Data transmission in a wireless communication system with reduced latency
11658778 · 2023-05-23
Assignee
Inventors
- Thomas Fehrenbach (Berlin, DE)
- Baris Goektepe (Berlin, DE)
- Cornelius Hellge (Berlin, DE)
- Thomas Schierl (Berlin, DE)
- Yago SÁNCHEZ DE LA FUENTE (Berlin, DE)
- Dennis Wieruch (Berlin, DE)
- Bernd Holfeld (Berlin, DE)
- Thomas Wirth (Kleinmachnow, DE)
- Thomas Haustein (Potsdam, DE)
- Lars Thiele (Berlin, DE)
- Martin Kurras (Berlin, DE)
Cpc classification
H04L5/0007
ELECTRICITY
H04W72/23
ELECTRICITY
H04L5/0053
ELECTRICITY
H04L5/0064
ELECTRICITY
H04L5/0044
ELECTRICITY
H04L5/0046
ELECTRICITY
International classification
H04L1/00
ELECTRICITY
H04L1/1812
ELECTRICITY
H04L27/34
ELECTRICITY
Abstract
A receiver receives and processes a data signal having at least one data signal block. The data signal block has a number of symbols in the time domain and a number of sub-carriers in the frequency domain. The data signal block includes a control region to provide control data to the receiver and a payload region to provide payload data to the receiver. Payload data is allocated to the control region of the data signal block.
Claims
1. A receiver for a wireless communication system, the receiver comprising: one or more antennas, and a signal processor, wherein the receiver is configured to receive, using the one or more antennas, and process, using the signal processor, a data signal, the data signal comprising at least one data signal block, the data signal block comprising a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region to provide control data to the receiver and a payload region to provide payload data to the receiver, wherein payload data is allocated to the control region of the data signal block, wherein the control data is provided in a downlink control information, DCI, message associated with the payload data, wherein the payload data is not part of the DCI message but is located at different parts of the control region and is processed differently than the control data by using beamforming, wherein the DCI message indicates the one or more parts of the control region to which the payload data is allocated, wherein the DCI message includes first information informing the receiver how data allocated to the payload region is to be processed, and second information informing the receiver how the data at the different parts of the control region is to be processed, and wherein the second information includes information about a transmission scheme and/or a coding scheme and/or a modulation scheme used for forwarding the payload data to the receiver.
2. The receiver of claim 1, wherein resource elements of the data signal block are respectively defined by a symbol and a sub-carrier, and the payload data is allocated to one or more parts of the control region of the data signal block, a part of the control region comprising one or more resource elements.
3. The receiver of claim 1, wherein the control region is defined by one or more consecutive symbols at the beginning of the data signal block.
4. The receiver of claim 1, wherein the payload data allocated to the control region of the data signal block comprises delay critical user data.
5. The receiver of claim 1, wherein the control region of the data signal block comprises information indicating a receiver to which the payload data is directed.
6. The receiver of claim 5, wherein the information indicating the receiver to which the payload data is directed is separate from the control data or is part of the control data.
7. The receiver of claim 1, wherein the control data comprises data comprising control information for the receiver.
8. The receiver of claim 1, wherein the payload data is allocated to one of more consecutive parts of the control region that immediately follow the part of the control region to which the control data is allocated.
9. The receiver of claim 1, wherein the payload data is allocated to one or more separate parts of the control region that follow the part of the control region to which the control data is allocated.
10. The receiver of claim 1, wherein the payload data is allocated to one or more parts of the control region that are located between parts of the control region to which the control data of different receivers are allocated.
11. The receiver of claim 1, wherein the control data comprises control information for the receiver, and at least a part of the control data and the payload data are allocated to one or more common parts of the control region of the data signal block by a superposition.
12. A transmitter for a wireless communication system, the transmitter comprising: one or more antennas, and a signal processor, wherein the transmitter is configured to transmit, using the one or more antennas, a data signal, the data signal provided using the signal processor and comprising at least one data signal block, the data signal block comprising a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region to provide control data to a receiver and a payload region to provide payload data to the receiver, wherein payload data is allocated to the control region of the data signal block, wherein the control data is provided in a downlink control information, DCI, message associated with the payload data, wherein the payload data is not part of the DCI message but is located at different parts of the control region and is processed differently than the control data by using beamforming, wherein the DCI message indicates the one or more parts of the control region to which the payload data is allocated, wherein the DCI message includes first information informing the receiver how data allocated to the payload region is to be processed, and second information informing the receiver how the data at the different parts of the control region is to be processed, and wherein the second information includes information about a transmission scheme and/or a coding scheme and/or a modulation scheme used for forwarding the payload data to the receiver.
