TRANSMITTER AND/OR RECEIVER FOR TRANSMITTING AND/OR RECEIVING RADIO INFORMATION SIGNALS
20210013978 ยท 2021-01-14
Inventors
- Christian Menzel (Maisach, DE)
- Javier MORGADE PRIETO (Munich, DE)
- Jordi Joan GIMENEZ GANDIA (Munich, DE)
Cpc classification
H04L5/0007
ELECTRICITY
H04L5/023
ELECTRICITY
H04W4/06
ELECTRICITY
International classification
Abstract
The invention relates to an OFDM-based transmitter (1000) for transmitting a multiplex (M1) of one or more radio information signals in a radio transmission mode via a transmission medium. According to the invention, the transmitter comprises an input (1002) for receiving the multiplex of radio information signals, an encoding unit (1006/1010) for encoding a block of data of the multiplex of radio information signals and for generating an encoded block of data (202), and a multiplexer unit (1012) for incorporating the encoded block of data in a media radio subframe of a radio transmission signal. According to the invention, the transmitter is furthermore designed to receive a second multiplex (M2) of one or more radio information signals. The encoder unit (1008/1010) according to the invention is furthermore designed to encode a block of data of the second multiplex of radio information signals and to generate a second encoded block of data (204). and the multiplexer unit (1012) is furthermore designed to incorporate the second encoded block of data in the same media radio subframe of tlic radio transmission signal (Sout).
Claims
1-25. (canceled)
20. The signal processing unit according to claim 9 wherein the signal processing unit comprises at least one of: a smartphone; a notebook; a laptop; a tablet PC; a personal computer; a wireless transmitter; and/or a server.
26. A system comprising: an OFDM-based transmitter for transmitting a first multiplex of at least one broadcast information signal in a broadcast transmission mode via a transmission medium, the transmitter further comprising: an input for receiving the first multiplex of at least one broadcast information signal; an encoding unit for encoding a block of data of the first multiplex of at least one broadcast information signal and for generating an encoded block of data; a multiplexer unit for incorporating the encoded block of data into a media broadcast subframe of a broadcast transmission signal, wherein the OFDM-based transmitter is further configured to receive a second multiplex of the at least one broadcast information signal, wherein the encoding unit is configured to encode a block of data of the second multiplex of the at least one broadcast information signal and to generate a second encoded block of data, and the multiplexer unit is further configured to incorporate the second encoded block of data in the media broadcast subframe of the broadcast transmission signal.
27. The system of claim 26 wherein the encoded blocks of data of the first multiplex of at least one broadcast transmission signal and the second multiplex of at least one broadcast information signal are each separately decodable.
28. The system of claim 26 wherein the media broadcast subframe is one of: an MBSFN subframe; and an eMBMS subframe.
29. The system of claim 26 wherein the OFDM-based transmitter further comprises: a control signal generator unit for generating a first control signal, wherein the first control signal corresponds with a measure of the size of the encoded blocks of data of the first multiplex and of the second multiplex and corresponds with the position where the encoded blocks of the first multiplex and the second multiplex are located in a media broadcast subframe.
30. The system of claim 29 wherein the OFDM-based transmitter is further configured for transmitting frames which contain the media broadcast subframes, and wherein the multiplexer unit is configured to store the first control signal in the frames.
31. The system of claim 30 wherein the OFDM-based transmitter is configured to store the first control signal in a first media broadcast subframe of a frame.
32. The system of claim 30 further comprising: a spectrally adjacent resource block, the multiplexer unit is configured to store the first control signal in the spectrally adjacent resource block around a central frequency of a transmission channel.
33. The system of claim 30 wherein the control signal generator unit is configured to generate a second control signal, wherein the second control signal is a measure of the position the first control signal in the frames, and the multiplexer unit is additionally configured to store the second control signal in the frames.
34. The system of claim 33 wherein the second control signal is a measure of the position of the media broadcast subframe in the frames, in which the first control signal is stored.
35. The system of claim 33 further comprising: a System Information Block Message wherein the multiplexer unit is configured to store the second control signal in a System Information Block Message.
