Satellite communications method and system with multi-beam precoding
11283514 · 2022-03-22
Assignee
Inventors
Cpc classification
H04B7/18582
ELECTRICITY
H04B7/0473
ELECTRICITY
International classification
H04B10/00
ELECTRICITY
H04B7/185
ELECTRICITY
H04B7/0456
ELECTRICITY
Abstract
The invention relates to a method for communicating from a plurality of gateways (10) to a satellite (14) over a set of uplink channels (12) and then towards Earth (22) in a plurality of beams (20). In that context, inter-beam interference mitigation precoding (s40) of signals intended to non-space-based receiver locations (18) is performed. At each gateway (10), precoding weightings are generated (s30) and uplink signals are transmitted (s32) to the satellite (14) in each of the uplink channels (12). At the satellite (14), the uplink signals are received (s34) from the gateways (10) over the uplink channels (12), and, for each uplink signal, a downlink signal (s36) is derived before transmitting (s38) the downlink signals towards Earth (22). In addition, constraints are defined to allow an effective inter-beam mitigation precoding processing. In other words, the method aims at providing system-wide precoding when more than one gateway is used. The invention also relates to a satellite (14), a system (100), and the use of the satellite (14).
Claims
1. Method for communication from a plurality of gateways to a satellite over a set of uplink channels and then from the satellite towards a plurality of non-space-based receiver locations, wherein the satellite transmits towards Earth in a plurality of beams, the method comprising: before transmission from the satellite towards Earth, inter-beam interference mitigation precoding of signals intended to each of at least some of the plurality of non-space-based receiver locations; at each of the plurality of gateways: generating weightings, hereinafter referred to as “precoding weightings”, for the inter-beam interference mitigation precoding; and transmitting, from the gateway to the satellite, for each of the set of uplink channels, a signal, hereinafter referred to as “uplink signal”, over the uplink channel; and at the satellite: receiving the uplink signals from the plurality of gateways over uplink channels; for each of the uplink signals, deriving a signal, hereinafter referred to as “downlink signal”, from the uplink signal; and transmitting the downlink signals towards Earth, wherein: a first downlink channel is reused, in different beams among the plurality of beams, by at least two downlink signals derived from uplink signals from a first gateway among the plurality of gateways, and a second downlink channel is reused, in different beams among the plurality of beams, by at least two downlink signals derived from uplink signals from a second gateway among the plurality of gateways, wherein there is at least one beam in common between the beams in which the first downlink channel is reused and the beams in which the second downlink channel is reused.
2. Method of claim 1, further comprising: at each of the plurality of gateways, generating, using the precoding weightings, the uplink signals by inter-beam interference mitigation precoding of signals intended to each of at least some of the plurality of non-space-based receiver locations; wherein, for at least one of the uplink signals from each gateway, deriving a downlink signal from an uplink signal comprises changing, in at least one of frequency and polarization, the uplink signal.
3. Method of claim 2, wherein the uplink channels of the set of uplink channels differ from each other by at least one of: their frequency, or range of frequencies; and their polarization, or polarizations.
4. Method of claim 1, further comprising: at each of the plurality of gateways, transmitting, from the gateway to the satellite, the precoding weightings; wherein deriving a downlink signal from an uplink signal makes use of at least one of the precoding weightings for inter-beam interference mitigation precoding.
5. Method of claim 4, wherein the uplink channels of the set of uplink channels differ from each other by at least one of: their frequency, or range of frequencies; their polarization, or polarizations; their transmission time slot, or slots; and their spread-spectrum code, or codes.
6. Method according to claim 1, wherein the first downlink channel and the second downlink channel differ from each other by their frequency, or range of frequencies; and their polarization, or polarizations.
7. Method according to claim 1, wherein the beams in which the first downlink channel is reused are the same as the beams in which the second downlink channel is reused.
8. Method according to claim 1, wherein, for all of the beams in which the satellite is transmitting, the first downlink channel is only reused by downlink signals derived from the uplink signals from the first gateway, and the second downlink channel is only reused by downlink signals derived from uplink signals from the second gateway.
9. Method according to claim 1, wherein deriving a downlink signal from an uplink signal is carried out using at least one of: a digital transparent processor; and a digital channelizer.
10. Method according to claim 1, wherein at least some of the uplink channels of the set of uplink channels are carried on at least one optical link.