13. A wireless communication system, comprising: a receiver, wherein the receiver is configured to receive and process a data signal, the data signal comprising at least one data signal block, the data signal block comprising a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region to provide control data to the receiver and a payload region to provide payload data to the receiver, and wherein payload data is allocated to the control region of the data signal block; and a transmitter, wherein the transmitter is configured to transmit a data signal, the data signal comprising at least one data signal block, the data signal block comprising a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region to provide control data to a receiver and a payload region to provide payload data to the receiver, and wherein payload data is allocated to the control region of the data signal block, wherein the control data is provided in a downlink control information, DCI, message associated with the payload data, wherein the payload data is not part of the DCI message but is located at different parts of the control region and is processed differently than the control data by using beamforming, wherein the DCI message indicates the one or more parts of the control region to which the payload data is allocated, wherein the DCI message includes first information informing the receiver how data allocated to the payload region is to be processed, and second information informing the receiver how the data at the different parts of the control region is to be processed, and wherein the second information includes information about a transmission scheme and/or a coding scheme and/or a modulation scheme used for forwarding the payload data to the receiver.
14. A method, comprising: providing for a receiver of a wireless communication system a data signal, the data signal comprising at least one data signal block, the data signal block comprising a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region to provide control data to the receiver and a payload region to provide payload data to the receiver, wherein payload data is allocated to the control region of the data signal block, wherein the control data is provided in a downlink control information, DCI, message associated with the payload data, wherein the payload data is not part of the DCI message but is located at different parts of the control region and is processed differently than the control data by using beamforming, wherein the DCI message indicates the one or more parts of the control region to which the payload data is allocated, wherein the DCI message includes first information informing the receiver how data allocated to the payload region is to be processed, and second information informing the receiver how the data at the different parts of the control region is to be processed, and wherein the second information includes information about a transmission scheme and/or a coding scheme and/or a modulation scheme used for forwarding the payload data to the receiver.
15. The method of claim 14, comprising: receiving and processing the data signal by the receiver, and/or generating and transmitting the data signal by a transmitter of the wireless communication system.
16. A non-transitory digital storage medium having a computer program stored thereon to perform the method comprising: providing for a receiver of a wireless communication system a data signal, the data signal comprising at least one data signal block, the data signal block comprising a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region to provide control data to the receiver and a payload region to provide payload data to the receiver, wherein payload data is allocated to the control region of the data signal block, wherein the control data is provided in a downlink control information, DCI, message associated with the payload data, wherein the payload data is not part of the DCI message but is located at different parts of the control region and is processed differently than the control data by using beamforming, wherein the DCI message indicates the one or more parts of the control region to which the payload data is allocated, wherein the DCI message includes first information informing the receiver how data allocated to the payload region is to be processed, and second information informing the receiver how the data at the different parts of the control region is to be processed, and wherein the second information includes information about a transmission scheme and/or a coding scheme and/or a modulation scheme used for forwarding the payload data to the receiver when said computer program is run by a computer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present invention will be detailed subsequently referring to the appended drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
(17) In the following, advantageous embodiments of the present invention will be described in further detail with reference to the enclosed drawings in which elements having the same or similar function are referenced by the same reference signs.
(18) A data transmission in a wireless communication system, like an OFDMA system as depicted in
(19) In
(20) The control data included in the PDCCH is also referred to as PDCCH payload. The integrity of the PDCCH payload is ensured by a cyclic redundancy check (CRC).
(21) Depending on the cell configuration in the wireless communication network the control region 114 may include the 1.sup.st, 2.sup.nd and 3.sup.rd symbols of the subframe. During this time, in accordance with conventional approaches, no user payload data, also referred to as downlink (DL) data, is sent. In accordance with other embodiments, the control region may include more than three symbols, e.g., four symbols are possible for system bandwidths below 10 physical resource blocks (1.4 MHz).
