(19)
(11)EP 3 747 139 B1

(12)EUROPEAN PATENT SPECIFICATION

(45)Mention of the grant of the patent:
30.03.2022 Bulletin 2022/13

(21)Application number: 19700754.5

(22)Date of filing:  22.01.2019
(51)International Patent Classification (IPC): 
H04B 7/204(2006.01)
(52)Cooperative Patent Classification (CPC):
H04B 7/2041; H04B 7/1851
(86)International application number:
PCT/EP2019/051447
(87)International publication number:
WO 2019/145274 (01.08.2019 Gazette  2019/31)

(54)

SATELLITE COMMUNICATIONS METHOD AND SYSTEM WITH MULTI-BEAM PRECODING

SATELLITENKOMMUNIKATIONSVERFAHREN UND -SYSTEM MIT MEHRSTRAHLIGER VORCODIERUNG

PROCÉDÉ ET SYSTÈME DE COMMUNICATIONS PAR SATELLITE À PRÉCODAGE MULTIFAISCEAU


(84)Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

(30)Priority: 29.01.2018 EP 18153851

(43)Date of publication of application:
09.12.2020 Bulletin 2020/50

(73)Proprietor: SES S.A.
6815 Betzdorf (LU)

(72)Inventor:
  • KRAUSE, Jens
    6815 Betzdorf (LU)

(74)Representative: Hoffmann Eitle 
Patent- und Rechtsanwälte PartmbB Arabellastraße 30
81925 München
81925 München (DE)


(56)References cited: : 
US-A1- 2011 075 601
US-A1- 2015 188 623
US-A1- 2012 289 225
  
      
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    [Field of technology]



    [0001] The invention relates to the fields of satellite communications and multi-beam precoding for satellite communications. It relates particularly to methods and systems 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 invention also relates notably to a satellite. The invention may be used to, though not limited to, provide broadband satellite communications, such as to provide internet connectivity to a plurality of terminals.

    [Background]



    [0002] In a multi-beam satellite communications system, the available, but scarce, forward downlink channel resources from the satellite towards Earth are generally reused in order to increase the overall transmission capacity, or throughput. Such a system typically relies on multi-beam satellite antennas to reuse "the Physical Layer (PHY) resources (i.e. frequency and/or polarization) several times within the coverage area" (see ref. [1], p. 27; a list of references being provided at the end of the present description).

    [0003] When a given downlink channel within a frequency band is used in more than one beam, said downlink channel is said to be reused. If a plurality of different signals are transmitted through a plurality of beams over reused downlink channels in order to provide point-to-point services, increasing the frequency reuse scheme leads not only to a desired increased transmission capability, but also to an undesired increase in intra-system interference between the beams, i.e. inter-beam interference. This interference has to be mitigated to avoid quality deterioration of the point-to-point communications.

    [0004] In ref. [1], p. 29, Fig. 1.1 schematically illustrates an exemplary satellite communication system having a multi-beam configuration with a four-color frequency reuse scheme, and covering a part of Europe. Even if the beams in which a frequency is reused are spatially separated, interference may still exist as a result of the side lobes of the beam radiation patterns (see ref. [1], section 1.1).

    [0005] In order "[t]o address the issue of high inter-beam interference in an aggressive frequency re-use multi-beam configuration, joint processing of the signals intended for transmission to the different beams can be carried out at the forward link transmitter (usually the gateway (GW) or hub). This processing, referred to (...) under the generic term "precoding", intends to 'revert' the impact of the satellite channel and interferences" (ref. [2], paragraph [0005]). Provided that a joint processing at the forward link transmitter is possible, the signals transmitted to the satellite over the uplink channel may already include compensations accounting for the geographical location of the receiver terminals, the signals intended for each of them, and their relative position with respect to other beams. This precoding aims at mitigating or compensating for the impact of the satellite channel and interferences. To support the joint processing, "the forward link receivers (satellite terminals, also referred to as user terminals (UTs) or simply terminals) provide accurate and timely reports of their channel (channel state information represented by a channel state vector, or simply channel vector) back to the transmitter, which the transmitter uses to form the appropriate precoding matrix" (ref. [2], paragraph [0005]).

    [0006] Various types of precoding techniques are known, e.g., in terrestrial cellular radio standards, and are broadly referred to as multi-user multiple-input multiple-output (MU-MIMO) techniques, as mentioned in ref. [2], paragraph [0006]. Multi-beam precoding is also discussed for example in ref. [3], [4], and [6].

    [0007] Due to feeder link limitations (the feeder link being the link between the gateway and the satellite, as shown for example in Fig. 1.1 of ref. [1]), a single gateway may not be able to accommodate all the signals to be transmitted in all the beams. More than one gateway may therefore be deployed to communicate with one satellite. However, in such a case, multi-beam joint processing cannot be performed since there is more than one gateway (see ref. [2], paragraph [0056]; ref. [5], section I., first paragraph, fourth and fifth sentences). To address that problem, several approaches have been proposed (see ref. [1], section 1.5; ref. [5], sections IV to VII.; ref. [6], section 2.2.3, second paragraph; ref. [7], section III.F).

    [0008] A first approach, which aims at avoiding the problem altogether, is the use of higher frequency bands for the feeder link. Indeed, largely unused or even unexplored frequency resources are still available at higher frequencies. In this approach, a single gateway serves the multi-beam satellite (see ref. [1], section 1.5, lines 8-11; ref. [2], paragraph [0057], first sentence; ref. [5], section I., first paragraph, third sentence). This may however come at the price of a reduced overall bandwidth and additional complexity.

    [0009] A second approach is the full interconnection among the multiple gateways so that they can all share the same data (see ref. [1], section 1.5, lines 11 -13). This however typically causes an added delay, while, especially in field of satellite communications systems, timely communications are highly desired. Another drawback is that the interconnection between the gateways has to be physically realized while gateways are typically located far apart from each other.

    [0010] Another approach consists in associating a single gateway with a given number of beams, without overall central processing but with a partial central processing that each gateway is able to perform for the beams it controls. However the numbers of beams generally required is higher than the number a single gateway is able to handle. This approach consequently means that non-accountable interferences still exist between beams controlled by different gateways (see ref. [2], paragraph [0056], third and fourth sentences; ref. [5], section IV.). This is especially marked in regions in which beams controlled by different gateways overlap.

    [0011] Another strategy, based on the above approach, consists in employing a less aggressive beam re-use scheme for beams projected at border regions. A border region is a region at the border between a first plurality of beams controlled by a first gateway and a second plurality of beams controlled by a second gateway (see ref. [2], paragraph [0057], second sentence).

    [0012] Finally, another approach is to perform a central precoding on board the satellite, rather than at the gateways. However, this approach is difficult to put in practice, as the precoding processing is computationally demanding and typically consumes a large amount of electrical power.

    [0013] In view of the above, there is a need for solutions to effectively mitigate the inter-beam interference without unduly underusing the available physical layer resources. An example of prior art is US2015/188623.

    [Summary]



    [0014] The present invention aims at addressing, at least partially, the above-mentioned need. The invention includes methods, satellites, and systems as defined in the independent claims. Particular embodiments are defined in the dependent claims.