11. Satellite configured for enabling communication from a plurality of gateways to the satellite over a set of uplink channels and then from the satellite towards a plurality of non-space-based receiver locations, wherein the satellite is configured to transmit towards Earth in a plurality of beams, the satellite comprising: a receiver configured for receiving signals, hereinafter referred to as “uplink signals”, from the plurality of gateways over the uplink channels; a processor configured for deriving, for each of the uplink signals, a signal, hereinafter referred to as “downlink signal”, from the uplink signal; and a transmitter configured for transmitting the downlink signals towards Earth; wherein the satellite is configured so that, in operation, a first downlink channel is reused, in different beams among the plurality of beams, by at least two downlink signals derived from uplink signals from a first gateway among the plurality of gateways, and a second downlink channel is reused, in different beams among the plurality of beams, by at least two downlink signals derived from uplink signals from a second gateway among the plurality of gateways, wherein there is at least one beam in common between the beams in which the first downlink channel is reused and the beams in which the second downlink channel is reused.
12. Satellite of claim 11, further configured so that, in operation, the beams in which the first downlink channel is reused are the same as the beams in which the second downlink channel is reused.
13. Satellite of claim 11, further configured so that, in operation, for all of the beams in which the satellite is transmitting, the first downlink channel is only reused by downlink signals derived from the uplink signals from the first gateway, and the second downlink channel is only reused by downlink signals derived from uplink signals from the second gateway.
14. Satellite according to claim 11, wherein the processor comprises at least one of: a digital transparent processor; and a digital channelizer.
15. System comprising a satellite according to claim 11, and the plurality of gateways, wherein the system is configured for, before transmission from the satellite towards Earth, inter-beam interference mitigation precoding signals intended to each of at least some of the plurality of non-space-based receiver locations; and each of the plurality of gateways is configured for generating weightings, hereinafter referred to as “precoding weightings”, for the inter-beam interference mitigation precoding; and transmitting, to the satellite, for each of the set of uplink channels, the uplink signals over the uplink channel.
16. Use of a satellite according to claim 11 for communication from the plurality of gateways to the satellite over the set of uplink channels and then from the satellite towards the plurality of non-space-based receiver locations, wherein the satellite transmits towards Earth in the plurality of beams.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(12) The present invention shall now be described in conjunction with specific embodiments. The specific embodiments serve to provide the skilled person with a better understanding, but are not intended to in any way restrict the scope of the invention, which is defined by appended claims. In particular, the embodiments described independently throughout the description can be combined to form further embodiments to the extent that they are not mutually exclusive. A list of abbreviations and their meaning is provided at the end of the detailed description.
(13)
(14) Satellite 14 may for example orbit the Earth 22 in a geostationary or geosynchronous orbit, although the invention is not limited to these orbits. Satellite 14 receives uplink signals from gateways 10 over uplink channels 12, and transmits downlink signals in downlink channels 16 towards Earth 22 through a plurality of beams 20. To this end, satellite 14 comprises a multi-beam antenna or a plurality of antennas for forming beams 20 directed towards Earth 22. Non-space-based receiver locations 18 are within the coverage area, i.e. within the footprint, of the beams 20 formed, i.e. emitted, by satellite 14.
(15) Each gateway 10 may be connected to a communications backbone, one or more servers (such as database server(s), file server(s), web server(s), application server(s), or the like), and/or any other type of computer infrastructure (not illustrated in
(16) Typically, gateways 10 communicating with one satellite 14 are located at a sufficient distance from each other, in such a manner that a given uplink channel 12 can be reused by the gateways 10 while, at the same, the satellite 14 is able to distinguish the uplink signals on the uplink channels 12 depending on the gateway 10 from which the uplink signal originates.
(17) System 100 enables communication from gateways 10 to satellite 14 over a set of uplink channels 12 and then from satellite 14 towards non-space-based receiver locations 18 (and therefore towards the terminals that may be located at locations 18). This communication direction is referred to as “forward link”. System 100 may also enable communication through satellite 14 in the other direction, i.e. from a terminal at a non-space-based receiver location 18 back to one of gateways 10. This communication direction is referred to as “return link”. The forward and return links are schematically illustrated by curved dashed arrows in
(18) The forward link from a gateway 10 comprises, on the one hand, an uplink “feeder link” comprising a plurality of uplink channels 12 from the gateway 10 to satellite 14, and, on the other hand, a downlink “user link” comprising a plurality of downlink channels 16 from satellite 14 to terminals at non-space-based receiver locations 18. The return link to a gateway 10 comprises, on the one hand, an uplink user link (not illustrated in
(19) In one embodiment, the processing payload of satellite 14 is said to be transparent in the sense that an uplink signal received through an uplink channel 12 is at most translated in frequency, converted in polarization (e.g. from one polarization to another, such as from RHCP to LHCP), and amplified prior to being routed and transmitted over a downlink channel 16 in a beam 20. That is, an uplink signal received through an uplink channel 12 is not demodulated in satellite 14, i.e. satellite 14 acts in a bent-pipe manner.