(22) The PDCCH is divided into channel control elements (CCE). Each CCE has nine resource element groups (REG) and each REG includes four consecutive resource elements (RE). The number of CCEs of the PDCCH is referred to as the CCE aggregation level that may be 1, 2, 4 or 8. The following table summarizes examples of possible PDCCH formats, in terms of aggregation levels, and indicates the corresponding number of resource element groups and PDCCH bits.
(23) TABLE-US-00001 PDCCH formats. PDCCH Number of Number Number of format CCEs (n) of REGs PDCCH bits 0 1 9 72 1 2 18 144 2 4 36 288 3 8 72 576
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(25) For example, when considering the 10 MHz bandwidth system as indicated in the table of
(26) In accordance with the inventive approach, rather than limiting the control region to the transmission of control information only, payload data for the user may also be sent during the time the control information is transmitted to the UE, i.e., payload data is also mapped into the control region of the subframe. As indicated above, there are scenarios in with which the latency to provide user data to a UE needs to be reduced. For example, delay critical data needs to be transmitted to the user with a low latency and, advantageously, also with a substantially constant bit rate. However, when there is no transmission of user data in the control region, there is a delay in the transmission of the user data, and the data rate provided to the user over the subframe varies, which is also referred to as downlink throughput jitter. The inventive approach allowing to allocate user payload data to the control region reduces the delay for the transmission of delay critical data to the UE and/or reduces the downlink throughput jitter as bursts of payload data are now transmitted during the entire subframe, i.e., also within the control region.
(27) In accordance with the inventive approach, the resources in the control region, e.g. the resource elements, may be used for transmitting payload data to the user, for example by allocating such payload data to resource elements in the control region that are not used by the reference signals (RS) or the control information (PCFICH, PHICH, PDCCH). In other examples, the user payload data may be part of the PDCCH and resources for transmitting the user payload data may be made available by extending the PDCCH length from one symbol to two or three symbols.
(28) In accordance with embodiments of the present invention, the additional payload data may be allocated to resource elements in the control region not used for transmitting control information, for example in areas or parts of the control region in which resource elements have been freed. In accordance with other embodiments, the payload data for the UE may be included into the PDCCH. The control data is also referred to as downlink control information (DCI).
(29) In accordance with the inventive approach, the DCI message 117 of
(30) The DCI message 117 includes the additional 65 to 570 bits which are used to define user payload data. For example, when considering a system having a 10 MHz bandwidth (see the table in
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(32) In the embodiments described with reference to
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(34) Thus, in accordance with the embodiment of
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(36) With regard to the DCI message 123′ of
(37) In accordance with the embodiment of
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(39) In the following, another embodiment of the inventive approach will be described in accordance with which unused CCEs within the control region of the data signal block are used as data channel, for example as a PDSCH, to transmit user payload data within the control region.
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(41) In accordance with further embodiments, the unused CCEs may also be CCEs that are within the PDCCH search space of a plurality of UE, as is also shown in
(42) In accordance with another embodiment, a bitmap may be used to allocate empty CCEs for the downlink user data in the control region so as to allow for a flexible allocation of the resources/resource elements. In a system having a bandwidth of 20 MHz and a CFI of 3 (see
(43) In the embodiments described so far, the user payload data to be transmitted to the low latency UE in the control region of the data signal block is allocated to resource elements, physical resource blocks or CCEs provided in addition to respective resources used for allocating the DCI message or is transmitted as a part of the DCI message. In accordance with other examples, the payload data may be provided on top of the control channel elements using superposition, for example in the LTE standard by applying a downlink multi-user superposition transmission (MUST), for example on the basis of a hierarchical modulation. Alternative superposition techniques such as resource spread multiple access (RSMA) as described, e.g., in 3GPP TDOC R1-163510, sparse code multiple access (SCMA) as described, e.g. in 3GPP TDOC R1-162153, or non-orthogonal multiple access (NOMA) as described, e.g., in 3GPP TDOC R1-163111, may be used. One or more resource elements, physical resource blocks or CCEs allocated to control information, like PDCCH, PCFICH, PHICH may have provided on top thereon the user payload data to be transmitted to the UE within the control region.