    [0015] By enabling joint processing per downlink channel, the method of claim 1 allows maximizing the reuse of available physical layer resources with effective inter-beam mitigation. In other words, the method allows the provision of a system-wide precoding when more than one gateway is used.

    [Brief description of the drawings]



    [0016] 

    Fig. 1 schematically illustrates some aspects of a multi-beam satellite communications method and system, in one embodiment of the invention;

    Fig. 2 is a flowchart of a method in one embodiment of the invention;

    Fig. 3a is a flowchart of a method in one embodiment of the invention, wherein the uplink signals transmitted to the satellite are generated at each of the gateways using the precoding weightings;

    Fig. 3b is a flowchart of a method in one embodiment of the invention, wherein the precoding weightings generated at each of the gateways are transmitted to the satellite;

    Fig. 4 schematically illustrates a configuration of uplink and downlink channels in a multi-beam satellite communications system in which each gateway controls a subset of the total number of beams, in accordance with a non-claimed example;

    Fig. 5 schematically illustrates a configuration of uplink and downlink channels in a multi-beam satellite communications system, in one embodiment of the invention;

    Fig. 6 schematically illustrates another configuration of uplink and downlink channels in a multi-beam satellite communications system, in one embodiment of the invention;

    Fig. 7 schematically illustrates yet another configuration of uplink and downlink channels in a multi-beam satellite communications system, in one embodiment of the invention;

    Fig. 8 schematically illustrates a multi-beam satellite communications system in one embodiment of the invention;

    Fig. 9 schematically illustrates a configuration of uplink and downlink channels in a multi-beam satellite communications system, which may be used with the system of Fig. 8, in one embodiment of the invention; and

    Fig. 10 schematically illustrates some components of a satellite in one embodiment of the invention.


    [Detailed description]



    [0017] 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.

    [0018] Fig. 1 schematically illustrates a multi-beam satellite communications system 100 in one embodiment of the invention. System 100 comprises a plurality of gateways 10 located on Earth 22 or near its surface, and a satellite 14 orbiting the Earth 22. System 100 may for example be used to provide broadband interactive services, such as a broadband internet connection, to a plurality of terminals (not illustrated in Fig. 1) being at non-space-based receiver locations 18 (schematically represented by black dots in Fig. 1), such as locations on Earth 22 or near its surface. That is, the terminals may for example be on the ground, in an airplane in flight, or on a ship, and may be user terminals.

    [0019] 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.

    [0020] 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 Fig. 1), so as to obtain and/or receive signals intended for the terminals being at non-space-based receiver locations 18. Although Fig. 1 illustrates two gateways 10 (labelled GW1 and GW2) transmitting to satellite 14, system 100 may comprise more than two gateways 10, such as for example 3, 4, 5, 10, 15, or 20 gateways transmitting to satellite 14. The term "gateway" is to be understood here as encompassing all elements required for generating the precoding weightings (i.e., the weightings used for inter-beam interference mitigation precoding, also called multi-beam precoding), for optionally generating the precoded uplink signals (in embodiments wherein satellite 14 itself is not in charge of generating the precoded uplink signals), and for transmitting precoded or non-precoded uplink signals over uplink channels 12. In one embodiment, the components of a gateway 10 may be geographically distributed to a certain extent, in the sense that they are not necessarily all at the geographical location at which the gateway's antenna is located.

    [0021] 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.

    [0022] 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 Fig. 1.

    [0023] 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 Fig. 1) connecting a terminal at a non-space-based receiver location 18 to satellite 14, and, on the other hand, a downlink feeder link (not illustrated in Fig. 1) connecting satellite 14 to the gateway 10. Through the return link, a terminal at a non-space-based receiver location 18 may provide, amongst other things, timely reports regarding channel status and information on the basis of which joint pre-coding processing for inter-beam interference mitigation may be performed at the gateway 10. Such timely reports, if required, may however alternatively be provided back to the gateway 10 through another return link, e.g. a terrestrial link or a link through another satellite.

    [0024] 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.

    [0025] 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 Fig. 1. System 100 may however comprise fewer or more beams 20 than 7, such as for example 2, 3, 4, 5, 6, 8, 10, 15, 20, 30, 40, 50, 60, 80, 100, 120, 150, 200, or 250 beams. The number of beams 20 may depend on the size of the satellite's coverage area. For example, a multi-beam satellite illuminating Europe may comprise somewhere between 100 and 250 beams. These beams 20 may also be called "spot beams".

    [0026] 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.

    [0027] Fig. 1 shows, merely by way of example, two uplink channels 12 originating from gateway GW1, two uplink channels 12 originating from gateway GW2, and two downlink channels 16 originating from satellite 14. System 100 may, however, comprises another number of uplink channels 14 per gateway, and another number of downlink channels 16. In one embodiment, there is a large number of uplink channels 14 per gateway, such as for example more than 20, more than 50, or more than 100 uplink channels 14 per gateway, and there is a large number of downlink channels 16 per beam, such as for example more than 20, more than 50, or more than 100 downlink channels 16 per beam.

    [0028] 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.

    [0029] Fig. 2 is a flowchart of a method in one embodiment of the invention. Said method may be performed in a multi-beam satellite communications system 100 as illustrated in Fig. 1. Fig. 2 shows that steps s30 and s32 are performed at each of the gateways 10, whereas steps s34, s36, and s38 are performed at satellite 14. The flowchart also shows that step s40 is either performed at each of the gateways 10 (as will be discussed with reference to Fig. 3a) or at satellite 14 (as will be discussed with reference to Fig. 3b). Further, the flowchart illustrates that step s40 is performed based on the precoding weightings generated at step s30, and step s40 is performed before carrying out step s38. The method 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, wherein satellite 14 transmits towards Earth 22 in a plurality of beams 20, as already discussed with reference to Fig. 1.

    [0030] 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.

    [0031] For example, referring to Fig. 1, gateway GW1 may transmit an uplink signal ULS1,1 over an uplink channel ULCH1 and an uplink signal ULS1,2 over an uplink channel ULCH2, and gateway GW2 may transmit an uplink signal ULS2,1 over uplink channel ULCH1 and an uplink signal ULS2,2 over uplink channel ULCH2. In such a case, the set of uplink channels 12 comprises two uplink channels, i.e. ULCH1 and ULCH2. That is, each uplink channel 12 among the set of uplink channels 12 is used by both gateways GW1 and GW2. This, however, does not preclude a gateway from using other uplink channels outside the set of uplink channels commonly used by the gateways under consideration. Also, the given set of uplink channels commonly used by the gateways under consideration may comprise more than two uplink channels 12, as already mentioned above with reference to Fig. 1.

    [0032] 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 Fig. 3a, and especially step s40a thereof), or the uplink signals are transmitted in step s32 before applying the precoding weightings (in such case, the uplink signals are non-precoded uplink signals, as will be discussed later with reference to Fig. 3b). In the latter case, the precoding weightings are also transmitted to satellite 14 (as will be discussed with reference to Fig. 3b, and especially step s33 thereof).