36. A receiver comprising: an OFDM-based receiver for receiving a broadcast transmission signal in a broadcast reception mode, wherein the broadcast transmission signal contains media broadcast subframes, and the media broadcast subframes contain an encoded block of data which is generated by encoding a block of data of a first multiplex of at least one broadcast information signal wherein the OFDM-based receiver contains: an input for receiving the broadcast transmission signal; a demultiplexer unit for extracting the encoded block of data of the first multiplex from the broadcast transmission signal; a decoding unit for decoding the encoded block of data for obtaining a block of data of the first multiplex of the at least one broadcast information signal, and an output for outputting at least one broadcast information signal from the first multiplex, wherein the media broadcast subframe contains an encoded block of data of a second multiplex of at least one broadcast information signals, the demultiplexer unit being further configured to extract the encoded block of data of the second multiplex of the broadcast transmission signal, and the decoding unit being further configured to decode the encoded block of data of the second multiplex in a decoded block of data of the second multiplex.
37. The receiver of claim 36 wherein the encoded blocks of data of the first multiplex of broadcast transmission signals and of the second multiplex of broadcast information signals are each separately decodable.
38. The receiver of claim 37 wherein that the media broadcast subframe is one of an MBSFN subframe and an eMBMS subframe, and the demultiplexer unit is configured to extract the encoded block of data of one of the first multiplex and the second multiplex from the MBSFN subframe and/or the eMBMS subframe.
39. The receiver of claim 38 wherein the broadcast transmission signal contains a control signal, wherein the control signal is at least one of a measure of the size of the encoded blocks of data of the first multiplex and of the second multiplex, and a measure of the position where the encoded blocks of data of the first multiplex and second multiplex are contained in a media broadcast subframe; and wherein the demultiplexer unit is configured to extract the control signal from the broadcast transmission signal and is configured to extract an encoded block of data of the first multiplex from a media broadcast subframe corresponding to the control signal.
40. The receiver of claim 39 wherein the OFDM-based receiver is configured to receive frames which contain that at least one media broadcast subframe, wherein the control signal is at least one of a measure of the size of the encoded blocks of data of the first multiplex and of the second multiplex and a measure of the position where the encoded blocks of data of the first multiplex and the second multiplex in the media broadcast subframe are contained in the frame, and the demultiplexer unit is configured to extract the control signal from the frame.
41. The receiver of claim 40 wherein: the demultiplexer unit is configured to extract the control signal comprising a first control signal from a spectrally adjacent resource block around a central frequency of a transmission channel; and the demultiplexer unit is further configured to extract a second control signal from a frame, wherein the second control signal is a measure of the position of the first control signal in the frame.
42. The receiver of claim 41 wherein that the demultiplexer unit is configured to extract the first control signal from a media broadcast subframe corresponding to the second control signal; and the demultiplexer unit is configured to extract the second control signal from a System Information Block Message.
43. A receiver comprising: an OFDM-based receiver for receiving a broadcast transmission signal in a broadcast reception mode, wherein the broadcast transmission signal contains media broadcast subframes, and the media broadcast subframes contain an encoded block of data which is generated by encoding a block of data of a first multiplex of at least one broadcast information signal wherein the OFDM-based receiver contains: an input for receiving the broadcast transmission signal; a demultiplexer unit for extracting the encoded block of data of the first multiplex from the broadcast transmission signal, wherein the demultiplexer unit is configured to extract an encoded block of data of a multiplex from a non-integer number of resource blocks of the media broadcast subframe; a decoding unit for decoding the encoded block of data for obtaining a block of data of the first multiplex of the at least one broadcast information signal, and an output for outputting at least one broadcast information signal from the first multiplex, wherein the media broadcast subframe contains an encoded block of data of a second multiplex of at least one broadcast information signals, the demultiplexer unit being further configured to extract the encoded block of data of the second multiplex of the broadcast transmission signal, and the decoding unit being further configured to decode the encoded block of data of the second multiplex in a decoded block of data of the second multiplex.
44. The receiver of claim 43 wherein the OFDM-based receiver is compatible with at least one of: an LTE standard specification; and an xG standard, wherein x is an integer greater than or equal to 4.