(44) The additional information on top of the control information may be seen by a UE as additional noise when it comes to decoding the information provided to the UE. In accordance with embodiments, it may be that UE at the cell edge, due to the additional information on top of the control information seen as noise, may not be in a position to decode the legacy PDCCH information so that it may be desired to allow the superposition of additional low latency data only for users which are at the center of the cell as this ensures that the PDCCH may be successfully decoded. The additional data may be superposed onto the PDCCH information using QAM, for example a QPSK in 16-QAM as shown in
(45) In accordance with embodiments, the superposition of additional information may be signaled to the user using the DCI message, for example a DCI message as shown in
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(47) In accordance with further embodiments, the approach described above with reference to
(48) Embodiments of the present invention may be implemented in a wireless communication system as depicted in
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(50) The above described inventive approach may be implemented in various embodiments. For example, payload data may be transmitted in a wireless communication system with a reduced latency by placing payload data in the control region. In accordance with embodiments a nearly constant low latency downlink throughput may be achieved by placing payload data, for example, in a physical downlink control channel (PDCCH) of an OFDMA-subframe. In accordance with other embodiments a single packet may be transmitted to a user during one slot (see
(51) Although some aspects of the described concept have been described in the context of an apparatus, it is clear that these aspects also represent a description of the corresponding method, where a block or a device corresponds to a method step or a feature of a method step. Analogously, aspects described in the context of a method step also represent a description of a corresponding block or item or feature of a corresponding apparatus.
(52) Depending on certain implementation requirements, embodiments of the invention may be implemented in hardware or in software. The implementation may be performed using a digital storage medium, for example a floppy disk, a DVD, a Blue-Ray, a CD, a ROM, a PROM, an EPROM, an EEPROM or a FLASH memory, having electronically readable control signals stored thereon, which cooperate (or are capable of cooperating) with a programmable computer system such that the respective method is performed. Therefore, the digital storage medium may be computer readable.
(53) Some embodiments according to the invention comprise a data carrier having electronically readable control signals, which are capable of cooperating with a programmable computer system, such that one of the methods described herein is performed.
(54) Generally, embodiments of the present invention may be implemented as a computer program product with a program code, the program code being operative for performing one of the methods when the computer program product runs on a computer. The program code may for example be stored on a machine readable carrier.
(55) Other embodiments comprise the computer program for performing one of the methods described herein, stored on a machine readable carrier. In other words, an embodiment of the inventive method is, therefore, a computer program having a program code for performing one of the methods described herein, when the computer program runs on a computer.
(56) A further embodiment of the inventive methods is, therefore, a data carrier (or a digital storage medium, or a computer-readable medium) comprising, recorded thereon, the computer program for performing one of the methods described herein. A further embodiment of the inventive method is, therefore, a data stream or a sequence of signals representing the computer program for performing one of the methods described herein. The data stream or the sequence of signals may for example be configured to be transferred via a data communication connection, for example via the Internet. A further embodiment comprises a processing means, for example a computer, or a programmable logic device, configured to or adapted to perform one of the methods described herein. A further embodiment comprises a computer having installed thereon the computer program for performing one of the methods described herein.
(57) In some embodiments, a programmable logic device (for example a field programmable gate array) may be used to perform some or all of the functionalities of the methods described herein. In some embodiments, a field programmable gate array may cooperate with a microprocessor in order to perform one of the methods described herein. Generally, the methods are advantageously performed by any hardware apparatus.
(58) Further embodiments are now described:
(59) A 1.sup.st embodiment provides a receiver (UE.sub.1, UE.sub.2, RX),
(60) wherein the receiver (UE.sub.1, UE.sub.2, RX) is configured to receive and process a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(61) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to the receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), and
(62) wherein payload data is allocated to the control region (114) of the data signal block.
(63) A 2.sup.nd embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 1.sup.st embodiment, wherein resource elements of the data signal block are respectively defined by a symbol and a sub-carrier, and
(64) the payload data is allocated to one or more parts of the control region (114) of the data signal block, a part of the control region (114) including one or more resource elements.