    [0033] Furthermore, as also illustrated in Fig. 2, at the satellite 14, the uplink signals are received s34 from the gateways 10 over the uplink channels 12. Then, also at the satellite 14, for each one of the uplink signals, a downlink signal is derived s36 from the uplink signal, and the downlink signals are transmitted s32 towards Earth 22. The derivation s36 of the downlink signals from uplink signals in satellite 14 will be explained further below with reference to three constraints (constraints "C1", "C2", and "CB") as well as with reference to Figs. 5 to 9.

    [0034] Yet furthermore, as further illustrated in Fig. 2, inter-beam interference mitigation precoding s40 of signals intended to each of at least some of the plurality of non-space-based receiver locations 18 is performed prior to transmitting the downlink signals from satellite 14 towards Earth 22. That is, inter-beam interference mitigation precoding s40 is performed by applying the precoding weightings (generated in step s30) either at the gateway 10 where the precoding weightings have been generated (as will be discussed later with reference to Fig. 3a), or at the satellite 14 (as will be discussed later with reference to Fig. 3b).

    [0035] 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.


    [0036] These constraints, which will be further explained with reference to Figs. 5 to 9, together contribute to an effective inter-beam mitigation precoding processing by allowing the setting up of configurations in which a gateway 10 controls, as far as a downlink channel 16 is concerned, all the beams of a set of beams 20 among which intra-beam interference may occur. That is, a gateway 10 controls the beams 20 in the sense that the gateway 10 is in charge of generating the precoding weightings for all the beams of a set of beams 20 among which intra-beam interference may occur, as far as a specific downlink channel 16 is concerned. Assigning in that sense a specific downlink channel 16 to a specific gateway 10 enables a comprehensive, rather than partial, joint inter-beam mitigation processing.

    [0037] 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.


    [0038] 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.


    [0039] Fig. 3a is a flowchart of a method in one embodiment of the invention, wherein the uplink signals transmitted to satellite 14 are generated at gateways 10 using the precoding weightings. In other words, the precoding per se is performed at the gateways 10.

    [0040] 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).

    [0041] 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.

    [0042] 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.

    [0043] 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.

    [0044] In a sub-embodiment of the embodiment described with reference to Fig. 3a, the uplink channels of the set of uplink channels 12 may differ from each other by at least one of: (i) their frequency, or range of frequencies; and (ii) their polarization, or polarizations. This sub-embodiment is advantageous in that, by distinguishing the uplink channels 12 in frequency and/or polarisation, a gateway 10 may already apply in the uplink direction precisely the amplitude and phase weighting required on the downlink direction. This is because frequency conversion (from uplink to downlink channel frequency) and/or polarisation switching on board the satellite does not affect the amplitude and phase of the signals.

    [0045] Fig. 3b is a flowchart of a method in one embodiment of the invention, wherein the precoding weightings generated at each of the gateways 10 are transmitted to the satellite 14 and then used in satellite 14 for precoding the uplink signals. In other words, the method of Fig. 3b differs from the method described with reference to Fig. 3a in that, in Fig. 3b, the precoding per se is performed at satellite 14 (rather than at gateways 10).

    [0046] That is, each gateway 10 generates s30 precoding weightings as described above with reference to Figs. 2 and 3a. The gateway 10 then transmits s32, s33 to satellite 14 the (non-precoded) uplink signals over uplink channels 12 as well as the precoding weightings.

    [0047] 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 Fig. 3a but by also applying the received precoding weightings. The downlink signals are then transmitted s38 towards Earth each in a specific beam 20.

    [0048] In a sub-embodiment of the embodiment described with reference to Fig. 3b, the uplink channels of the set of uplink channels 12 may differ from each other by at least one of: (i) their frequency, or range of frequencies; (ii) their polarization, or polarizations; (iii) their transmission time slot, or slots; and (iv) their spread-spectrum code, or codes. This sub-embodiment is advantageous in that the uplink channels 12 may be distinguished not only in frequency and/or polarisation, but also in the time slots or codes applied, since the gateways 10 do not perform the weighting, i.e. the precoding per se.

    [0049] 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.

    [0050] The embodiments described with reference to Figs. 3a and 3b may be combined to form other embodiments. For example, in one embodiment, a system 10 may have a mixed configuration in which some gateways 10 transmit precoded uplink signals whereas the other gateways 10 transmit non-precoded uplink signals together with precoding weightings.

    [0051] Now, before further discussing some embodiments of the invention with reference to Figs. 5 to 9, a non-claimed configuration is described with reference to Fig. 4 for a better understanding of the context in which some embodiments of the invention have been developed.

    [0052] Namely, Fig. 4 schematically illustrates, in accordance with a non-claimed example, a configuration of uplink channels ULCH1 to ULCH4 and downlink channels DLCH1 and DLCH2 in a multi-beam satellite communication system in which each gateway GW1 to GW4 controls a subset of beams B1 to B8. Gateway GW1 controls beams B1 and B2, gateway GW2 controls beams B3 and B4, gateway GW3 controls beams B5 and B6, and gateway GW4 controls beams B7 and B8. That is, for example, gateway GW1 is in charge of generating the precoding weightings for beams B1 and B2, and the downlink signals sent onto beams B1 and B2 originate from gateway GW1. That is, above-described constraint CB is not satisfied. Constraint CB1 is a fortiori not satisfied either. In addition, constraint CC is not satisfied either.

    [0053] The configuration of Fig. 4 only allows a partial, non-comprehensive central pre-coding processing for inter-beam interference mitigation in a gateway. This is because the gateway serves a subset of the beams, and it is consequently not possible to comprehensively mitigate the interference arising between beams associated with different gateways.

    [0054] In Fig. 4, isosceles trapezoids represent, on the left-hand side of the figure, the uplink signals and, on the right-hand side, the downlink signals. As can be seen, the lines used for the trapezoids are of different types, i.e. dashed line, solid thick line, solid thin line, and dotted line. The same line types are used for some of the uplink and downlink signals, indicating how the uplink and downlink signals are mapped after rearrangement at the satellite. This manner of illustrating the uplink-channels-to-downlink-channels mapping is also used in Figs. 5, 6, 7, and 9.

    [0055] Fig. 5 schematically illustrates an exemplary configuration of uplink and downlink channels in a multi-beam satellite communications system 100 in one embodiment of the invention. The configuration involves n gateways GW1 to GWn (with n being a positive integer larger than 1), m uplink channels ULCH1 to ULCHm (with m being a positive integer larger than 1), m beams B1 to Bm, and n downlink channels DLCH1 to DLCHn. The m uplink channels ULCH1 to ULCHm are dividing, in frequency and/or polarization, the available uplink frequency band. Likewise, the n downlink channels DLCH1 to DLCHn are dividing, in frequency and/or polarization, the available downlink frequency band. The configuration of Fig. 5 satisfies all of constraints C1, C2, CB, CB1, and CC.