45. The receiver of claim 44 wherein the encoded blocks of data of the multiplexes which are stored in a media broadcast subframe are each separately accessible, and the receiver is configured to separately access one of the encoded blocks of data which are stored in the media broadcast subframe, and to derive this block of data from the media broadcast subframe.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0017] The invention will be explained in more detail with the aid of the following description of the figures. In the drawing:
[0018]
[0019]
[0020]
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[0024]
[0025]
[0026]
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[0029]
[0030]
DETAILED DESCRIPTION OF THE FIGURES
[0031]
[0032] MBSFN stands for MBMS Single Frequency Network, wherein MBMS means Multimedia Broadcast Multicast Service.
[0033] An MBSFN subframe is called an LTE (Long Term Evolution) also eMBMS subframe (Evolved Multimedia Broadcast Multicast Services).
[0034]
[0035] LTE frames are described and defined in detail in the LTE/3GPP standard specification. In this exemplified embodiment, the LTE frame contains ten subframes, each consisting of two slots. The time is represented horizontally and the frequency for the frequency values of the OFDM frequency carrier is represented vertically. As can be seen in
[0036] Only one MBSFN (or eMBMS) subframe is contained in the LTE frame shown. However, a plurality of MBSFN subframes can be contained in the LTE frame. Consecutive frames likewise contain one or a plurality of MBSFN subframes and thus form an MBSFN channel, via which one or a plurality of multiplexes can be transmitted by in each case one or a plurality of broadcast information signals. In the case of broadcast information signals it is necessary to consider digital television signals (i.e. video and/or audio information signals) or digital sound radio signals.
[0037] The MBSFN subframes are generated by a transmitter which operates in an MBSFN broadcast transmission mode. The other subframes in the LTE frame which are not used for MBSFN transmission are used for a unicast transmission and are thus generated by the transmitter if the transmitter is operating in a unicast transmission mode.
[0038] If e.g. three multiplexes are to be transmitted by in each case one or a plurality of broadcast information signals in the MBSFN channel (in the MBSFN frames), in a transmitter according to the prior art blocks of data of the three multiplexes are collectively encoded in order to obtain an encoded block of data of the three multiplexes. The encoded block of data is stored in an MBSFN subframe 102 and then transmitted. During reception, the entire MBSFN subframe must be read out and completely decoded in order to obtain the data from one of the three multiplexes.
[0039] According to the invention, it is now proposed to encode the blocks of data of the three multiplexes separately into encoded blocks of data and to store same in an MBSFN subframe such that during reception these blocks of data are separately accessible and also then separately derivable and separately decodable from the broadcast transmission signal. This is indicated in
[0040] During reception and assuming that the user of the receiver wishes to receive a broadcast information signal from the first multiplex (which is transmitted in the encoded blocks MCH1 in consecutive MBSFN subframes), the user needs only to read out the blocks MCH1 from the MBSFN subframes. Since these blocks contain data which are separately decodable, the first multiplex can thus be received and decoded in order to derive from this first multiplex one of the broadcast information signals such that it can be viewed (in the case of a television signal) or heard (in the case of a sound radio signal).
[0041] The advantage resides in the fact that as a result only one encoded block of a multiplex can be separately read out from an MBSFN subframe and decoded, the computing time in a receiver is substantially reduced and so the battery power in the receiver is saved.
[0042] As can be seen in
[0043] Alternatively, a plurality of MBSFN transport channels (Multicast ChannelMCH) can be transmitted via a PMCH which constitutes an MBSFN subframe, wherein each MCH comprises a number of subcarriers of the MBSFN subframe which is to be configured individually or a number of physical resource blocks PRB which is to be configured individually.
[0044] The size of the subblocks MCH1, MCH2 and MCH3 are now a non-integer number of the resource blocks 100, as shown for the subblocks MCH1 and MCH2 in the MBSFN subframe 302 in
[0045] In further exemplified embodiments of the invention, an MBSFN channel can also extend over a plurality of subframes.
[0046] As already in the case of the existing MBSFN, information relating to the existence of the MBSFN channel are to be transmitted from the network to the terminals, e.g. in the form of so-called system information messages. This information should be extended in order to transmit information for describing the number, position and configuration of the individual PMCHs or MCHs so that receivers (terminals) can detect the multiplexes contained therein. It is important that broadcast receivers in general have only one reception function and no transmission function in order to connect to a transmitter. This has consequences in how receivers behave after being switched on, how a receiver can find out the structure of the broadcast channels.