(65) A 3.sup.rd embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 1.sup.st embodiment or the 2.sup.nd embodiment, wherein the control region (114) is defined by one or more consecutive symbols at the beginning of the data signal block.
(66) A 4.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of one of the preceding embodiments, wherein the payload data allocated to the control region (114) of the data signal block comprises delay critical user data.
(67) A 5.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of one of the preceding embodiments, wherein the control region (114) of the data signal block includes information indicating a receiver (UE.sub.1, UE.sub.2, RX) to which the payload data is directed.
(68) A 6.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 5.sup.th embodiment, wherein the information indicating the receiver (UE.sub.1, UE.sub.2, RX) to which the payload data is separate from the control data (117, 117′, 123, 123′, 123″, 133, 143) or is part of the control data (117, 117′, 123, 123′, 123″, 133, 143).
(69) A 7.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 5.sup.th embodiment or the 6.sup.th embodiment, wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes data comprising control information for the receiver (UE.sub.1, UE.sub.2, RX).
(70) An 8.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 5.sup.th embodiment or the 6.sup.th embodiment, wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) indicates that the control data includes the payload data.
(71) A 9.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 8.sup.th embodiment, wherein the payload data is allocated to one of more consecutive parts of the control region (114) that immediately follow the part of the control region (114) to which the control data (117, 117′, 123, 123′, 123″, 133, 143) is allocated.
(72) A 10.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 8.sup.th embodiment, wherein the payload data is allocated to one or more separate parts of the control region (114) that follow the part of the control region (114) to which the control data (117, 117′, 123, 123′, 123″, 133, 143) is allocated.
(73) An 11.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 9.sup.th embodiment, wherein the payload data is allocated to one or more parts of the control region (114) that are located between parts of the control region (114) to which the control data (117, 117′, 123, 123′, 123″, 133, 143) of different receivers (UE.sub.1, UE.sub.2, RX) are allocated.
(74) A 12.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of one of the 8.sup.th embodiment to the 11.sup.th embodiment, wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) indicates the one or more parts of the control region (114) to which the payload data is allocated, and comprises information for processing the payload data at the receiver (UE.sub.1, UE.sub.2, RX).
(75) A 13.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 5.sup.th embodiment or the 6.sup.th embodiment, wherein
(76) the control data (117, 117′, 123, 123′, 123″, 133, 143) comprises control information for the receiver (UE.sub.1, UE.sub.2, RX), and
(77) at least a part of the control data (117, 117′, 123, 123′, 123″, 133, 143) and the payload data are allocated to one or more common parts of the control region (114) of the data signal block by a superposition.
(78) A 14.sup.th embodiment provides a receiver (UE.sub.1, UE.sub.2, RX),
(79) wherein the receiver (UE.sub.1, UE.sub.2, RX) is configured to receive and process a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(80) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to the receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX),
(81) wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes first control information and second control information, and
(82) wherein the first control information and the second control information are allocated to one or more common parts of the control region (114) of the data signal block by a superposition.
(83) A 15.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of one of the preceding embodiment, wherein
(84) the receiver (UE.sub.1, UE.sub.2, RX) is a mobile terminal in an OFDM or an OFDMA wireless communication system, and
(85) the data signal is an OFDM signal provided by a transmitter in the wireless communication system, the OFDM signal having a plurality of frames, the frame including a plurality of sub-frames, wherein the data signal block is a sub-frame of the OFDM signal,
(86) wherein the control region (114) comprises a plurality of resource elements of the first symbol of the sub-frame.
(87) A 16.sup.th embodiment provides the receiver (UE.sub.1, UE.sub.2, RX) of the 15.sup.th embodiment, wherein the control region (114) further comprises a plurality of resource elements of one or more consecutive symbols of the sub-frame immediately following the first symbol of the sub-frame.
(88) A 17.sup.th embodiment provides a data signal, comprising:
(89) at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(90) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), and
(91) wherein payload data is allocated to the control region (114) of the data signal block.
(92) An 18.sup.th embodiment provides a data signal, comprising:
(93) at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(94) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX),
(95) wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes first control information and second control information, and
(96) wherein the first control information and the second control information are allocated to one or more common parts of the control region (114) of the data signal block by a superposition.