    [0056] In particular, the mapping in the configuration of Fig. 5 is as follows, wherein ULSi,j is the uplink signal from gateway GWi transmitted on uplink channel ULCHj, and DLSk,l is the downlink signal transmitted on beam Bk on downlink channel DLCHl:

    { ULS1,1, ULS1,2, ..., ULS1,m} → { DLS1,1, DLS2,1, ..., DLSm,1}

    { ULS2,1, ULS2,2, ..., ULS2,m} → { DLS1,2, DLS2,2, ..., DLSm,2}

    { ULSn,1, ULSn,2, ..., ULSn,m} →{ DLS1,n, DLS2,n, ..., DLSm,n}



    [0057] In other words, all of the downlink signals transmitted through downlink channel DLCH1 on all beams B1 to Bm are derived from, i.e. originate from, uplink signals from gateway GW1. Likewise, all of the downlink signals transmitted through downlink channel DLCH2 on all beams B1 to Bm are derived from, i.e. originate from, uplink signals from gateway GW2. 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.

    [0058] Fig. 6 schematically illustrates another exemplary configuration of uplink and downlink channels in a multi-beam satellite communication system 100 in one embodiment of the invention. The configuration involves n gateways GW1 to GWn (with n being a positive integer larger than 1), m uplink channels ULCH1 to ULCHm (with m being a positive even integer larger than 3), m/2 beams B1 to Bm/2, and 2 times n (i.e., 2·n) downlink channels DLCH1 to DLCH2n. The m uplink channels ULCH1 to ULCHm are dividing, in frequency and/or polarization, the available uplink frequency band. Likewise, the 2·n downlink channels DLCH1 to DLCH2n are dividing, in frequency and/or polarization, the available downlink frequency band. The configuration of Fig. 6 satisfies all of constraints C1, C2, CB, CB1, and CC.

    [0059] In particular, the mapping in the configuration of Fig. 6 is as follows:

    { ULS1,1, ULS1,2, ..., ULS1,m} →{ DLS1,1, DLS2,1, ..., DLSm/2,1, DLS1,2, DLS2,2, ..., DLSm/2,2}

    { ULS2,1, ULS2,2, ..., ULS2,m} → { DLS1,3, DLS2,3, ..., DLSm/2,3, DLS1,4, DLS2,4, ..., DLSm/2,4}

    { ULSn,1, ULSn,2, ..., ULSn,m} → { DLS1,2n-1, DLS2,2n-1, ..., DLSm/2,2n-1, DLS1,2n, DLS2,2n, ..., DLSm/2,2n}



    [0060] In other words, all of the downlink signals transmitted through downlink channels DLCH1 and DLCH2 on all beams B1 to Bm/2 are derived from, i.e. originate from, uplink signals from gateway GW1. Likewise, all of the downlink signals transmitted through downlink channels DLCH3 and DLCH4 on all beams B1 to Bm/2 are derived from, i.e. originate from, uplink signals from gateway GW2. 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.

    [0061] Fig. 7 schematically illustrates the exemplary configuration described with reference to Fig. 5, but specifically with n = 2 and m = 2, in one embodiment of the invention. That is, the configuration involves two gateways GW1 and GW2, two uplink channels ULCH1 and ULCH2, two beams B1 and B2, and two downlink channels DLCH1 and DLCH2. The configuration satisfies all of constraints C1, C2, CB, CB1, and CC.

    [0062] The mapping in the configuration of Fig. 7 is as follows:

    { ULS1,1, ULS1,2} → { DLS1,1, DLS2,1 }

    { ULS2,1, ULS2,2} → { DLS1,2, DLS2,2 }



    [0063] That is, gateway GW1 transmits, to satellite 14, uplink signal ULS1,1 on uplink channel ULCH1 and uplink signal ULS1,2 on uplink channel ULCH2. Gateway GW2 transmits, to satellite 14, uplink signal ULS2,1 on uplink channel ULCH1 and uplink signal ULS2,2 on uplink channel ULCH2.

    [0064] Let's assume, as a purely exemplary configuration, that uplink channel ULCH1 uses the same frequency, or more precisely the same frequency sub-band, as downlink channel DLCH1, that uplink channel ULCH2 uses the same frequency sub-band as downlink channel DLCH2, and that channels ULCH1, ULCH2, DLCH1, and DLCH2 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 ULS1,1 and transmitting it as downlink signal DLS1,1 on beam B1; (b) amplifying received uplink signal ULS1,2, frequency-shifting it from ULCH2 to DLCH1 to form DLS2,1 and transmitting it on beam B2; (c) amplifying received uplink signal ULS2,1, frequency-shifting it from ULCH1 to DLCH2 to form DLS1,2 and transmitting it on beam B1; and (d) amplifying received uplink signal ULS2,2 and transmitting it as downlink signal DLS2,2 on beam B2. Therefore, in this configuration, only two frequency-shifts are necessary. ULS1,1 and ULS2,2 may be transparently forwarded as DLS1,1 and DLS2,2 without any frequency shift.

    [0065] In the embodiments of Figs. 5, 6, and 7, which all satisfy above-described constraints C1, C2, and CB, each downlink channel over all downlink beams is effectively controlled by a single gateway, so that joint inter-beam interference mitigation is possible at the controlling gateway.

    [0066] Figs. 8 and 9 show an exemplary multi-beam satellite communications system 100 and an associated configuration of uplink and downlink channels, in another embodiment of the invention.

    [0067] The configuration involves two gateways GW1 and GW2, 14 uplink channels ULCH1 to ULCH14, 14 beams B1 to B14, and 2 downlink channels DLCH1 and DLCH2. Beams B1 to B14 are divided into two sets of beams, i.e. Bset1 and Bset2, wherein beam set Bset1 comprises beams B1 to B7 and beam set Bset2 comprises beams B8 to B14. As schematically illustrated in Fig. 8, the two beam sets Bset1, Bset2 are located sufficiently far apart from each other that there is no inter-beam interference between the two sets, or the interference is at least negligible, i.e. negligible compared to other impairments of the signals. That is, the two subsets are sufficiently far apart from each other so that the interferences between the downlink signals transmitted in the beams of the first beam subset B1 and the downlink signals transmitted in the beams of the second beam subset B2 are negligible. The configuration of Fig. 9 satisfies all of constraints C1, C2, CB, and CB1, but not constraint CC.

    [0068] That is, the mapping in the configuration of Fig. 9 is as follows:

    { ULS1,1, ULS1,2, ..., ULS1,14} → { DLS1,1, DLS2,1, ..., DLS7,1, DLS8,2, DLS9,2, ..., DLS14,2 }

    { ULS2,1, ULS2,2, ..., ULS2,14 } → { DLS1,2, DLS2,2, ..., DLS7,2, DLS8,1, DLS9,1, ..., DLS14,1 }



    [0069] In this embodiment, downlink channel DLCH1 over all downlink beams of beam set Bset1 is controlled by gateway GW1, downlink channel DLCH1 over all downlink beams of beam set Bset2 is controlled by gateway GW2, downlink channel DLCH2 over all downlink beams of beam set Bset1 is controlled by gateway GW2, and downlink channel DLCH2 over all downlink beams of beam set Bset2 is controlled by gateway GW1. In such a manner, an effective joint inter-beam interference mitigation is possible on a per-beam-set manner at the gateways.