(20) As mentioned above, system 100 is configured to enabling communication with terminals being at a plurality of non-space-based receiver locations 18 within the geographical area covered by a plurality of beams 20. Merely as an example, 7 beams are shown in
(21) An uplink channel 12 is to be understood here as a portion of the available uplink physical resources through which an uplink signal may be transmitted. Likewise, a downlink channel 16 is to be understood here as a portion of the available downlink physical resources (especially a portion of the available frequency spectrum and available polarizations, i.e. an available “color” where a color is a combination of frequency and polarization) through which a downlink signal may be transmitted. In one embodiment, the downlink channels 16 differ from each other by: (i) their frequency, or range of frequencies; and/or (ii) their polarization, or polarizations. The frequency bands used for the downlink and uplink may be any frequency band suitable for satellite communications. Each frequency band may have its own advantages and disadvantages, as known in the art.
(22)
(23) As multi-beam precoding optimizes the downlink signals for specific locations 18 within a beam 20, i.e. the location of the user terminals, multi-beam precoding is generally only applicable to unicast communications. Therefore, in one embodiment of the invention, the method enables unicast communications from gateways 10 to user terminals at the non-space-based receiver locations 18.
(24)
(25) In particular, at each gateway 10, precoding weightings are generated s30 for the purpose of inter-beam interference mitigation precoding (as known in the art). Further, from each gateway 10, and for each uplink channel 12 among a given set of uplink channels 12, an uplink signal is transmitted s32, from the gateway 10 to the satellite 14 over the uplink channel 12.
(26) For example, referring to
(27) The uplink signals are either generated by applying the precoding weightings thereto (in such case, the uplink signals are precoded uplink signals, as will be discussed later with reference to
(28) Furthermore, as also illustrated in
(29) Yet furthermore, as further illustrated in
(30) In addition, in satellite 14, downlink signals are derived s36 from uplink signals in such a manner as to satisfy the three following constraints “C1”, “C2”, and “CB”: Constraint C1: a first downlink channel 16 is reused, in different beams among the plurality of beams 20, by at least two downlink signals derived from uplink signals originating from a first gateway among the plurality of gateways 10; Constraint C2: a second downlink channel 16 is reused, in different beams among the plurality of beams 20, by at least two downlink signals derived from uplink signals originating from a second gateway among the plurality of gateways 10; and Constraint CB: there is at least one beam in common between the beams in which the first downlink channel is reused and the beams in which the second downlink channel is reused.
(31) These constraints, which will be further explained with reference to
(32) In one embodiment, a more stringent constraint than constraint CB is used, namely constraint “CB1”, defined as follows: Constraint CB1: the beams in which the first downlink channel 16 is reused are the same as the beams in which the second downlink channel 16 is reused. In other words, in all the beams in which the first downlink channel 16 is reused, the second downlink channel 16 is also reused.
(33) In one embodiment, an additional constraint is used (in addition to constraints C1, C2, and CB, or, alternatively, in addition to constraints C1, C2, and CB1), namely constraint “CC”, defined as follows: Constraint CC: for all of the beams 20 in which satellite 14 transmits (i.e., for each of the beams 20 in which satellite 14 transmits downlink signals), the first downlink channel 16 is only reused by downlink signals derived from the uplink signals from the first gateway, and the second downlink channel 16 is only reused by downlink signals derived from uplink signals from the second gateway.
(34)
(35) In that embodiment, each gateway 10 generates s30 precoding weightings for inter-beam interference mitigation. The precoding weightings may for example be computed based on reporting information received, through the return link, from terminals located at non-space-based receiver locations 18 (as known in the art).
(36) Each gateway 10 then generates s40a uplink signals based on signals obtained or received e.g. from the backbone network (i.e., based on signals to be transmitted to the terminals, such as IP packets or the like) and using the precoding weightings generated in step s30 (as also known in the art). The uplink signals are then transmitted s32 to satellite 14. In this embodiment, the uplink signals are therefore precoded uplink signals.
(37) Satellite 14 then receives s34a the (precoded) uplink signals from the gateways 10. Downlink signals are then derived s36a from the uplink signals by changing, in frequency and/or polarization (i.e., in “color”, which is a combination of frequency and polarization), at least one of the uplink signals received from each gateway 10. That is, at least one of the uplink signals from each gateway 10 is frequency-shifted and/or converted in polarization at satellite 14. The downlink signals are then transmitted s38 towards Earth each in a specific beam 20.
