Signal sending method, device, and system
10651966 ยท 2020-05-12
Assignee
Inventors
Cpc classification
H04L5/0053
ELECTRICITY
H04L5/0044
ELECTRICITY
H04L27/2636
ELECTRICITY
International classification
H04L1/00
ELECTRICITY
Abstract
Embodiments of the present application provide a signal sending method, a device, and a system. A base station modulates, by using a first modulation scheme, signaling carried in a control channel, and modulates, by using a second modulation scheme, data carried in a traffic channel; and the base station sends, to UE, a signal obtained after modulation. In this way, the base station can independently select a modulation scheme for the control channel and the traffic channel, avoiding a case in which a modulation scheme used by the control channel and a modulation scheme used by the traffic channel must be the same, so that the base station can flexibly select a channel modulation scheme.
Claims
1. A signal sending method, comprising: modulating, by a base station by using a first modulation scheme, signaling carried in a control channel, and modulating, by using a second modulation scheme, data carried in a traffic channel, wherein the first modulation scheme is a single-carrier modulation scheme; using, by the base station, a multiple access technique of Time Division Multiple Access (TDMA) to combine a first signal and a third signal of a user equipment (UE) and a second signal of another UE; and sending, by the base station, a signal obtained after modulation, wherein the control channel and the traffic channel of each of the first, second and third signals are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing, wherein the signal sent by the base station comprises the first signal, the second signal and the third signal.
2. The method according to claim 1, wherein, in each of the first, second, and third signal: the control channel is ahead of the traffic channel in terms of time; header information is carried in a start time period of the control channel; and the header information comprises at least one of the following information: the first modulation scheme, the second modulation scheme, a first demodulation scheme, a second demodulation scheme, a quantity of symbols comprised in the control channel and a quantity of symbols comprised in the traffic channel, wherein the first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
3. The method according to claim 2, wherein when the UE belongs to a first UE group, the header information further comprises group information of the first UE group to which the UE belongs for indicating a start time of a search section of the first UE group.
4. The method according to claim 1, wherein the second modulation scheme is an orthogonal frequency division multiplexing (OFDM) modulation scheme.
5. A signal receiving method, comprising: determining, by a user equipment (UE), a first demodulation scheme and a second demodulation scheme, wherein the first modulation scheme is a single-carrier modulation scheme; receiving, by the UE, a signal from a base station; demodulating, by the UE, the signal by using the first demodulation scheme and the second demodulation scheme to obtain signaling carried in a control channel and data carried in a traffic channel, wherein the control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing; wherein when the signal further comprises a second signal of another UE, and before demodulating, by the UE, the signal by using the first demodulation scheme and the second demodulation scheme, the method further comprises: using, by the UE, a multiple access manner of Time Division Multiple Access (TDMA) to obtain, from the signal and the second signal, a third signal of the UE; and wherein demodulating, by the UE, the signal of the UE by using the first demodulation scheme and the second demodulation scheme comprises: demodulating, by the UE, the third signal of the UE by using the first demodulation scheme and the second demodulation scheme.
6. The method according to claim 5, wherein: the control channel is ahead of the traffic channel in terms of time; header information is carried in a start time period of the control channel; and the header information comprises at least one of the following information: a first modulation scheme, a second modulation scheme, the first demodulation scheme, the second demodulation scheme, a quantity of symbols comprised in the control channel and a quantity of symbols comprised in the traffic channel, wherein the first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
7. The method according to claim 6, wherein when the UE belongs to a first UE group, the header information further comprises group information of the first UE group to which the UE belongs for indicating a start time of a search section of the first UE group.
8. The method according to claim 5, wherein the second modulation scheme is an orthogonal frequency division multiplexing (OFDM) modulation scheme.
9. A device, comprising: a processor; and a storage medium coupled to the processor and for storing programming instructions which, when executed by the processor, cause the device to: modulate, by using a first modulation scheme, signaling carried in a control channel, and modulate, by using a second modulation scheme, data carried in a traffic channel, wherein the first modulation scheme is a single-carrier modulation scheme, use a multiple access technique of Time Division Multiple Access (TDMA) to combine a first signal and a third signal of a user equipment (UE) and a second signal of another UE, and send a signal obtained after modulation, wherein the control channel and the traffic channel of each of the first, second, and third signals are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing, and wherein the signal comprises the first signal, the second signal, and the third signal.
