfering signal; and an interference-suppressing signal processor that processes the first and second radio signals to recover the desired satellite uplink signal.
85. A system according to Claim 84, wherein the interference-suppressing signal processor receives the second radio signal from the terrestrial antenna via a gateway of the second satellite communications system.
86. A system according to Claim 84, wherein the interference-suppressing signal processor comprises an adaptive interference reducer.
87. A system according to Claim 84, wherein the interference-suppressing signal processor comprises: first and second transversal filters that receive respective ones of the first and second radio signals; a combiner that combines outputs of the first and second transversal filters; and a detector that recovers the desired signal from the combined outputs.
88. A system according to Claim 87, wherein the interference-suppressing signal processor further comprises a controller that adjusts the first and second transversal filters responsive to the combined outputs.
PCT/US2004/022960 2003-07-30 2004-07-16 Intra- and/or inter-system interference reducing systems and methods for satellite communications systems WO2005034361A2 (en)

Priority Applications (8)

Application Number Priority Date Filing Date Title
JP2006521884A JP4695593B2 (en) 2003-07-30 2004-07-16 In-system and / or inter-system interference reduction system and method of satellite communication system
EP04809498A EP1649707B1 (en) 2003-07-30 2004-07-16 Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
AU2004306356A AU2004306356B2 (en) 2003-07-30 2004-07-16 Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
CN2004800279599A CN1860804B (en) 2003-07-30 2004-07-16 Intra-and/or inter-system interference reducing systems and methods for satellite communications systems
AT04809498T ATE542311T1 (en) 2003-07-30 2004-07-16 INTRA- AND/OR INTER-SYSTEM INTERFERENCE REDUCTION SYSTEMS AND METHODS FOR SATELLITE COMMUNICATION SYSTEMS
BRPI0413040-5A BRPI0413040A (en) 2003-07-30 2004-07-16 method of operating a satellite radio telephone communication system and operating a first satellite radio telephone communication system to reduce interference from a second satellite communication system, system, and
CA2534079A CA2534079C (en) 2003-07-30 2004-07-16 Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
IL173311A IL173311A (en) 2003-07-30 2006-01-23 Intra-and/or inter-system interference reducing systems and methods for satellite communications systems

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US49099303P 2003-07-30 2003-07-30
US60/490,993 2003-07-30
US10/890,758 US7340213B2 (en) 2003-07-30 2004-07-14 Intra- and/or inter-system interference reducing systems and methods for satellite communications systems

Publications (2)

Publication Number Publication Date
WO2005034361A2 true WO2005034361A2 (en) 2005-04-14
WO2005034361A3 WO2005034361A3 (en) 2005-08-04

Family

ID=34138687

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2004/022960 WO2005034361A2 (en) 2003-07-30 2004-07-16 Intra- and/or inter-system interference reducing systems and methods for satellite communications systems

Country Status (11)

Country Link
US (1) US7340213B2 (en)
EP (1) EP1649707B1 (en)
JP (1) JP4695593B2 (en)
KR (1) KR101098007B1 (en)
CN (1) CN1860804B (en)
AT (1) ATE542311T1 (en)
AU (1) AU2004306356B2 (en)
BR (1) BRPI0413040A (en)
CA (1) CA2534079C (en)
IL (1) IL173311A (en)
WO (1) WO2005034361A2 (en)