(97) A 19.sup.th embodiment provides a transmitter (TX, eNB.sub.1-eNB.sub.5, 300),
(98) wherein the transmitter (TX, eNB.sub.1-eNB.sub.5, 300) is configured to transmit a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(99) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), and
(100) wherein payload data is allocated to the control region (114) of the data signal block.
(101) A 20.sup.th embodiment provides a transmitter (TX, eNB.sub.1-eNB.sub.5, 300),
(102) wherein the transmitter (TX, eNB.sub.1-eNB.sub.5, 300) is configured to transmit a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(103) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX),
(104) wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes first control information and second control information, and
(105) wherein the first control information and the second control information are allocated to one or more common parts of the control region (114) of the data signal block by a superposition.
(106) A 21.sup.st embodiment provides a wireless communication system, comprising:
(107) a receiver (UE.sub.1, UE.sub.2, RX) as in one of the 1.sup.st embodiment to the 18.sup.th embodiment; and
(108) a transmitter (TX, eNB.sub.1-eNB.sub.5, 300) as in the 19.sup.th embodiment or the 20.sup.th embodiment.
(109) A 22.sup.nd embodiment provides a method, comprising:
(110) receiving and processing, by a receiver (UE.sub.1, UE.sub.2, RX), a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(111) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to the receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), and
(112) wherein payload data is allocated to the control region (114) of the data signal block.
(113) A 23.sup.rd embodiment provides a method, comprising:
(114) receiving and processing, by a receiver (UE.sub.1, UE.sub.2, RX), a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(115) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to the receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX),
(116) wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes first control information and second control information, and
(117) wherein the first control information and the second control information are allocated to one or more common parts of the control region (114) of the data signal block by a superposition.
(118) A 24.sup.th embodiment provides a method, comprising:
(119) transmitting, by a transmitter (TX, eNB.sub.1-eNB.sub.5, 300), a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(120) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), and
(121) wherein payload data is allocated to the control region (114) of the data signal block.
(122) A 25.sup.th embodiment provides a method, comprising:
(123) transmitting, by a transmitter (TX, eNB.sub.1-eNB.sub.5, 300), a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain,
(124) wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX),
(125) wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes first control information and second control information, and
(126) wherein the first control information and the second control information are allocated to one or more common parts of the control region (114) of the data signal block by a superposition.
(127) A 26.sup.th embodiment provides a method, comprising:
(128) transmitting, by a transmitter (TX, eNB.sub.1-eNB.sub.5, 300) of a wireless communication device, a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), and wherein payload data is allocated to the control region (114) of the data signal block;
(129) receiving, at a mobile terminal of the wireless communication system, the data signal; and
(130) processing, by the mobile terminal, the symbols of the data signal block.
(131) A 27.sup.th embodiment provides a method, comprising:
(132) transmitting, by a transmitter (TX, eNB.sub.1-eNB.sub.5, 300) of a wireless communication device, a data signal, the data signal comprising at least one data signal block, the data signal block having a number of symbols in the time domain and a number of sub-carriers in the frequency domain, wherein the data signal block comprises a control region (114) to provide control data (117, 117′, 123, 123′, 123″, 133, 143) to a receiver (UE.sub.1, UE.sub.2, RX) and a payload region (118) to provide payload data to the receiver (UE.sub.1, UE.sub.2, RX), wherein the control data (117, 117′, 123, 123′, 123″, 133, 143) includes first control information and second control information, and wherein the first control information and the second control information are allocated to one or more common parts of the control region (114) of the data signal block by a superposition;
(133) receiving, at a mobile terminal of the wireless communication system, the data signal; and
(134) processing, by the mobile terminal, the symbols of the data signal block.
(135) A 28.sup.th embodiment provides a non-transitory computer program product comprising a computer readable medium storing instructions which, when executed on a computer, carry out the method of one of the 22.sup.nd embodiment to the 27.sup.th embodiment.
(136) While this invention has been described in terms of several embodiments, there are alterations, permutations, and equivalents which fall within the scope of this invention. It should also be noted that there are many alternative ways of implementing the methods and compositions of the present invention. It is therefore intended that the following appended claims be interpreted as including all such alterations, permutations and equivalents as fall within the true spirit and scope of the present invention.