[0047] This will be explained in greater detail with reference to
[0048]
[0049] This first control signal BIM indicates where the encoded blocks of data of the multiplexes are located in an MBSFN subframe and/or the size of the encoded blocks of data of the multiplexes in an MBSFN subframe.
[0050] This BIM channel PBIMCH 407 could be contained e.g. in the first MBSFN subframe of the frame, as also shown in
[0051] By virtue of the fact that the content of the Broadcast Information Message BIM does not change frequently, the capacity utilization of the PBIMCH channel 407 is restricted. As a result, only several to the point of only one OFDM system of each LTE-/xG frame are also required for transmitting the PBIMCH channel 407. Preferably, the first OFDM symbol of the first subframe (subframe number zero) of each LTE-/xG frame is used for this purpose.
[0052]
[0053]
[0054] According to the current LTE-/xG standard specification, e.g. Rel 13 or 14, the first subframe with the subframe number zero contains signaling channels such as PCH, SCH, PBCH (Physical Broadcast Channel). Further signaling channels such as PDCCH (Physical Downlink Control Channel), PDSCH (Physical Downlink Shared Channel) can be contained in further subframes.
[0055] The PBCH indicates where in the LTE frame the physical resources (Physical Resource Blocks) of the PDCCH are assigned and again the PDCCH indicates where the physical resources of the PDSCH are assigned. The information relating to the configuration of the radio cell (e.g. MIB, SIB1 and for MBSFN the SIB2, SIB13 and optionally a new SIBx are transmitted to the LTE/5G terminals via PBCH and PDSCH. In order to allow the MBSFN-enabled LTE/xG terminal to quickly locate the MBSFN subframes, the PBIMCHs and thus the position of the encoded blocks of data of the multiplexes, it is recommended to incorporate the aforementioned indication IND into the list of the system information blocks, e.g. in the form of a new SIBx message as in the exemplified embodiment of
[0056] This will be explained further below.
[0057] There now follows an illustration how particularly for the exemplified embodiment shown in
[0058]
[0059] In the case of MBMS (=Multimedia Broadcast Multicast Service), specific System Information Blocks (SIBs) are standardized.
[0060] For example:
[0061] System Information Block 2 (SIB2) for identifying specific MBSFN subframes which are contained in an LTE-/4G or 5G frame.
[0062] System Information Block 13 (SIB13) is used to inform the transmitter where the MCCH of an eMBMS system is transmitted.
[0063]
[0064] No further description is required because the above-described signaling method in connection with
[0065]
[0066]
[0067] If a receiver is switched on and MBSFN subframes and also unicast subframes in the LTE frame are transmitted by the transmitter (
[0068] Cell phones which can handle unicast and therefore cannot decode any MBSFN subframes are not influenced by the existence of the MBSFN subframes. They ignore the system information SIBx transmitted by means of PBCH, PDCCH and PDSCH. They use the subframes, which are not configured as MBSFN subframes, for unicast connections.
[0069] If, as in the exemplified embodiment of
[0070] Receivers or terminals which do not have any MBSFN or eMBMS functionality, i.e. which are not MBSFN-enabled mobile devices or smartphones cannot process a transmission signal as shown in
[0071] For current broadcast applications, it is to be expected that the number and the mode of the multiplexes of the broadcast programs to be transmitted and thus the structure of the PMCHs change only infrequently. That could change in the future with the introduction of new services and applications. Therefore, it is necessary that the receiver regularly reads out the PBIMCH information in order to establish changes in the PMCH structure and the content of the programs.
[0072] This method of broadcast transmission in accordance with the invention differs substantially from hitherto specified and standardized MBSFN.