Families Citing this family (106)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7714778B2 (en) * 1997-08-20 2010-05-11 Tracbeam Llc Wireless location gateway and applications therefor
US7174127B2 (en) 1999-08-10 2007-02-06 Atc Technologies, Llc Data communications systems and methods using different wireless links for inbound and outbound data
US20030149986A1 (en) * 1999-08-10 2003-08-07 Mayfield William W. Security system for defeating satellite television piracy
US7558568B2 (en) * 2003-07-28 2009-07-07 Atc Technologies, Llc Systems and methods for modifying antenna radiation patterns of peripheral base stations of a terrestrial network to allow reduced interference
US6859652B2 (en) * 2000-08-02 2005-02-22 Mobile Satellite Ventures, Lp Integrated or autonomous system and method of satellite-terrestrial frequency reuse using signal attenuation and/or blockage, dynamic assignment of frequencies and/or hysteresis
ATE527764T1 (en) * 2000-08-02 2011-10-15 Atc Tech Llc COORDINATED REUSE OF FREQUENCIES FROM AN EARTHLY SYSTEM AND A SATELLITE SYSTEM.
US8265637B2 (en) * 2000-08-02 2012-09-11 Atc Technologies, Llc Systems and methods for modifying antenna radiation patterns of peripheral base stations of a terrestrial network to allow reduced interference
US7792488B2 (en) * 2000-12-04 2010-09-07 Atc Technologies, Llc Systems and methods for transmitting electromagnetic energy over a wireless channel having sufficiently weak measured signal strength
US7006789B2 (en) * 2001-09-14 2006-02-28 Atc Technologies, Llc Space-based network architectures for satellite radiotelephone systems
US7218931B2 (en) * 2001-09-14 2007-05-15 Atc Technologies, Llc Satellite radiotelephone systems providing staggered sectorization for terrestrial reuse of satellite frequencies and related methods and radiotelephone systems
US8270898B2 (en) * 2001-09-14 2012-09-18 Atc Technologies, Llc Satellite-band spectrum utilization for reduced or minimum interference
US7603081B2 (en) * 2001-09-14 2009-10-13 Atc Technologies, Llc Radiotelephones and operating methods that use a single radio frequency chain and a single baseband processor for space-based and terrestrial communications
US7113778B2 (en) * 2001-09-14 2006-09-26 Atc Technologies, Llc Aggregate radiated power control for multi-band/multi-mode satellite radiotelephone communications systems and methods
US7155340B2 (en) * 2001-09-14 2006-12-26 Atc Technologies, Llc Network-assisted global positioning systems, methods and terminals including doppler shift and code phase estimates
US6785543B2 (en) 2001-09-14 2004-08-31 Mobile Satellite Ventures, Lp Filters for combined radiotelephone/GPS terminals
US6999720B2 (en) * 2001-09-14 2006-02-14 Atc Technologies, Llc Spatial guardbands for terrestrial reuse of satellite frequencies
US7062267B2 (en) * 2001-09-14 2006-06-13 Atc Technologies, Llc Methods and systems for modifying satellite antenna cell patterns in response to terrestrial reuse of satellite frequencies
US7792069B2 (en) * 2001-09-14 2010-09-07 Atc Technologies, Llc Systems and methods for terrestrial reuse of cellular satellite frequency spectrum using different channel separation technologies in forward and reverse links
US7664460B2 (en) * 2001-09-14 2010-02-16 Atc Technologies, Llc Systems and methods for terrestrial reuse of cellular satellite frequency spectrum in a time-division duplex and/or frequency-division duplex mode
US7181161B2 (en) * 2001-09-14 2007-02-20 Atc Technologies, Llc Multi-band/multi-mode satellite radiotelephone communications systems and methods
US7593724B2 (en) * 2001-09-14 2009-09-22 Atc Technologies, Llc Systems and methods for terrestrial reuse of cellular satellite frequency spectrum in a time-division duplex mode
US7447501B2 (en) * 2001-09-14 2008-11-04 Atc Technologies, Llc Systems and methods for monitoring selected terrestrially used satellite frequency signals to reduce potential interference
US7890098B2 (en) * 2001-09-14 2011-02-15 Atc Technologies, Llc Staggered sectorization for terrestrial reuse of satellite frequencies
US7603117B2 (en) * 2001-09-14 2009-10-13 Atc Technologies, Llc Systems and methods for terrestrial use of cellular satellite frequency spectrum
US7623859B2 (en) * 2001-09-14 2009-11-24 Atc Technologies, Llc Additional aggregate radiated power control for multi-band/multi-mode satellite radiotelephone communications systems and methods
US7593691B2 (en) * 2002-02-12 2009-09-22 Atc Technologies, Llc Systems and methods for controlling a level of interference to a wireless receiver responsive to a power level associated with a wireless transmitter
US6856787B2 (en) 2002-02-12 2005-02-15 Mobile Satellite Ventures, Lp Wireless communications systems and methods using satellite-linked remote terminal interface subsystems
US6937857B2 (en) 2002-05-28 2005-08-30 Mobile Satellite Ventures, Lp Systems and methods for reducing satellite feeder link bandwidth/carriers in cellular satellite systems
US7092708B2 (en) * 2002-12-12 2006-08-15 Atc Technologies, Llc Systems and methods for increasing capacity and/or quality of service of terrestrial cellular and satellite systems using terrestrial reception of satellite band frequencies
US7421342B2 (en) * 2003-01-09 2008-09-02 Atc Technologies, Llc Network-assisted global positioning systems, methods and terminals including doppler shift and code phase estimates
US7203490B2 (en) * 2003-03-24 2007-04-10 Atc Technologies, Llc Satellite assisted push-to-send radioterminal systems and methods
US7444170B2 (en) * 2003-03-24 2008-10-28 Atc Technologies, Llc Co-channel wireless communication methods and systems using nonsymmetrical alphabets
US6879829B2 (en) * 2003-05-16 2005-04-12 Mobile Satellite Ventures, Lp Systems and methods for handover between space based and terrestrial radioterminal communications, and for monitoring terrestrially reused satellite frequencies at a radioterminal to reduce potential interference