10. The device according to claim 9, wherein, in each of the first, second, and third signal: the control channel is ahead of the traffic channel in terms of time; header information is carried in a start time period of the control channel; and the header information comprises at least one of the following information: the first modulation scheme, the second modulation scheme, a first demodulation scheme, a second demodulation scheme, a quantity of symbols comprised in the control channel and a quantity of symbols comprised in the traffic channel, wherein the first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
11. The base station according to claim 10, wherein when the UE belongs to a first UE group, the header information further comprises group information of the first UE group to which the UE belongs for indicating a start time of a search section of the first UE group.
12. The base station according to claim 9, wherein the second modulation scheme is an orthogonal frequency division multiplexing (OFDM) modulation scheme.
13. A device, comprising: a processor; and a storage medium coupled to the processor and for storing programming instructions which, when executed by the processor, cause the device to: determine a first demodulation scheme and a second demodulation scheme, wherein the first modulation scheme is a single-carrier modulation scheme, receive a signal from a base station, demodulate the signal by using the first demodulation scheme and the second demodulation scheme to obtain signaling carried in a control channel and data carried in a traffic channel, wherein the control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing, wherein when the signal further comprises a second signal of another UE, and before demodulating the signal by using the first demodulation scheme and the second demodulation scheme, the programming instructions, when executed by the processor, cause the device to: use a multiple access manner of Time Division Multiple Access (TDMA) to obtain, from the signal and the second signal, a third signal, and wherein to demodulate the signal, the programming instructions, when executed by the processor, cause the device to demodulate the third signal by using the first demodulation scheme and the second demodulation scheme.
14. The device according to claim 13, wherein: the control channel is ahead of the traffic channel in terms of time; header information is carried in a start time period of the control channel; and the header information comprises at least one of the following information: a first modulation scheme, a second modulation scheme, the first demodulation scheme, the second demodulation scheme, and a quantity of symbols comprised in the control channel and a quantity of symbols comprised in the traffic channel, wherein the first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
15. The device according to claim 14, wherein when the device belongs to a first user equipment (UE) group, the header information further comprises group information of the first UE group to which the UE belongs for indicating a start time of a search section of the first UE group.
16. The device according to claim 13, wherein the second modulation scheme is an orthogonal frequency division multiplexing (OFDM) modulation scheme.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) To describe the technical solutions in the embodiments of the present application. Apparently, the accompanying drawings in the following description show some embodiments of the present application, and persons of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
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DESCRIPTION OF EMBODIMENTS
(15) To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the following clearly describes the technical solutions in the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application. Apparently, the described embodiments are some but not all of the embodiments of the present application. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application.
(16)
(17) In the prior art, when performing modulation for the logical channel, the base station uses a same modulation scheme for all logical channels, for example, uses an OFDM modulation scheme or a CDMA modulation scheme, and does not distinguish between the control channel and the traffic channel. For example, to improve a data service rate of a user, the traffic channel needs to use the OFDM modulation scheme. In this case, the control channel also needs to use the OFDM modulation scheme, and no other modulation scheme can be selected for the control channel. For another example, to improve accuracy of receiving control signaling by the UE, the control channel needs to use the CDMA modulation scheme. In this case, the traffic channel also needs to use the CDMA modulation scheme, and no other modulation scheme can be selected for the traffic channel. Therefore, in the prior art, there is a problem that a channel modulation scheme is not flexible enough.
(18)
(19) Step 101. Abase station modulates, by using a first modulation scheme, signaling carried in a control channel, and modulates, by using a second modulation scheme, data carried in a traffic channel.
(20) The control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing.
(21) It should be noted that the modulation in the present application refers to a process of processing information (for example, signaling or data) and loading the information onto a carrier, so that the information becomes a form that is suitable for channel transmission. For example, quadrature phase shift keying QPSK) modulation, OFDM modulation, and Gaussian minimum frequency shift keying (GMSK, Gaussian Filtered Minimum Shift Keying).
(22) Step 102. The base station sends, to UE, a signal obtained after modulation.
(23) In this embodiment, the base station modulates, by using the first modulation scheme, the signaling carried in the control channel, and modulates, by using the second modulation scheme, the data carried in the traffic channel; and the base station sends, to the UE, the signal obtained after modulation. In this way, the base station can independently select a modulation scheme for the control channel and the traffic channel, avoiding a case in which a modulation scheme used by the control channel and a modulation scheme used by the traffic channel must be the same, so that the base station can flexibly select a channel modulation scheme.