(38) Whether to frequency-shift an uplink signal received from a given gateway 10 on a given uplink channel 12, whether to convert the uplink signal in polarisation, or whether to derive a downlink signal from the uplink signal without any change in frequency or polarisation, is configured in satellite 14 for example using a digital processing and route switching device, such as for example a digital channelizer as described in ref. [8], or any type of digital transparent processor (DTP). A DTP may be defined as a device on-board a satellite that provides multiple input ports for analog uplink signals and multiple output ports for analog downlink signals, and that performs frequency conversion (and/or polarization conversion) and level adjustment for selected parts of the frequency band between selected pairs of input and output ports. The beam 20 onto which a downlink signal is to be transmitted is also configured in satellite 14 for example using said DTP. Likewise, the frequency-shifting itself (if applicable to a given uplink signal), the polarisation conversion itself (if applicable to a given uplink signal), and the routing to the specified beam 20 may also be carried out for example using said DTP.
(39) In a sub-embodiment of the embodiment described with reference to
(40)
(41) That is, each gateway 10 generates s30 precoding weightings as described above with reference to
(42) Satellite 14 then receives s34b, from gateways 10, both the uplink signals and the precoding weightings. Satellite 14 then derives s36b downlink signals from the uplinks signals as described with reference to
(43) In a sub-embodiment of the embodiment described with reference to
(44) When using time slots in a time or code division multiplexing scheme on the uplink, satellite 14 has to demodulate and demultiplex the received uplink signals, and then modulate the downlink signals to be transmitted onto the beams 20. Demodulation delivers a bit stream, which by nature does not have any amplitude and phase information. Therefore, in such as case, gateways 10 cannot apply amplitude and phase weighting already on the uplink, i.e. prior to transmitting the uplink signals to satellite 14. However, since satellite 14 receives (as part of step s34b) the precoding weightings as side information from gateways 10, satellite 14 may apply these weightings and perform the precoding per se based on the received precoding weightings. As a result, if the precoding per se is performed in satellite 14 (rather than in gateways 10), gateways 10 may transmit, to satellite 14, the uplink signals as bit streams in whatever form, such as for example using an optical communication link for carrying a bit stream.
(45) The embodiments described with reference to
(46) Now, before further discussing some embodiments of the invention with reference to
(47) Namely,
(48) The configuration of
(49) In
(50)
(51) In particular, the mapping in the configuration of
(52)
(53) In other words, all of the downlink signals transmitted through downlink channel DLCH.sub.1 on all beams B.sub.1 to B.sub.m are derived from, i.e. originate from, uplink signals from gateway GW.sub.1. Likewise, all of the downlink signals transmitted through downlink channel DLCH.sub.2 on all beams B.sub.1 to B.sub.m are derived from, i.e. originate from, uplink signals from gateway GW.sub.2. The same applies, mutatis mutandis, to the other downlink channels. In such a manner, a specific downlink channel 16 is assigned to a specific gateway 10, thus enabling a comprehensive, rather than partial, joint inter-beam mitigation processing.
(54)
(55) In particular, the mapping in the configuration of
(56)
(57) In other words, all of the downlink signals transmitted through downlink channels DLCH.sub.1 and DLCH.sub.2 on all beams B.sub.1 to B.sub.m/2 are derived from, i.e. originate from, uplink signals from gateway GW.sub.1. Likewise, all of the downlink signals transmitted through downlink channels DLCH.sub.3 and DLCH.sub.4 on all beams B.sub.1 to B.sub.m/2 are derived from, i.e. originate from, uplink signals from gateway GW.sub.2. The same applies, mutatis mutandis, to the other downlink channels. In such a manner, a specific downlink channel 16 is assigned to a specific gateway 10, thus enabling a comprehensive, rather than partial, joint inter-beam mitigation processing.
(58)
(59) The mapping in the configuration of
(60) That is, gateway GW.sub.1 transmits, to satellite 14, uplink signal ULS.sub.1,1 on uplink channel ULCH.sub.1 and uplink signal ULS.sub.1,2 on uplink channel ULCH.sub.2. Gateway GW.sub.2 transmits, to satellite 14, uplink signal ULS.sub.2,1 on uplink channel ULCH.sub.1 and uplink signal ULS.sub.2,2 on uplink channel ULCH.sub.2.