US20040240525A1 (en) * 2003-05-29 2004-12-02 Karabinis Peter D. Wireless communications methods and apparatus using licensed-use system protocols with unlicensed-use access points
US8670705B2 (en) * 2003-07-30 2014-03-11 Atc Technologies, Llc Additional intra-and/or inter-system interference reducing systems and methods for satellite communications systems
US7340213B2 (en) 2003-07-30 2008-03-04 Atc Technologies, Llc Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
US20050041619A1 (en) * 2003-08-22 2005-02-24 Karabinis Peter D. Wireless systems, methods and devices employing forward- and/or return-link carriers having different numbers of sub-band carriers
US7113743B2 (en) 2003-09-11 2006-09-26 Atc Technologies, Llc Systems and methods for inter-system sharing of satellite communications frequencies within a common footprint
AU2004306121B2 (en) 2003-09-23 2009-06-25 Atc Technologies, Llc Systems and methods for mobility management in overlaid satellite and terrestrial communications systems
US8380186B2 (en) 2004-01-22 2013-02-19 Atc Technologies, Llc Satellite with different size service link antennas and radioterminal communication methods using same
US7418236B2 (en) * 2004-04-20 2008-08-26 Mobile Satellite Ventures, Lp Extraterrestrial communications systems and methods including ancillary extraterrestrial components
US8655398B2 (en) * 2004-03-08 2014-02-18 Atc Technologies, Llc Communications systems and methods including emission detection
US7933552B2 (en) * 2004-03-22 2011-04-26 Atc Technologies, Llc Multi-band satellite and/or ancillary terrestrial component radioterminal communications systems and methods with combining operation
US7606590B2 (en) 2004-04-07 2009-10-20 Atc Technologies, Llc Satellite/hands-free interlock systems and/or companion devices for radioterminals and related methods
US7636566B2 (en) * 2004-04-12 2009-12-22 Atc Technologies, Llc Systems and method with different utilization of satellite frequency bands by a space-based network and an ancillary terrestrial network
US20050239399A1 (en) * 2004-04-21 2005-10-27 Karabinis Peter D Mobile terminals and set top boxes including multiple satellite band service links, and related systems and methods
US8265549B2 (en) * 2004-05-18 2012-09-11 Atc Technologies, Llc Satellite communications systems and methods using radiotelephone
US20050260984A1 (en) * 2004-05-21 2005-11-24 Mobile Satellite Ventures, Lp Systems and methods for space-based use of terrestrial cellular frequency spectrum
WO2006012348A2 (en) * 2004-06-25 2006-02-02 Atc Technologies, Llc Method and system for frequency translation on-board a communications satellite
MX2007001677A (en) * 2004-08-11 2007-04-12 Atc Tech Llc System for reduction of interference between different communications system.
US7639981B2 (en) 2004-11-02 2009-12-29 Atc Technologies, Llc Apparatus and methods for power control in satellite communications systems with satellite-linked terrestrial stations
US20060094420A1 (en) * 2004-11-02 2006-05-04 Karabinis Peter D Multi frequency band/multi air interface/multi spectrum reuse cluster size/multi cell size satellite radioterminal communicaitons systems and methods
ATE556497T1 (en) * 2004-11-16 2012-05-15 Atc Tech Llc SATELLITE COMMUNICATION SYSTEMS, COMPONENTS AND METHODS FOR OPERATION OF COMMON SATELLITE GATEWAYS
US7747229B2 (en) * 2004-11-19 2010-06-29 Atc Technologies, Llc Electronic antenna beam steering using ancillary receivers and related methods
US7454175B2 (en) * 2004-12-07 2008-11-18 Atc Technologies, Llc Broadband wireless communications systems and methods using multiple non-contiguous frequency bands/segments
US8594704B2 (en) * 2004-12-16 2013-11-26 Atc Technologies, Llc Location-based broadcast messaging for radioterminal users
MX2007008211A (en) * 2005-01-05 2007-08-16 Atc Tech Llc Adaptive beam forming with multi-user detection and interference reduction in satellite communiation systems and methods.
US7596111B2 (en) * 2005-01-27 2009-09-29 Atc Technologies, Llc Satellite/terrestrial wireless communications systems and methods using disparate channel separation codes
US7636546B2 (en) * 2005-02-22 2009-12-22 Atc Technologies, Llc Satellite communications systems and methods using diverse polarizations
EP1851877A2 (en) * 2005-02-22 2007-11-07 ATC Technologies, LLC Reusing frequencies of a fixed and/or mobile communications system
US7738837B2 (en) * 2005-02-22 2010-06-15 Atc Technologies, Llc Satellites using inter-satellite links to create indirect feeder link paths
US7756490B2 (en) * 2005-03-08 2010-07-13 Atc Technologies, Llc Methods, radioterminals, and ancillary terrestrial components for communicating using spectrum allocated to another satellite operator
US7796986B2 (en) * 2005-03-11 2010-09-14 Atc Technologies, Llc Modification of transmission values to compensate for interference in a satellite down-link communications
US7627285B2 (en) * 2005-03-14 2009-12-01 Atc Technologies, Llc Satellite communications systems and methods with distributed and/or centralized architecture including ground-based beam forming
US7634229B2 (en) * 2005-03-15 2009-12-15 Atc Technologies, Llc Intra-system and/or inter-system reuse of feeder link frequencies including interference suppression systems and methods
WO2006099501A1 (en) * 2005-03-15 2006-09-21 Atc Technologies, Llc Methods and systems providing adaptive feeder links for ground based beam forming and related systems and satellites
US7453396B2 (en) * 2005-04-04 2008-11-18 Atc Technologies, Llc Radioterminals and associated operating methods that alternate transmission of wireless communications and processing of global positioning system signals
EP1894320B1 (en) * 2005-06-21 2013-09-11 ATC Technologies, LLC Communications systems including adaptive antenna systems and methods for inter-system and intra-system interference reduction