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(25) Step 201. UE determines a first demodulation scheme and a second demodulation scheme.
(26) Step 202. The UE receives a signal from a base station.
(27) Step 203. The UE demodulates the signal by using the first demodulation scheme and the second demodulation scheme, so as to obtain signaling carried in a control channel and data carried in a traffic channel.
(28) The control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing.
(29) It should be noted that, the first demodulation scheme is a demodulation scheme corresponding to a first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to a second modulation scheme.
(30) In this embodiment, the UE demodulates the signal by using the first demodulation scheme and the second demodulation scheme, so as to obtain the signaling carried in the control channel and the data carried in the traffic channel. The control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing. Therefore, the UE can demodulate the signal obtained after the base station modulates, by using the first modulation scheme, the signaling carried in the control channel, and modulates, by using the second modulation scheme, the data carried in the traffic channel, so as to obtain the signaling carried in the control channel and the data carried in the traffic channel.
(31)
(32) Step 301. Abase station modulates, by using a first modulation scheme, signaling carried in a control channel, and modulates, by using a second modulation scheme, data carried in a traffic channel.
(33) The control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing.
(34) Optionally, the first modulation scheme may be a single-carrier (SC) modulation scheme, and the second modulation scheme may be an OFDM modulation scheme.
(35) For example,
(36) Optionally, a length of time in
(37) Optionally, the control channel includes at least one of the following channels:
(38) a broadcast control channel, a paging control channel, a common control channel, and a dedicated control channel.
(39) In an existing LTE system, the OFDM modulation scheme is uniformly used in a downlink direction. Using the OFDM modulation scheme causes a high peak to average power ratio (PAPR), and relatively large power back-off. Therefore, there is a problem of coverage limitation for the control channel. According to the technical solution provided in this embodiment in
(40) It should be noted that, to meet another requirement, an appropriate modulation scheme may be separately set for the control channel and the traffic channel according to a requirement. For example, when a case in which a signaling transmission rate of the control channel is relatively high and coverage of the traffic channel is relatively large needs to be met, the OFDM modulation scheme may be used for the control channel, and the single-carrier modulation scheme may be used for the traffic channel.
(41) Optionally, the control channel is ahead of the traffic channel in terms of time, header information is carried in a start time period of the control channel, and the header information includes at least one of the following information:
(42) the first modulation scheme, the second modulation scheme, a first demodulation scheme, a second demodulation scheme, a quantity of symbols included in the control channel and a quantity of symbols included in the traffic channel.
(43) The first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(44) For example, the header information may include: the quantity of symbols of the control channel is N, the quantity of symbols of the traffic channel is M, and a modulation scheme of the traffic channel is OFDM modulation, where M and N are positive integers.
(45) Optionally, in
(46) Optionally, when the control channel and the traffic channel are multiplexed using time division multiplexing, a time guard interval may be set between the control channel and the traffic channel.
(47) Optionally, the base station may not send any information in the time guard interval, or may send a specific sequence within the time guard interval.
(48) Optionally, when the time guard interval is set between the control channel and the traffic channel, the UE may determine an end time of the control channel and a start time of the traffic channel when the time guard interval is detected.
(49) Optionally, when the control channel carries the header information, the UE may determine the start time of the traffic channel by using the quantity of symbols of the control channel in the header information.
(50) Optionally, in this embodiment, the base station may use a multiple access manner of Code Division Multiple Access (CDMA) or Time Division Multiple Access (TDMA) for the control channel.
(51) It should be noted that, the multiple access in the present application means that differences in signal characteristics (for example, a signal sending frequency, a signal emergence time, or a specific waveform of a signal) sent for different UEs are used to distinguish different users. For example, Frequency Division Multiple Access (FDMA), TDMA, CDMA, and Space Division Multiple Access (SDMA).
(52) Optionally, the header information may further include group information of a first UE group to which the UE belongs, and the group information is used to indicate a start time of a search section of the first UE group.
(53)
(54) As shown in
(55) In
(56) It should be noted that, the header information may not include the group information, and the UE may directly determine the start time of the search section of the group by using the beam ID.