[0073]
[0074] For this purpose, the transmitter has an input (the sub-inputs 1102 and 1004) for receiving the at least two multiplexes of broadcast information signals 51 or S2. For this purpose, the transmitter contains an encoding unit 1010 which contains two sub-encoding units 1006 and 1008 for encoding the multiplexes of broadcast information signals 51 or S2. Therefore, the encoding unit 1010 is constructed of two sub-encoding units because each sub-encoding unit 1006 and 1008 separately encodes blocks of data of the multiplexes M1 or M2 into encoded blocks of data which are thus also separately decodable. The transmitter 1000 further contains a multiplexer unit 1012 which is configured to incorporate the encoded blocks of data of the two multiplexes into an MBSFN subframe of a broadcast transmission signal Sout, as already described with reference to
[0075] The transmitter 1000 further contains a control signal generator unit 1016 for generating the first control signal BIM. This control signal BIM is a measure of the size of the encoded blocks of data of the two multiplexes and/or is a measure of the position where the encoded blocks of data of the two multiplexes are contained in an MBSFN subframe. This control signal BIM is likewise provided to the multiplexer unit 1014 and the multiplexer unit 1012 ensures that this control signal BIM is incorporated in the broadcast transmission signal. In the case of an OFDM system, the multiplexer unit also performs, inter alia, the IFFT with the encoded blocks. The thus obtained broadcast transmission signal Sout is provided to an output 1014 and then transmitted.
[0076] In the event that the transmitter 1000 is an LTE- or an xG- (x is greater than or equal to 4) compatible transmitter for transmitting LTE frames which contain one or a plurality of MBSFN subframes, the control signal BIM is a measure of the size of the encoded blocks of data of the two multiplexes and/or is a measure of the position where the encoded blocks of data of the two multiplexes in the MBSFN subframes are incorporated in an LTE/xG frame and the multiplexer unit 1012 is configured to store the control signal BIM in this LTE/xG frame. Preferably, the control signal BIM is stored in the first MBSFN subframe of an LTE/xG frame.
[0077] The multiplexer unit 1012 can be further configured to store the control signal BIM in spectrally adjacent resource blocks around the central frequency of the LTE/xG channel, as also shown in
[0078] If the LTE frame also contains non-MBSFN subframes (exemplified embodiment of
[0079]
[0080] The receiver 1100 contains an input 1102 for receiving the broadcast transmission signal Sout, and contains a decoding unit 1106 for decoding an encoded block of data of a multiplex (M1 or M2) for obtaining a decoded block of data of the multiplex (M1 or M2). This multiplex contains one or a plurality of broadcast information signals. Depending upon which broadcast information signal from the multiplex the user of the receiver 110 wishes to receive, the decoding unit 1106 additionally selects a broadcast information signal from the multiplex and guides this broadcast information signal to the output 1108.
[0081] The encoded blocks of data of the multiplex (M1 or M2) are derived by an extracting unit 1114 from the MBSFN subframes in the broadcast transmission signal. Furthermore, an IND DETECT unit 1110 and a BIM DETECT unit 1112 are also provided which, together with the extracting unit 1114, form a demultiplexer unit 1104.
[0082] If the LTE frame also contains non-MBSFN subframes (exemplified embodiment of
[0083] If the LTE frame contains only MBSFN subframes (exemplified embodiment 4 and 4A) and therefore no SIBx information (no second control signal) exists/can be received, the IND detection unit 1104 is switched off. The BIM DETECT unit 1112 now derives the PBIMCH information (the first control signal BIM), which can be located at the standardized position in the MBSFN subframe, from the transmission signal Sout. This PBIMCH information is fed as a first control signal to the extracting unit 1114 whichas already indicated aboveutilizes this information in order to extract the encoded blocks of data of a multiplex of one or a plurality of broadcast information signals from the broadcast transmission signal Sout and to feed same to the decoding unit 1106.
[0084] If desired a plurality of broadcast information signals can also be received in the receiver and output to the output 1108.
[0085] As already mentioned previously, the encoded blocks of data of the multiplexes which are stored in a media broadcast subframe are each separately accessible. The receiver is now configured to separately access one of the encoded blocks of data which are stored in the media broadcast subframe, and to derive this block of data from the media broadcast subframe.
[0086] In addition, it should also be noted at this juncture that the invention relates not only to the exemplified embodiments illustrated and discussed in this case. The scope of protection of the invention is defined only by the claims. Encoded blocks of more than two multiplexes of one or a plurality of broadcast information signals can thus be incorporated in a subframe. All of the described functionalities of the transmitter and the receiver can be implemented in hardware or in software.