US7817967B2 (en) 2005-06-21 2010-10-19 Atc Technologies, Llc Communications systems including adaptive antenna systems and methods for inter-system and intra-system interference reduction
US7970345B2 (en) * 2005-06-22 2011-06-28 Atc Technologies, Llc Systems and methods of waveform and/or information splitting for wireless transmission of information to one or more radioterminals over a plurality of transmission paths and/or system elements
US7907944B2 (en) * 2005-07-05 2011-03-15 Atc Technologies, Llc Methods, apparatus and computer program products for joint decoding of access probes in a CDMA communications system
US8190114B2 (en) * 2005-07-20 2012-05-29 Atc Technologies, Llc Frequency-dependent filtering for wireless communications transmitters
US7623867B2 (en) * 2005-07-29 2009-11-24 Atc Technologies, Llc Satellite communications apparatus and methods using asymmetrical forward and return link frequency reuse
US7461756B2 (en) * 2005-08-08 2008-12-09 Plastipak Packaging, Inc. Plastic container having a freestanding, self-supporting base
JP4870764B2 (en) * 2005-08-09 2012-02-08 エイティーシー・テクノロジーズ,リミテッド・ライアビリティ・カンパニー Satellite communication system and method using feeder link antennas arranged at approximately the same position
WO2007047370A2 (en) * 2005-10-12 2007-04-26 Atc Technologies, Llc Systems, methods and computer program products for mobility management in hybrid satellite/terrestrial wireless communications systems
WO2007084681A1 (en) * 2006-01-20 2007-07-26 Atc Technologies, Llc Systems and methods for satellite forward link transmit diversity using orthogonal space coding
US8705436B2 (en) * 2006-02-15 2014-04-22 Atc Technologies, Llc Adaptive spotbeam broadcasting, systems, methods and devices for high bandwidth content distribution over satellite
US8923850B2 (en) * 2006-04-13 2014-12-30 Atc Technologies, Llc Systems and methods for controlling base station sectors to reduce potential interference with low elevation satellites
US7751823B2 (en) * 2006-04-13 2010-07-06 Atc Technologies, Llc Systems and methods for controlling a level of interference to a wireless receiver responsive to an activity factor associated with a wireless transmitter
US9014619B2 (en) 2006-05-30 2015-04-21 Atc Technologies, Llc Methods and systems for satellite communications employing ground-based beam forming with spatially distributed hybrid matrix amplifiers
US8169955B2 (en) * 2006-06-19 2012-05-01 Atc Technologies, Llc Systems and methods for orthogonal frequency division multiple access (OFDMA) communications over satellite links
WO2008027109A2 (en) * 2006-06-29 2008-03-06 Atc Technologies, Llc Apparatus and methods for mobility management in hybrid terrestrial-satellite mobile communications systems
US8538323B2 (en) * 2006-09-26 2013-09-17 Viasat, Inc. Satellite architecture
US8107875B2 (en) * 2006-09-26 2012-01-31 Viasat, Inc. Placement of gateways near service beams
EP2645597B2 (en) * 2006-09-26 2024-03-06 ViaSat, Inc. Improved spot beam satellite systems
US20090295628A1 (en) * 2006-09-26 2009-12-03 Viasat, Inc. Satellite System Optimization
US20090298423A1 (en) * 2006-10-03 2009-12-03 Viasat, Inc. Piggy-Back Satellite Payload
US8031646B2 (en) * 2007-05-15 2011-10-04 Atc Technologies, Llc Systems, methods and devices for reusing spectrum of another operator
US8064824B2 (en) * 2007-07-03 2011-11-22 Atc Technologies, Llc Systems and methods for reducing power robbing impact of interference to a satellite
US7978135B2 (en) * 2008-02-15 2011-07-12 Atc Technologies, Llc Antenna beam forming systems/methods using unconstrained phase response
US8433241B2 (en) 2008-08-06 2013-04-30 Atc Technologies, Llc Systems, methods and devices for overlaid operations of satellite and terrestrial wireless communications systems
US8193975B2 (en) 2008-11-12 2012-06-05 Atc Technologies Iterative antenna beam forming systems/methods
US8339308B2 (en) * 2009-03-16 2012-12-25 Atc Technologies Llc Antenna beam forming systems, methods and devices using phase adjusted least squares beam forming
US8520561B2 (en) * 2009-06-09 2013-08-27 Atc Technologies, Llc Systems, methods and network components that provide different satellite spot beam return carrier groupings and reuse patterns
US8346162B1 (en) 2009-09-25 2013-01-01 Emc Satcom Technologies System and method for reducing VSAT apertures via satellite MIMO
EP2484027B1 (en) 2009-09-28 2017-03-29 ATC Technologies, LLC Systems and methods for adaptive interference cancellation beamforming
US10110288B2 (en) * 2009-11-04 2018-10-23 Atc Technologies, Llc Frequency division duplex (FDD) return link transmit diversity systems, methods and devices using forward link side information
US8274925B2 (en) 2010-01-05 2012-09-25 Atc Technologies, Llc Retaining traffic channel assignments for satellite terminals to provide lower latency communication services
FR2955725B1 (en) * 2010-01-25 2013-04-12 Eutelsat Sa METHOD OF INTERFERENCE REMOVAL ASSISTED BY GEO-LOCATION OF TERMINALS IN A SATELLITE TELECOMMUNICATION NETWORK
US9490893B2 (en) * 2013-09-26 2016-11-08 The Boeing Company Interference suppression in a satellite communication system using onboard beamforming and ground-based processing
USD748037S1 (en) * 2013-12-22 2016-01-26 Andrew Simon Filo Self-propelled and spin stabilized fempto satellite with a dual asymmetrical bifurcated dipole antennae kicker
KR20150078189A (en) * 2013-12-30 2015-07-08 한국전자통신연구원 Method and apparatus for mitigating satellite downlink interference of satellite and terrestrial integrated system
KR102212412B1 (en) 2015-02-17 2021-02-04 한국전자통신연구원 Appratus and method for uplink power control of satellite and terrestrial integrated communication system
USD925433S1 (en) * 2018-02-11 2021-07-20 Andrew Simon Filo Fempto satellite
JP7195198B2 (en) * 2019-03-28 2022-12-23 Hapsモバイル株式会社 Wireless communication device, system, program, and control method