    [0070] Fig. 10 schematically illustrates some components of a satellite 14 in one embodiment of the invention, which may be used for carrying out the above-described methods. In particular, satellite 14 is configured for enabling communication from a plurality of gateways to satellite 14 over a set of uplink channels 12 and then from satellite 14 towards a plurality of non-space-based receiver locations (where user terminals may be located), wherein satellite 14 is configured to transmit towards Earth 22 in a plurality of beams 20. Satellite 14 comprises a receiver 141, a processor 142, and a transmitter 143. Receiver 141 is configured for receiving uplink signals from the plurality of gateways 10 over the uplink channels 12. Processor 142 configured for deriving, for each of the uplink signals, a downlink signal from the uplink signal. Finally, transmitter 143 is configured for transmitting the downlink signals towards Earth 22. In addition, satellite 14 is configured so that, and in particular receiver 141, processor 142, and transmitter 143 are configured so that, in operation, above-described constraints C1, C2, and CB are satisfied, which enables an effective inter-beam interference mitigation.

    [0071] 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.

    [0072] 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.

    [0073] 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.

    [0074] 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.

    [0075] 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.

    [0076] 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 defined by the appended claims.

    Abbreviations:



    [0077] 
    B
    beam
    Bset
    beam set
    DLCH
    downlink channel
    DLS
    downlink signal
    DTP
    digital transparent processor
    f
    frequency
    FFT
    fast Fourier transform
    GW
    gateway
    IP
    Internet Protocol
    LHCP
    left-hand circular polarisation
    MU-MIMO
    multi-user multiple-input multiple-output
    PFB
    polyphase filter bank
    RHCP
    right-hand circular polarisation
    ULCH
    uplink channel
    ULS
    uplink signal

    References:



    [0078] 
    1. [1] Christopoulos, D., "Multibeam Joint Processing in Satellite Communications", Dissertation, University of Luxembourg, Luxembourg, 2014, available at the time of writing from http://orbilu.uni.lu/handle/10993/21721
    2. [2] US 2017/0149493 A1
    3. [3] G. Caire, M. Debbah, L. Cottatellucci, R. De Gaudenzi, R. Rinaldo, R. Mueller, G. Gallinaro, "Perspectives of adopting interference mitigation techniques in the context of broadband multimedia satellite systems," in 23rd AIAA International Communications Satellite Systems Conference, ICSSC 2005, , Rome, Italy, 1-5 (September 2005).
    4. [4] J. Arnau, B. Devillers, C. Mosquera and A. Perez-Neira, "Performance study of multiuser interference mitigation schemes for hybrid broadband multibeam satellite architectures," EURASIP Journal on Wireless Communications and Networking, 2012.
    5. [5] G. Zheng, S. Chatzinotas, and B. Ottersten, "Multi-gateway cooperation in multibeam satellite systems," in Proc. of 23rd IEEE symp. on Person. Indoor Mob. Radio Commun., 2012.
    6. [6] D. Christopoulos, S. Chatzinotas, G. Zheng, J. Grotz, and B. Ottersten, "Linear and non-linear techniques for multibeam joint processing in satellite communications," EURASIP Journal on Wireless Communications and Networking 2012, 2012:162. Available at the time of writing from http://jwcn.eurasipjournals.eom/content/2012/1/162
    7. [7] D. Christopoulos, P.-D. Arapoglou, S. Chatzinotas, and B. Ottersten, "Linear precoding in multibeam satcoms: Practical constraints," in 31st AIAA International Communications Satellite Systems Conference (ICSSC), Florence, IT, Oct. 2013.
    8. [8] Ejima, Minoru Akita , Akinori Fujimura, "Digital Channelizer for High Throughput Satellite Communications", Mitsubishi Electric ADVANCE September 2014, pp. 7-10. Available at the time of writing from http://www.mitsubishielectric.com/company/rd/advance/pdf/vol147/147_TR3.pdf



    Claims

    1. Method for communication from a plurality of gateways (10) to a satellite (14) over a set of uplink channels (12) and then from the satellite (14) towards a plurality of non-space-based receiver locations (18), wherein the satellite (14) transmits towards Earth (22) in a plurality of beams (20), the method comprising:
    before transmission from the satellite (14) towards Earth (22), inter-beam interference mitigation precoding (s40) of signals intended to each of at least some of the plurality of non-space-based receiver locations (18);

    at each of the plurality of gateways (10):

    generating (s30) weightings, hereinafter referred to as "precoding weightings", for the inter-beam interference mitigation precoding; and

    transmitting (s32), from the gateway (10) to the satellite (14), for each of the set of uplink channels (12), a signal, hereinafter referred to as "uplink signal", over the uplink channel (12); and

    at the satellite (14):

    receiving (s34) the uplink signals from the plurality of gateways (10) over uplink channels (12);

    for each of the uplink signals, deriving (s36) a signal, hereinafter referred to as "downlink signal", from the uplink signal; and

    transmitting (s38) the downlink signals towards Earth (22), the downlink signals being, or being derived from, signals having been subject to the inter-beam interference mitigation precoding using the pre-coding weightings, wherein:

    a first downlink channel is reused, in different beams among the plurality of beams (20), by at least two downlink signals derived from uplink signals from a first gateway among the plurality of gateways (10), and

    a second downlink channel is reused, in different beams among the plurality of beams (20), by at least two downlink signals derived from uplink signals from a second gateway among the plurality of gateways (10),

    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 (10), generating (s40a), 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 (18);

    wherein, for at least one of the uplink signals from each gateway, deriving (s36a) 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 (12) 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 (10), transmitting (s33), from the gateway to the satellite, the precoding weightings;

    wherein deriving (s36b) 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 (12) 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 any one of the preceding claims, 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 any one of the preceding claims, 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 any one of the preceding claims, 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 any one of the preceding claims, 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 any one of the preceding claims, wherein at least some of the uplink channels of the set of uplink channels are carried on at least one optical link.
     
    11. System (100) comprising a satellite (14) and a plurality of gateways (10),
    wherein the satellite (14) is configured for enabling communication from the plurality of gateways (10) to the satellite (14) over a set of uplink channels (12) and then from the satellite (14) towards a plurality of non-space-based receiver locations (18), wherein the satellite (14) is configured to transmit towards Earth (22) in a plurality of beams (20), the satellite (14) comprising:

    a receiver (141) configured for receiving signals, hereinafter referred to as "uplink signals", from the plurality of gateways (10) over the uplink channels (12);

    a processor (142) configured for deriving, for each of the uplink signals, a signal, hereinafter referred to as "downlink signal", from the uplink signal; and

    a transmitter (143) configured for transmitting the downlink signals towards Earth (22), the downlink signals being, or being derived from, signals having been subject to inter-beam interference mitigation precoding using weightings, hereinafter referred to as "precoding weightings";

    wherein the satellite (14) is configured so that, in operation,

    a first downlink channel is reused, in different beams among the plurality of beams (20), by at least two downlink signals derived from uplink signals from a first gateway among the plurality of gateways (10), and

    a second downlink channel is reused, in different beams among the plurality of beams (20), by at least two downlink signals derived from uplink signals from a second gateway among the plurality of gateways (10),

    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;

    wherein the system (100) is configured for, before transmission from the satellite (14) towards Earth (22), performing the inter-beam interference mitigation precoding of signals intended to each of at least some of the plurality of non-space-based receiver locations (18); and

    each of the plurality of gateways (10) is configured for

    generating the precoding weightings for the inter-beam interference mitigation precoding; and

    transmitting, to the satellite (14), for each of the set of uplink channels (12), the uplink signals over the uplink channel (12).