(61) Let's assume, as a purely exemplary configuration, that uplink channel ULCH.sub.1 uses the same frequency, or more precisely the same frequency sub-band, as downlink channel DLCH.sub.1, that uplink channel ULCH.sub.2 uses the same frequency sub-band as downlink channel DLCH.sub.2, and that channels ULCH.sub.1, ULCH.sub.2, DLCH.sub.1, and DLCH.sub.2 all use the same polarisation, such as for example RHCP. In such a case, satellite 14 may derive s36 the downlink signals merely by (a) amplifying received uplink signal ULS.sub.1,1 and transmitting it as downlink signal DLS.sub.1,1 on beam B.sub.1; (b) amplifying received uplink signal ULS.sub.1,2, frequency-shifting it from ULCH.sub.2 to DLCH.sub.1 to form DLS.sub.2,1 and transmitting it on beam B.sub.2; (c) amplifying received uplink signal ULS.sub.2,1, frequency-shifting it from ULCH.sub.1 to DLCH.sub.2 to form DLS.sub.1,2 and transmitting it on beam B.sub.1; and (d) amplifying received uplink signal ULS.sub.2,2 and transmitting it as downlink signal DLS.sub.2,2 on beam B.sub.2. Therefore, in this configuration, only two frequency-shifts are necessary. ULS.sub.1,1 and ULS.sub.2,2 may be transparently forwarded as DLS.sub.1,1 and DLS.sub.2,2 without any frequency shift.
(62) In the embodiments of
(63)
(64) The configuration involves two gateways GW.sub.1 and GW.sub.2, 14 uplink channels ULCH.sub.1 to ULCH.sub.14, 14 beams B.sub.1 to B.sub.14, and 2 downlink channels DLCH.sub.1 and DLCH.sub.2. Beams B.sub.1 to B.sub.14 are divided into two sets of beams, i.e. Bset.sub.1 and Bset.sub.2, wherein beam set Bset.sub.1 comprises beams B.sub.1 to B.sub.7 and beam set Bset.sub.2 comprises beams B.sub.8 to B.sub.14. As schematically illustrated in
(65) That is, the mapping in the configuration of
(66) In this embodiment, downlink channel DLCH.sub.1 over all downlink beams of beam set Bset.sub.1 is controlled by gateway GW.sub.1, downlink channel DLCH.sub.1 over all downlink beams of beam set Bset.sub.2 is controlled by gateway GW.sub.2, downlink channel DLCH.sub.2 over all downlink beams of beam set Bset.sub.1 is controlled by gateway GW.sub.2, and downlink channel DLCH.sub.2 over all downlink beams of beam set Bset.sub.2 is controlled by gateway GW.sub.1. In such a manner, an effective joint inter-beam interference mitigation is possible on a per-beam-set manner at the gateways.
(67)
(68) In one embodiment, processor 142 is a digital transparent processor (DTP). Digital processing is advantageous in that techniques such as the fast Fourier transform (FFT) or polyphase filter bank (PFB) techniques, which split up signals into slices of the frequency band, may be used.
(69) Where the terms “receiver” 141, “processor” 142, “transmitter” 143, etc. are used herewith, no restriction is made regarding how distributed these elements may be and regarding how gathered elements may be. That is, the constituent elements thereof may be distributed in different software or hardware components or devices for bringing about the intended function. A plurality of distinct elements may also be gathered for providing the intended functionalities.
(70) Any one of the above-referred elements of a gateway or a satellite may be implemented in hardware, software, field-programmable gate array (FPGA), application-specific integrated circuit (ASICs), and/or firmware, or the like.
(71) In further embodiments of the invention, any one of the above-mentioned receiver 141, processor 142, transmitter 143, etc. is replaced by receiving means 141, processing means 142, transmitting means 143, etc. respectively, or, by a receiving unit 141, processing unit 142, transmitting unit 143, etc. for performing the functions of the above-mentioned receiver 141, processor 142, transmitter 143, etc.
(72) In further embodiments of the invention, any one of the above-described steps or processes may be implemented using computer-executable instructions, for example in the form of computer-executable procedures, methods or the like, in any kind of computer languages, and/or in the form of embedded software on firmware, integrated circuits or the like.
(73) Although the present invention has been described on the basis of detailed examples, the detailed examples only serve to provide the skilled person with a better understanding, and are not intended to limit the scope of the invention. The scope of the invention is much rather defined by the appended claims.
Abbreviations
(74) B beam
(75) Bset beam set
(76) DLCH downlink channel
(77) DLS downlink signal
(78) DTP digital transparent processor
(79) f frequency
(80) FFT fast Fourier transform
(81) GW gateway
(82) IP Internet Protocol
(83) LHCP left-hand circular polarisation
(84) MU-MIMO multi-user multiple-input multiple-output
(85) PFB polyphase filter bank
(86) RHCP right-hand circular polarisation
(87) ULCH uplink channel
(88) ULS uplink signal
REFERENCES
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