Family Cites Families (104)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5303286A (en) * 1991-03-29 1994-04-12 Space Systems/Loral, Inc. Wireless telephone/satellite roaming system
US4901307A (en) * 1986-10-17 1990-02-13 Qualcomm, Inc. Spread spectrum multiple access communication system using satellite or terrestrial repeaters
US5327572A (en) * 1990-03-06 1994-07-05 Motorola, Inc. Networked satellite and terrestrial cellular radiotelephone systems
US5878329A (en) * 1990-03-19 1999-03-02 Celsat America, Inc. Power control of an integrated cellular communications system
US5835857A (en) * 1990-03-19 1998-11-10 Celsat America, Inc. Position determination for reducing unauthorized use of a communication system
US5073900A (en) * 1990-03-19 1991-12-17 Mallinckrodt Albert J Integrated cellular communications system
US5446756A (en) * 1990-03-19 1995-08-29 Celsat America, Inc. Integrated cellular communications system
US5526404A (en) * 1991-10-10 1996-06-11 Space Systems/Loral, Inc. Worldwide satellite telephone system and a network coordinating gateway for allocating satellite and terrestrial gateway resources
US6067442A (en) * 1991-10-10 2000-05-23 Globalstar L.P. Satellite communications system having distributed user assignment and resource assignment with terrestrial gateways
US5448621A (en) * 1993-08-02 1995-09-05 Motorola, Inc. Dynamic reallocation of spectral capacity in cellular communication systems
US6157811A (en) 1994-01-11 2000-12-05 Ericsson Inc. Cellular/satellite communications system with improved frequency re-use
US5619503A (en) * 1994-01-11 1997-04-08 Ericsson Inc. Cellular/satellite communications system with improved frequency re-use
US5511233A (en) * 1994-04-05 1996-04-23 Celsat America, Inc. System and method for mobile communications in coexistence with established communications systems
AU706160B2 (en) 1994-06-08 1999-06-10 Hughes Electronics Corporation Apparatus and method for hybrid network access
US5584046A (en) * 1994-11-04 1996-12-10 Cornell Research Foundation, Inc. Method and apparatus for spectrum sharing between satellite and terrestrial communication services using temporal and spatial synchronization
FR2729025B1 (en) * 1995-01-02 1997-03-21 Europ Agence Spatiale METHOD AND SYSTEM FOR TRANSMITTING RADIO SIGNALS VIA A SATELLITE NETWORK BETWEEN A FIXED EARTH STATION AND MOBILE USER TERMINALS
JPH08251094A (en) * 1995-03-15 1996-09-27 Hitachi Ltd System and method for satellite communication
US6240124B1 (en) * 1995-06-06 2001-05-29 Globalstar L.P. Closed loop power control for low earth orbit satellite communications system
US5592481A (en) * 1995-06-06 1997-01-07 Globalstar L.P. Multiple satellite repeater capacity loading with multiple spread spectrum gateway antennas
US5619525A (en) * 1995-06-06 1997-04-08 Globalstar L.P. Closed loop power control for low earth orbit satellite communications system
US5991345A (en) 1995-09-22 1999-11-23 Qualcomm Incorporated Method and apparatus for diversity enhancement using pseudo-multipath signals
US6449461B1 (en) * 1996-07-15 2002-09-10 Celsat America, Inc. System for mobile communications in coexistence with communication systems having priority
US5926758A (en) * 1996-08-26 1999-07-20 Leo One Ip, L.L.C. Radio frequency sharing methods for satellite systems
US6072768A (en) * 1996-09-04 2000-06-06 Globalstar L.P. Automatic satellite/terrestrial mobile terminal roaming system and method
GB2317074B (en) 1996-09-09 1998-10-28 I Co Global Communications Communications apparatus and method
GB2317303B (en) * 1996-09-09 1998-08-26 I Co Global Communications Communications apparatus and method
US5761605A (en) * 1996-10-11 1998-06-02 Northpoint Technology, Ltd. Apparatus and method for reusing satellite broadcast spectrum for terrestrially broadcast signals
US5896558A (en) 1996-12-19 1999-04-20 Globalstar L.P. Interactive fixed and mobile satellite network
US6091933A (en) * 1997-01-03 2000-07-18 Globalstar L.P. Multiple satellite system power allocation by communication link optimization
JPH10261987A (en) * 1997-03-19 1998-09-29 Fujitsu Ltd Two-layer constitution satellite communication system and its geostationary satellite
US5937332A (en) * 1997-03-21 1999-08-10 Ericsson, Inc. Satellite telecommunications repeaters and retransmission methods
EP0869628A1 (en) * 1997-04-01 1998-10-07 ICO Services Ltd. Interworking between telecommunications networks
GB2324218A (en) * 1997-04-09 1998-10-14 Ico Services Ltd Satellite acquisition in navigation system
US5884142A (en) * 1997-04-15 1999-03-16 Globalstar L.P. Low earth orbit distributed gateway communication system
US5901343A (en) * 1997-05-09 1999-05-04 Lockheed Martin Corporation Adaptive cross polarization Interference canceler for use at intermediate frequencies
US6032041A (en) * 1997-06-02 2000-02-29 Hughes Electronics Corporation Method and system for providing wideband communications to mobile users in a satellite-based network
US6134437A (en) 1997-06-13 2000-10-17 Ericsson Inc. Dual-mode satellite/cellular phone architecture with physically separable mode
US6011951A (en) * 1997-08-22 2000-01-04 Teledesic Llc Technique for sharing radio frequency spectrum in multiple satellite communication systems