     
    12. System (100) of claim 11, wherein the satellite (14) is 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. System (100) of claim 11 or 12, wherein the satellite (14) is 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. System (100) according to any one of claims 11 to 13, wherein the processor (142) comprises at least one of:

    a digital transparent processor; and

    a digital channelizer.


     


    Ansprüche

    1. Verfahren zur Kommunikation von einer Vielzahl von Gateways (10) zu einem Satelliten (14) über einen Satz von Aufwärtsstreckenkanälen (12) und dann von dem Satelliten (14) zu einer Vielzahl von Empfängerstellen (18) außerhalb des Weltraums, wobei der Satellit (14) in einer Vielzahl von Strahlen (20) an die Erde (22) überträgt, wobei das Verfahren umfasst:

    vor Übertragung von dem Satelliten (14) an die Erde (22), Zwischenstrahl-Interferenzminderungsvorcodierung (s40) von Signalen, die für jede von mindestens manche der Vielzahl von Empfängerstellen (18) außerhalb des Weltraums gedacht sind;

    bei jedem der Vielzahl von Gateways (10):

    Erzeugen (s30) von Gewichtungen, hierin nachfolgend als "Vorcodierungsgewichtungen" bezeichnet, für die Zwischenstrahl-Interferenzminderungsvorcodierung; und

    Übertragen (s32), von dem Gateway (10) an den Satelliten (14), für jeden des Satzes von Aufwärtsstreckenkanälen (12), eines Signals, hierin nachfolgend als "Aufwärtsstreckensignal" bezeichnet, über den Aufwärtsstreckenkanal (12); und

    bei dem Satelliten (14):

    Empfangen (s34) der Aufwärtsstreckensignale von der Vielzahl von Gateways (10) über Aufwärtsstreckenkanäle (12);

    für jedes der Aufwärtsstreckensignale, Ableiten (s36) eines Signals, hierin nachfolgend als "Abwärtsstreckensignal" bezeichnet, von dem Aufwärtsstreckensignal; und

    Übertragen (s38) der Abwärtsstreckensignale an die Erde (22), wobei die Abwärtsstreckensignale Signale sind, oder davon abgeleitet sind, die der Zwischenstrahl-Interferenzminderungsvorcodierung unter Verwendung der Vorcodierungsgewichtungen unterzogen wurden, wobei:

    ein erster Abwärtsstreckenkanal, in unterschiedlichen Strahlen unter der Vielzahl von Strahlen (20), von mindestens zwei Abwärtsstreckensignalen, die von Aufwärtsstreckensignalen von einem ersten Gateway unter der Vielzahl von Gateways (10) abgeleitet sind, wiederverwendet wird, und

    ein zweiter Abwärtsstreckenkanal, in unterschiedlichen Strahlen unter der Vielzahl von Strahlen (20), von mindestens zwei Abwärtsstreckensignalen, die von Aufwärtsstreckensignalen von einem zweiten Gateway unter der Vielzahl von Gateways (10) abgeleitet sind, wiederverwendet wird,

    wobei mindestens ein gemeinsamer Strahl unter den Strahlen, in denen der erste Abwärtsstreckenkanal wiederverwendet wird, und den Strahlen, in denen der zweite Abwärtsstreckenkanal wiederverwendet wird, vorhanden ist.


     
    2. Verfahren nach Anspruch 1, weiter umfassend:

    bei jedem der Vielzahl von Gateways (10), Erzeugen (s40a), unter Verwendung der Vorcodierungsgewichtungen, der Aufwärtsstreckensignale durch Zwischenstrahl-Interferenzminderungsvorcodierung von Signalen, die für jede von mindestens manchen der Vielzahl von Empfängerstellen (18) außerhalb des Weltraums gedacht sind;

    wobei, für mindestens eines der Aufwärtsstreckensignale von jedem Gateway, Ableiten (s36a) eines Abwärtsstreckensignals von einem Aufwärtsstreckensignal Ändern, in mindestens einem von Frequenz und Polarisation, des Aufwärtsstreckensignals umfasst.


     
    3. Verfahren nach Anspruch 2, wobei die Aufwärtsstreckenkanäle des Satzes von Aufwärtsstreckenkanälen (12) sich voneinander durch mindestens eines des Folgenden unterscheiden:

    deren Frequenz oder Frequenzbereich; und

    deren Polarisation oder Polarisationen.


     
    4. Verfahren nach Anspruch 1, weiter umfassend:

    bei jedem der Vielzahl von Gateways (10), Übertragen (s33), von dem Gateway zu dem Satelliten, der Vorcodierungsgewichtungen;

    wobei Ableiten (s36b) eines Abwärtsstreckensignals von einem Aufwärtsstreckensignal mindestens eine der Vorcodierungsgewichtungen für Zwischenstrahl-Interferenzminderungsvorcodierung nutzt.


     
    5. Verfahren nach Anspruch 4, wobei die Aufwärtsstreckenkanäle des Satzes von Aufwärtsstreckenkanälen (12) sich voneinander durch mindestens eines des Folgenden unterscheiden:

    deren Frequenz oder Frequenzbereich;

    deren Polarisation oder Polarisationen;

    deren Übertragungszeitschlitz oder -schlitze; und

    deren Spreizspektrumcode oder -codes.


     
    6. Verfahren nach einem der vorstehenden Ansprüche, wobei der erste Abwärtsstreckenkanal und der zweite Abwärtsstreckenkanal sich voneinander durch

    deren Frequenz oder Frequenzbereich; und

    deren Polarisation oder Polarisationen unterscheiden.


     
    7. Verfahren nach einem der vorstehenden Ansprüche, wobei die Strahlen, in denen der erste Abwärtsstreckenkanal wiederverwendet wird, dieselben wie die Strahlen sind, in denen der zweite Abwärtsstreckenkanal wiederverwendet wird.
     
    8. Verfahren nach einem der vorstehenden Ansprüche, wobei, für alle der Strahlen, in denen der Satellit überträgt, der erste Abwärtsstreckenkanal nur von Abwärtsstreckensignalen wiederverwendet wird, die von den Aufwärtsstreckensignalen von dem ersten Gateway abgeleitet sind, und der zweite Abwärtsstreckenkanal nur von Abwärtsstreckensignalen wiederverwendet wird, die von Aufwärtsstreckensignalen von dem zweiten Gateway abgeleitet sind.
     
    9. Verfahren nach einem der vorstehenden Ansprüche, wobei Ableiten eines Abwärtsstreckensignals von einem Aufwärtsstreckensignal unter Verwendung mindestens eines des Folgenden durchgeführt wird:

    einem digitalen transparenten Prozessor; und

    einem digitalen Kanalisierer.