(57)
(58) Optionally, the signaling carried in the control channel includes signaling of the UE and system message signaling, and the modulating, by a base station by using a first modulation scheme, signaling carried in a control channel includes:
(59) classifying, by the base station, the signaling of the UE and the system message signaling into two groups, wherein the two groups, one group A includes the signaling of the UE, and the other group B includes the system message signaling,
(60) for the group A, the base station performs an N point DFT on signaling in the group A, and
(61) for the group B, the base station performs an M point DFT on signaling in the group B; and
(62) mapping, to a system resource of K points, M+N points obtained after the DFT transform performed on the group A and the DFT transform performed on the group B, and then performing a K point IFFT, so as to obtain an SC symbol corresponding to the group A and an SC symbol corresponding to the group B, where
(63) M, N, and K are positive integers, and a sum of M and N is less than or equal to K.
(64)
(65) Alternatively, the modulating, by a base station by using a first modulation scheme, signaling carried in a control channel includes:
(66) classifying, by the base station, the signaling of the UE and the system message signaling into at least one group, where each group includes at least a part of the signaling of the UE and at least a part of the system message signaling; and
(67) performing, by the base station, multiplexing and interleaving on signaling in each group, performing an N+M point discrete Fourier transform DFT on the interleaved signaling, and mapping, to a system resource of K points, M+N points obtained after the DFT transform, and then performing a K point inverse fast Fourier transform IFFT, so as to obtain a single carrier SC symbol corresponding to each group, where
(68) M, N, and K are positive integers, and a sum of M and N is less than or equal to K.
(69)
(70) It can be learned that a difference between
(71) Step 302. The base station sends, to UE, a signal obtained after modulation.
(72) Step 303. The UE demodulates the signal by using a first demodulation scheme and a second demodulation scheme, so as to obtain the signaling carried in the control channel and the data carried in the traffic channel.
(73) It should be noted that, before step 303, the method further includes: determining, by the UE, the first demodulation scheme and the second demodulation scheme.
(74) Optionally, the UE may receive a notification message sent by the base station, and determine the first demodulation scheme and the second demodulation scheme according to the notification message.
(75) For example, after the notification message may indicate a current time, the base station modulates, by using the first modulation scheme, the signaling carried in the control channel, and modulates, by using the second modulation scheme, the data carried in the traffic channel.
(76) Alternatively, for another example, after the notification message may indicate a current time, the UE demodulates, by using the first demodulation scheme, the signaling carried in the control channel, and demodulates, by using the second demodulation scheme, the data carried in the traffic channel.
(77) Alternatively, for another example, after the notification message may indicate a current time, the base station modulates, by using the first modulation scheme, the signaling carried in the control channel, and the header information that is carried in the control channel and that is sent by the base station to the UE includes a modulation scheme of the traffic channel (that is, the second modulation scheme).
(78) The first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(79) Optionally, when the base station uses the multiple access manner of CDMA or TDMA for the control channel, before step 303, the method may further include: using, by the UE, the multiple access manner of Code Division Multiple Access CDMA or Time Division Multiple Access TDMA, so as to obtain, from the signal, a signal that belongs to the UE.
(80) Correspondingly, step 303 is specifically that the UE demodulates the signal of the UE by using the first demodulation scheme and the second demodulation scheme.
(81) It should be noted that step 303 corresponds to step 301. After referring to step 301 for specific content of step 303, persons skilled in the art can learn an implementation of step 303, and details are not described herein again.
(82) In this embodiment, the base station modulates, by using the first modulation scheme, the signaling carried in the control channel, and modulates, by using the second modulation scheme, the data carried in the traffic channel; and the base station sends, to the UE, a signal obtained after modulation. The UE demodulates the signal by using the first demodulation scheme and the second demodulation scheme, so as to obtain the signaling carried in the control channel and the data carried in the traffic channel. The first demodulation scheme is the demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is the demodulation scheme corresponding to the second modulation scheme, so that the base station can perform flexible modulation for different channels.
(83)
(84) Optionally, the control channel is ahead of the traffic channel in terms of time, header information is carried in a start time period of the control channel, and the header information includes at least one of the following information:
(85) the first modulation scheme, the second modulation scheme, a first demodulation scheme, a second demodulation scheme, a quantity of symbols included in the control channel and a quantity of symbols included in the traffic channel.
(86) The first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(87) Optionally, if the UE belongs to a first UE group, the header information further includes group information of the first UE group to which the UE belongs, and the group information is used to indicate a start time of a search section of the first UE group.
(88) Optionally, the first modulation scheme is a single-carrier modulation scheme, and the second modulation scheme is an orthogonal frequency division multiplexing OFDM modulation scheme.