US6052586A (en) * 1997-08-29 2000-04-18 Ericsson Inc. Fixed and mobile satellite radiotelephone systems and methods with capacity sharing
US6085094A (en) * 1997-08-29 2000-07-04 Nortel Networks Corporation Method for optimizing spectral re-use
US5907541A (en) * 1997-09-17 1999-05-25 Lockheed Martin Corp. Architecture for an integrated mobile and fixed telecommunications system including a spacecraft
US6101385A (en) * 1997-10-09 2000-08-08 Globalstar L.P. Satellite communication service with non-congruent sub-beam coverage
US6052560A (en) * 1997-10-15 2000-04-18 Ericsson Inc Satellite system utilizing a plurality of air interface standards and method employing same
US5966371A (en) * 1997-10-17 1999-10-12 At&T Corp. Method and system for reducing interbeam interference and multipath fading in bent-pipe satellite communications systems
US6157834A (en) 1997-12-29 2000-12-05 Motorola, Inc. Terrestrial and satellite cellular network interoperability
US6418147B1 (en) * 1998-01-21 2002-07-09 Globalstar Lp Multiple vocoder mobile satellite telephone system
US6735437B2 (en) * 1998-06-26 2004-05-11 Hughes Electronics Corporation Communication system employing reuse of satellite spectrum for terrestrial communication
US6775251B1 (en) * 1998-09-17 2004-08-10 Globalstar L.P. Satellite communication system providing multi-gateway diversity and improved satellite loading
US6198730B1 (en) * 1998-10-13 2001-03-06 Motorola, Inc. Systems and method for use in a dual mode satellite communications system
US6198921B1 (en) * 1998-11-16 2001-03-06 Emil Youssefzadeh Method and system for providing rural subscriber telephony service using an integrated satellite/cell system
US6253080B1 (en) * 1999-07-08 2001-06-26 Globalstar L.P. Low earth orbit distributed gateway communication system
US20030149986A1 (en) * 1999-08-10 2003-08-07 Mayfield William W. Security system for defeating satellite television piracy
US6522865B1 (en) * 1999-08-10 2003-02-18 David D. Otten Hybrid satellite communications system
US7174127B2 (en) * 1999-08-10 2007-02-06 Atc Technologies, Llc Data communications systems and methods using different wireless links for inbound and outbound data
GB2365677A (en) * 2000-02-29 2002-02-20 Ico Services Ltd Satellite communications with satellite routing according to channels assignment
US6636734B1 (en) * 2000-05-17 2003-10-21 Northrop Grumman Corporation Dual receive ground terminal for use in communication systems utilizing multiple satellites
US20040203393A1 (en) 2002-03-13 2004-10-14 Xiang Chen System and method for offsetting channel spectrum to reduce interference between two communication networks
US6859652B2 (en) * 2000-08-02 2005-02-22 Mobile Satellite Ventures, Lp Integrated or autonomous system and method of satellite-terrestrial frequency reuse using signal attenuation and/or blockage, dynamic assignment of frequencies and/or hysteresis
US7558568B2 (en) * 2003-07-28 2009-07-07 Atc Technologies, Llc Systems and methods for modifying antenna radiation patterns of peripheral base stations of a terrestrial network to allow reduced interference
ATE527764T1 (en) * 2000-08-02 2011-10-15 Atc Tech Llc COORDINATED REUSE OF FREQUENCIES FROM AN EARTHLY SYSTEM AND A SATELLITE SYSTEM.
US6628919B1 (en) * 2000-08-09 2003-09-30 Hughes Electronics Corporation Low-cost multi-mission broadband communications payload
US20030003815A1 (en) * 2000-12-20 2003-01-02 Yoshiko Yamada Communication satellite/land circuits selection communications system
US6950625B2 (en) 2001-02-12 2005-09-27 Ico Services Limited Communications apparatus and method
US6714760B2 (en) 2001-05-10 2004-03-30 Qualcomm Incorporated Multi-mode satellite and terrestrial communication device
US6859641B2 (en) * 2001-06-21 2005-02-22 Applied Signal Technology, Inc. Adaptive canceller for frequency reuse systems
US6920314B2 (en) * 2001-07-30 2005-07-19 Lucent Technologies Inc. Symmetric sweep phase sweep transmit diversity
US7155340B2 (en) * 2001-09-14 2006-12-26 Atc Technologies, Llc Network-assisted global positioning systems, methods and terminals including doppler shift and code phase estimates
US7593724B2 (en) * 2001-09-14 2009-09-22 Atc Technologies, Llc Systems and methods for terrestrial reuse of cellular satellite frequency spectrum in a time-division duplex mode
US7062267B2 (en) * 2001-09-14 2006-06-13 Atc Technologies, Llc Methods and systems for modifying satellite antenna cell patterns in response to terrestrial reuse of satellite frequencies
US7031702B2 (en) * 2001-09-14 2006-04-18 Atc Technologies, Llc Additional systems and methods for monitoring terrestrially reused satellite frequencies to reduce potential interference
US7006789B2 (en) * 2001-09-14 2006-02-28 Atc Technologies, Llc Space-based network architectures for satellite radiotelephone systems
US6785543B2 (en) * 2001-09-14 2004-08-31 Mobile Satellite Ventures, Lp Filters for combined radiotelephone/GPS terminals
US6999720B2 (en) * 2001-09-14 2006-02-14 Atc Technologies, Llc Spatial guardbands for terrestrial reuse of satellite frequencies
US7181161B2 (en) * 2001-09-14 2007-02-20 Atc Technologies, Llc Multi-band/multi-mode satellite radiotelephone communications systems and methods