     
    10. Verfahren nach einem der vorstehenden Ansprüche, wobei mindestens manche der Aufwärtsstreckenkanäle des Satzes von Aufwärtsstreckenkanälen auf mindestens einem optischen Link geführt werden.
     
    11. System (100), umfassend einen Satelliten (14) und eine Vielzahl von Gateways (10), wobei der Satellit (14) konfiguriert ist, Kommunikation von der Vielzahl von Gateways (10) zu dem Satelliten (14) über einen Satz von Aufwärtsstreckenkanälen (12) und dann von dem Satelliten (14) zu einer Vielzahl von Empfängerstellen (18) außerhalb des Weltraums zu ermöglichen, wobei der Satellit (14) konfiguriert ist, in einer Vielzahl von Strahlen (20) an die Erde (22) zu übertragen, wobei der Satellit (14) umfasst:

    einen Empfänger (141), der zum Empfangen von Signalen, hierin nachfolgend als "Aufwärtsstreckensignale" bezeichnet, von der Vielzahl von Gateways (10) über die Aufwärtsstreckenkanäle (12) konfiguriert ist;

    einen Prozessor (142), der zum Ableiten, für jedes der Aufwärtsstreckensignale, eines Signals, hierin nachfolgend als "Abwärtsstreckensignal" bezeichnet, von dem Aufwärtsstreckensignal konfiguriert ist; und

    einen Sender (143), der zum Übertragen der Abwärtsstreckensignale an die Erde (22) konfiguriert ist, wobei die Abwärtsstreckensignale Signale sind, oder davon abgeleitet sind, die Zwischenstrahl-Interferenzminderungsvorcodierung unter Verwendung von Gewichtungen, hierin nachfolgend als "Vorcodierungsgewichtungen" bezeichnet, unterzogen wurden;

    wobei der Satellit (14) so konfiguriert ist, dass, in Betrieb,

    ein erster Abwärtsstreckenkanal, in unterschiedlichen Strahlen unter der Vielzahl von Strahlen (20), von mindestens zwei Abwärtsstreckensignalen, die von Aufwärtsstreckensignalen von einem ersten Gateway unter der Vielzahl von Gateways (10) abgeleitet sind, wiederverwendet wird,

    und ein zweiter Abwärtsstreckenkanal, in unterschiedlichen Strahlen unter der Vielzahl von Strahlen (20), von mindestens zwei Abwärtsstreckensignalen, die von Aufwärtsstreckensignalen von einem zweiten Gateway unter der Vielzahl von Gateways (10) abgeleitet sind, wiederverwendet wird,

    wobei mindestens ein gemeinsamer Strahl unter den Strahlen, in denen der erste Abwärtsstreckenkanal wiederverwendet wird, und den Strahlen, in denen der zweite Abwärtsstreckenkanal wiederverwendet wird, vorhanden ist;

    wobei das System (100) zum Ausführen, vor Übertragung von dem Satelliten (14) an die Erde (22), der Zwischenstrahl-Interferenzminderungsvorcodierung von Signalen, die für jede von mindestens manchen der Vielzahl von Empfängerstellen (18) außerhalb des Weltraums gedacht sind, konfiguriert ist; und

    jedes der Vielzahl von Gateways (10) zum

    Erzeugen der Vorcodierungsgewichtungen für die Zwischenstrahl-Interferenzminderungsvorcodierung; und

    Übertragen, an den Satelliten (14), für jeden des Satzes von Aufwärtsstreckenkanälen (12), der Aufwärtsstreckensignale über den Aufwärtsstreckenkanal (12) konfiguriert ist.


     
    12. System (100) nach Anspruch 11, wobei der Satellit (14) weiter so konfiguriert ist, dass in Betrieb, die Strahlen, in denen der erste Abwärtsstreckenkanal wiederverwendet wird, dieselben wie die Strahlen sind, in denen der zweite Abwärtsstreckenkanal wiederverwendet wird.
     
    13. System (100) nach Anspruch 11 oder 12, wobei der Satellit (14) weiter so konfiguriert ist, dass, in Betrieb, für alle der Strahlen, in denen der Satellit überträgt, der erste Abwärtsstreckenkanal nur von Abwärtsstreckensignalen wiederverwendet wird, die von den Aufwärtsstreckensignalen von dem ersten Gateway abgeleitet sind, und der zweite Abwärtsstreckenkanal nur von Abwärtsstreckensignalen wiederverwendet wird, die von Aufwärtsstreckensignalen von dem zweiten Gateway abgeleitet sind.
     
    14. System (100) nach einem der Ansprüche 11 bis 13, wobei der Prozessor (142) mindestens eines des Folgenden umfasst:

    einen digitalen transparenten Prozessor; und

    einen digitalen Kanalisierer.


     


    Revendications

    1. Procédé de communication à partir d'une pluralité de passerelles (10) vers un satellite (14) par l'intermédiaire d'un ensemble de canaux de liaison montante (12) puis à partir du satellite (14) vers une pluralité d'emplacements de récepteurs non spatiaux (18), dans lequel le satellite (14) transmet vers la Terre (22) en une pluralité de faisceaux (20), le procédé consistant à :

    avant la transmission à partir du satellite (14) vers la Terre (22), précoder l'atténuation d'interférence interfaisceaux (s40) de signaux destinés à chacun d'au moins certains de la pluralité d'emplacements de récepteurs non spatiaux (18) ;

    à chacune de la pluralité de passerelles (10) :

    générer (s30) des pondérations, ci-après dénommées « pondérations de précodage », pour le précodage d'atténuation d'interférence interfaisceaux ; et

    transmettre (s32), à partir de la passerelle (10) au satellite (14), pour chacun de l'ensemble de canaux de liaison montante (12), un signal, ci-après dénommé « signal de liaison montante », par l'intermédiaire du canal de liaison montante (12) ; et

    au satellite (14) :

    recevoir (s34) les signaux de liaison montante à partir de la pluralité de passerelles (10) par l'intermédiaire de canaux de liaison montante (12) ;

    pour chacun des signaux de liaison montante, dériver (s36) un signal, ci-après dénommé « signal de liaison descendante », à partir du signal de liaison montante ; et

    transmettre (s38) les signaux de liaison descendante vers la Terre (22), les signaux de liaison descendante étant, ou étant dérivés, des signaux ayant été soumis au précodage d'atténuation d'interférence interfaisceaux en utilisant les pondérations de précodage, dans lequel :

    un premier canal de liaison descendante est réutilisé, dans des faisceaux différents parmi la pluralité de faisceaux (20), par au moins deux signaux de liaison descendante dérivés de signaux de liaison montante à partir d'une première passerelle parmi la pluralité de passerelles (10), et

    un second canal de liaison descendante est réutilisé, dans des faisceaux différents parmi la pluralité de faisceaux (20), par au moins deux signaux de liaison descendante dérivés de signaux de liaison montante à partir d'une seconde passerelle parmi la pluralité de passerelles (10),

    dans lequel il y a au moins un faisceau en commun entre les faisceaux dans lesquels le premier canal de liaison descendante est réutilisé et les faisceaux dans lesquels le second canal de liaison descendante est réutilisé.


     
    2. Procédé selon la revendication 1, comprenant en outre :

    à chacune de la pluralité de passerelles (10), la génération (s40a), en utilisant les pondérations de précodage, des signaux de liaison montante par précodage d'atténuation d'interférence interfaisceaux de signaux destinés à chacun d'au moins certains de la pluralité d'emplacements de récepteurs non spatiaux (18) ;

    dans lequel, pour au moins un des signaux de liaison montante provenant de chaque passerelle, la dérivation (s36a) d'un signal de liaison descendante à partir d'un signal de liaison montante consiste à changer, dans au moins une de la fréquence et de la polarisation, le signal de liaison montante.


     
    3. Procédé selon la revendication 2, dans lequel les canaux de liaison montante de l'ensemble de canaux de liaison montante (12) diffèrent les uns des autres par au moins un parmi :

    leur fréquence, ou plage de fréquences ; et

    leur polarisation, ou polarisations.


     
    4. Procédé selon la revendication 1, comprenant en outre :

    à chacune de la pluralité de passerelles (10), la transmission (s33), à partir de la passerelle au satellite, des pondérations de précodage ;

    dans lequel la dérivation (s36b) d'un signal de liaison descendante à partir d'un signal de liaison montante utilise au moins une des pondérations de précodage pour le précodage d'atténuation d'interférence interfaisceaux.


     
    5. Procédé selon la revendication 4, dans lequel les canaux de liaison montante de l'ensemble de canaux de liaison montante (12) diffèrent les uns des autres par au moins un parmi :

    leur fréquence, ou plage de fréquences ;

    leur polarisation, ou polarisations ;

    leur créneau horaire, ou créneaux horaires, de transmission ; et

    leur code, ou codes, à spectre étalé.


     
    6. Procédé selon l'une quelconque des revendications précédentes, dans lequel le premier canal de liaison descendante et le second canal de liaison descendante diffèrent l'un de l'autre par

    leur fréquence, ou plage de fréquences ; et

    leur polarisation, ou polarisations.


     
    7. Procédé selon l'une quelconque des revendications précédentes, dans lequel les faisceaux dans
    lesquels le premier canal de liaison descendante est réutilisé sont les mêmes que les faisceaux dans lesquels le second canal de liaison descendante est réutilisé.
     
    8. Procédé selon l'une quelconque des revendications précédentes, dans lequel, pour tous les faisceaux dans lesquels le satellite transmet, le premier canal descendant est réutilisé uniquement par des signaux de liaison descendante dérivés à partir des signaux de liaison montante de la première passerelle, et le second canal de liaison descendante est uniquement réutilisé par des signaux de liaison descendante dérivés à partir de signaux de liaison montante de la seconde passerelle.
     
    9. Procédé selon l'une quelconque des revendications précédentes, dans lequel la dérivation d'un signal de liaison descendante à partir d'un signal de liaison montante est effectuée en utilisant au moins un parmi :

    un processeur transparent numérique ; et

    un canaliseur numérique.


     
    10. Procédé selon l'une quelconque des revendications précédentes, dans lequel au moins certains des canaux de liaison montante de l'ensemble de canaux de liaison montante sont acheminés sur au moins une liaison optique.
     
    11. Système (100) comprenant un satellite (14) et une pluralité de passerelles (10), dans lequel le satellite (14) est configuré pour permettre la communication à partir de la pluralité de passerelles (10) au satellite (14) par l'intermédiaire d'un ensemble de canaux de liaison montante (12) puis à partir du satellite (14) vers une pluralité d'emplacements de récepteurs non spatiaux (18), dans lequel le satellite (14) est configuré pour transmettre vers la Terre (22) dans une pluralité de faisceaux (20), le satellite (14) comprenant :

    un récepteur (141) configuré pour recevoir des signaux, ci-après dénommés « signaux de liaison montante », à partir de la pluralité de passerelles (10) par l'intermédiaire des canaux de liaison montante (12) ;

    un processeur (142) configuré pour dériver, pour chacun des signaux de liaison montante, un signal, ci-après dénommé « signal de liaison descendante », à partir du signal de liaison montante ; et

    un transmetteur (143) configuré pour transmettre les signaux de liaison descendante vers la Terre (22), les signaux de liaison descendante étant, ou étant issus, des signaux ayant fait été soumis à un précodage d'atténuation d'interférence interfaisceaux en utilisant des pondérations, ci-après dénommées « pondérations de précodage » ;

    dans lequel le satellite (14) est configuré de sorte que, en fonctionnement,

    un premier canal de liaison descendante est réutilisé, dans des faisceaux différents parmi la pluralité de faisceaux (20), par au moins deux signaux de liaison descendante dérivés de signaux de liaison montante à partir d'une première passerelle parmi la pluralité de passerelles (10),

    et un second canal de liaison descendante est réutilisé, dans des faisceaux différents parmi la pluralité de faisceaux (20), par au moins deux signaux de liaison descendante dérivés de signaux de liaison montante à partir d'une seconde passerelle parmi la pluralité de passerelles (10),

    dans lequel il y a au moins un faisceau en commun entre les faisceaux dans lesquels le premier canal de liaison descendante est réutilisé et les faisceaux dans lesquels le second canal de liaison descendante est réutilisé ;

    dans lequel le système (100) est configuré pour, avant la transmission à partir du satellite (14) vers la Terre (22), effectuer le précodage d'atténuation d'interférence interfaisceaux de signaux destinés à chacun d'au moins certains de la pluralité d'emplacements de récepteurs non spatiaux (18) ; et

    à chacune de la pluralité de passerelles (10), est configuré pour

    générer les pondérations de précodage pour le précodage d'atténuation d'interférence interfaisceaux ; et

    transmettre, au satellite (14), pour chacun de l'ensemble de canaux de liaison montante (12), les signaux de liaison montante par l'intermédiaire du canal de liaison montante (12).


     
    12. Système (100) selon la revendication 11, dans lequel le satellite (14) est en outre configuré de sorte que, en fonctionnement, les faisceaux dans lesquels le premier canal de liaison descendante est réutilisé sont les mêmes que les faisceaux dans lesquels le second canal de liaison descendante est réutilisé.
     
    13. Système (100) selon la revendication 11 ou 12, dans lequel le satellite (14) est en outre configuré de sorte que, en fonctionnement, pour tous les faisceaux dans lesquels le satellite transmet, le premier canal descendant est réutilisé uniquement par des signaux de liaison descendante dérivés à partir des signaux de liaison montante de la première passerelle, et le second canal de liaison descendante est uniquement réutilisé par des signaux de liaison descendante dérivés à partir de signaux de liaison montante de la seconde passerelle.
     
    14. Système (100) selon l'une quelconque des revendications 11 à 13, dans lequel le processeur (142) comprend au moins un parmi :

    un processeur transparent numérique ; et

    un canaliseur numérique.


     




    Drawing



































    Cited references

    REFERENCES CITED IN THE DESCRIPTION



    This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.

    Patent documents cited in the description




    Non-patent literature cited in the description