US6684057B2 (en) * 2001-09-14 2004-01-27 Mobile Satellite Ventures, Lp Systems and methods for terrestrial reuse of cellular satellite frequency spectrum
US7664460B2 (en) * 2001-09-14 2010-02-16 Atc Technologies, Llc Systems and methods for terrestrial reuse of cellular satellite frequency spectrum in a time-division duplex and/or frequency-division duplex mode
US7039400B2 (en) * 2001-09-14 2006-05-02 Atc Technologies, Llc Systems and methods for monitoring terrestrially reused satellite frequencies to reduce potential interference
US7218931B2 (en) * 2001-09-14 2007-05-15 Atc Technologies, Llc Satellite radiotelephone systems providing staggered sectorization for terrestrial reuse of satellite frequencies and related methods and radiotelephone systems
US7113778B2 (en) * 2001-09-14 2006-09-26 Atc Technologies, Llc Aggregate radiated power control for multi-band/multi-mode satellite radiotelephone communications systems and methods
US6856787B2 (en) * 2002-02-12 2005-02-15 Mobile Satellite Ventures, Lp Wireless communications systems and methods using satellite-linked remote terminal interface subsystems
US6937857B2 (en) * 2002-05-28 2005-08-30 Mobile Satellite Ventures, Lp Systems and methods for reducing satellite feeder link bandwidth/carriers in cellular satellite systems
US8121605B2 (en) * 2002-06-27 2012-02-21 Globalstar, Inc. Resource allocation to terrestrial and satellite services
US20040042569A1 (en) * 2002-09-03 2004-03-04 Electro-Radiation Incorporated Method and apparatus to provide communication protection technology for satellite earth stations
US7068975B2 (en) * 2002-11-26 2006-06-27 The Directv Group, Inc. Systems and methods for sharing uplink bandwidth among satellites in a common orbital slot
US7092708B2 (en) 2002-12-12 2006-08-15 Atc Technologies, Llc Systems and methods for increasing capacity and/or quality of service of terrestrial cellular and satellite systems using terrestrial reception of satellite band frequencies
US6975837B1 (en) 2003-01-21 2005-12-13 The Directv Group, Inc. Method and apparatus for reducing interference between terrestrially-based and space-based broadcast systems
US7444170B2 (en) * 2003-03-24 2008-10-28 Atc Technologies, Llc Co-channel wireless communication methods and systems using nonsymmetrical alphabets
US7203490B2 (en) * 2003-03-24 2007-04-10 Atc Technologies, Llc Satellite assisted push-to-send radioterminal systems and methods
KR20060014365A (en) * 2003-05-01 2006-02-15 모바일 새틀라이트 벤쳐스, 엘.피. Aggregate radiated power control for multi-band/multi-mode satellite radiotelephone communications systems and methods
US6879829B2 (en) * 2003-05-16 2005-04-12 Mobile Satellite Ventures, Lp Systems and methods for handover between space based and terrestrial radioterminal communications, and for monitoring terrestrially reused satellite frequencies at a radioterminal to reduce potential interference
US20040240525A1 (en) 2003-05-29 2004-12-02 Karabinis Peter D. Wireless communications methods and apparatus using licensed-use system protocols with unlicensed-use access points
US7302233B2 (en) * 2003-06-23 2007-11-27 Texas Instruments Incorporated Multiuser detection for wireless communications systems in the presence of interference
US7340213B2 (en) 2003-07-30 2008-03-04 Atc Technologies, Llc Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
US8670705B2 (en) * 2003-07-30 2014-03-11 Atc Technologies, Llc Additional intra-and/or inter-system interference reducing systems and methods for satellite communications systems
US20050041619A1 (en) * 2003-08-22 2005-02-24 Karabinis Peter D. Wireless systems, methods and devices employing forward- and/or return-link carriers having different numbers of sub-band carriers
US7113743B2 (en) * 2003-09-11 2006-09-26 Atc Technologies, Llc Systems and methods for inter-system sharing of satellite communications frequencies within a common footprint
AU2004306121B2 (en) * 2003-09-23 2009-06-25 Atc Technologies, Llc Systems and methods for mobility management in overlaid satellite and terrestrial communications systems
US8380186B2 (en) * 2004-01-22 2013-02-19 Atc Technologies, Llc Satellite with different size service link antennas and radioterminal communication methods using same
US7453920B2 (en) * 2004-03-09 2008-11-18 Atc Technologies, Llc Code synchronization in CDMA satellite wireless communications system using uplink channel detection
MX2007001677A (en) * 2004-08-11 2007-04-12 Atc Tech Llc System for reduction of interference between different communications system.
US20060094420A1 (en) * 2004-11-02 2006-05-04 Karabinis Peter D Multi frequency band/multi air interface/multi spectrum reuse cluster size/multi cell size satellite radioterminal communicaitons systems and methods
US7639981B2 (en) * 2004-11-02 2009-12-29 Atc Technologies, Llc Apparatus and methods for power control in satellite communications systems with satellite-linked terrestrial stations
ATE556497T1 (en) * 2004-11-16 2012-05-15 Atc Tech Llc SATELLITE COMMUNICATION SYSTEMS, COMPONENTS AND METHODS FOR OPERATION OF COMMON SATELLITE GATEWAYS
US8594704B2 (en) * 2004-12-16 2013-11-26 Atc Technologies, Llc Location-based broadcast messaging for radioterminal users

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of EP1649707A4 *

Also Published As

Publication number Publication date
US20050037749A1 (en) 2005-02-17
WO2005034361A3 (en) 2005-08-04
AU2004306356B2 (en) 2008-05-29
AU2004306356A1 (en) 2005-04-14
EP1649707A2 (en) 2006-04-26
KR20060129154A (en) 2006-12-15
IL173311A0 (en) 2006-06-11
IL173311A (en) 2010-12-30
JP2007501546A (en) 2007-01-25
BRPI0413040A (en) 2006-10-03
EP1649707A4 (en) 2009-12-16
CA2534079C (en) 2013-04-16
CN1860804B (en) 2010-12-08
ATE542311T1 (en) 2012-02-15
JP4695593B2 (en) 2011-06-08
US7340213B2 (en) 2008-03-04
KR101098007B1 (en) 2011-12-23
CN1860804A (en) 2006-11-08
CA2534079A1 (en) 2005-04-14
EP1649707B1 (en) 2012-01-18

Similar Documents

Publication Publication Date Title
CA2534079C (en) Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
US8670705B2 (en) Additional intra-and/or inter-system interference reducing systems and methods for satellite communications systems
US7796986B2 (en) Modification of transmission values to compensate for interference in a satellite down-link communications
AU2005307841B2 (en) Satellite communications systems, components and methods for operating shared satellite gateways
US7609666B2 (en) Methods and systems providing adaptive feeder links for ground based beam forming and related systems and satellites
US7970346B2 (en) Methods of reducing interference including calculation of weights based on errors and related systems
CA2576521C (en) Satellite-band spectrum utilization for reduced or minimum interference
US20090042509A1 (en) Satellite-Band Spectrum Utilization for Reduced or Minimum Interference
EP1766810B1 (en) Co-channel interference reducing arrangement in a satellite communications systems, and method
MXPA06001188A (en) Intra- and/or inter-system interference reducing systems and methods for satellite communications systems
BRPI0413040B1 (en) METHOD OF OPERATING A SATELLITE RADIO COMMUNICATION SYSTEM, SYSTEM, AND, PHYSICAL SUPPORT

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 200480027959.9

Country of ref document: CN

AK Designated states

Kind code of ref document: A2

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BR BW BY BZ CA CH CN CO CR CU CZ DE DK DM DZ EC EE EG ES FI GB GD GE GH GM HR HU ID IL IN IS JP KE KG KP KR KZ LC LK LR LS LT LU LV MA MD MG MK MN MW MX MZ NA NI NO NZ OM PG PH PL PT RO RU SC SD SE SG SK SL SY TJ TM TN TR TT TZ UA UG US UZ VC VN YU ZA ZM ZW

AL Designated countries for regional patents

Kind code of ref document: A2

Designated state(s): BW GH GM KE LS MW MZ NA SD SL SZ TZ UG ZM ZW AM AZ BY KG KZ MD RU TJ TM AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LU MC NL PL PT RO SE SI SK TR BF BJ CF CG CI CM GA GN GQ GW ML MR NE SN TD TG

121 Ep: the epo has been informed by wipo that ep was designated in this application
WWE Wipo information: entry into national phase

Ref document number: 2004809498

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 2004306356

Country of ref document: AU

WWE Wipo information: entry into national phase

Ref document number: 425/DELNP/2006

Country of ref document: IN

WWE Wipo information: entry into national phase

Ref document number: 1020067001819

Country of ref document: KR

ENP Entry into the national phase

Ref document number: 2534079

Country of ref document: CA

WWE Wipo information: entry into national phase

Ref document number: PA/a/2006/001188

Country of ref document: MX

WWE Wipo information: entry into national phase

Ref document number: 2006521884

Country of ref document: JP

WWP Wipo information: published in national office

Ref document number: 2004306356

Country of ref document: AU

WWP Wipo information: published in national office

Ref document number: 2004809498

Country of ref document: EP

DPEN Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed from 20040101)
ENP Entry into the national phase

Ref document number: PI0413040

Country of ref document: BR

WWP Wipo information: published in national office

Ref document number: 1020067001819

Country of ref document: KR