(89) Optionally, the processing module 901 is further configured to use a multiple access manner of Code Division Multiple Access CDMA or Time Division Multiple Access TDMA for the control channel, so as to distinguish signaling of the UE from signaling of other UE.
(90) Optionally, the signaling carried in the control channel includes the signaling of the UE and system message signaling.
(91) That the processing module 901 modulates, by using the first modulation scheme, the signaling carried in the control channel specifically includes:
(92) classifying the signaling of the UE and the system message signaling into at least one group, where each group includes at least a part of the signaling of the UE and at least a part of the system message signaling; and
(93) performing multiplexing and interleaving on signaling in each group, performing an N+M point discrete Fourier transform DFT on the interleaved signaling, and mapping, to a system resource of K points, M+N points obtained after the DFT transform, and then performing a K point inverse fast Fourier transform IFFT, so as to obtain a single carrier SC symbol corresponding to each group, where
(94) M, N, and K are positive integers, and a sum of M and N is less than or equal to K.
(95) Alternatively, that the processing module 901 modulates, by using the first modulation scheme, the signaling carried in the control channel specifically includes:
(96) classifying the signaling of the UE and the system message signaling into two groups, where in the two groups, one group A includes the signaling of the UE, and the other group B includes the system message signaling,
(97) for the group A, the base station performs an N point DFT on signaling in the group A, and
(98) for the group B, the base station performs an M point DFT on signaling in the group B; and
(99) mapping, to a system resource of K points, M+N points obtained after the DFT transform performed on the group A and the DFT transform performed on the group B, and then performing a K point IFFT, so as to obtain an SC symbol corresponding to the group A and an SC symbol corresponding to the group B, where
(100) M, N, and K are positive integers, and a sum of M and N is less than or equal to K.
(101) Optionally, when the control channel and the traffic channel are multiplexed using time division multiplexing, a time guard interval is set between the control channel and the traffic channel.
(102) The base station in this embodiment may be configured to execute the method embodiment shown in
(103)
(104) The control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing, the first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(105) Optionally, the control channel is ahead of the traffic channel in terms of time, header information is carried in a start time period of the control channel, and the header information includes at least one of the following information:
(106) the first modulation scheme, the second modulation scheme, the first demodulation scheme, the second demodulation scheme, a quantity of symbols included in the control channel and a quantity of symbols included in the traffic channel.
(107) The first demodulation scheme is the demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is the demodulation scheme corresponding to the second modulation scheme.
(108) Optionally, if the UE belongs to a first UE group, the header information further includes group information of the first UE group to which the UE belongs, and the group information is used to indicate a start time of a search section of the first UE group.
(109) Optionally, the first modulation scheme is a single-carrier modulation scheme, and the second modulation scheme is an orthogonal frequency division multiplexing OFDM modulation scheme.
(110) Optionally, the processing module 1002 is further configured to use a multiple access manner of Code Division Multiple Access CDMA or Time Division Multiple Access TDMA, so as to obtain, from the signal, a signal that belongs to the UE.
(111) That the processing module 1002 demodulates the signal by using the first demodulation scheme and the second demodulation scheme specifically includes: demodulating the signal of the UE by using the first demodulation scheme and the second demodulation scheme.
(112) Optionally, when the control channel and the traffic channel are multiplexed using time division multiplexing, a time guard interval is set between the control channel and the traffic channel.
(113) The user equipment in this embodiment may be configured to execute the method embodiment shown in
(114) The present application further provides a system, including the base station according to Embodiment 1 of a base station and the UE according to Embodiment 1 of a user equipment.
(115) The system in this embodiment may be configured to execute the technical solutions in the method embodiment shown in
(116)
(117) Optionally, the control channel is ahead of the traffic channel in terms of time, header information is carried in a start time period of the control channel, and the header information includes at least one of the following information:
(118) the first modulation scheme, the second modulation scheme, a first demodulation scheme, a second demodulation scheme, a quantity of symbols included in the control channel and a quantity of symbols included in the traffic channel.
(119) The first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(120) Optionally, if the UE belongs to a first UE group, the header information further includes group information of the first UE group to which the UE belongs, and the group information is used to indicate a start time of a search section of the first UE group.
(121) Optionally, the first modulation scheme is a single-carrier modulation scheme, and the second modulation scheme is an orthogonal frequency division multiplexing OFDM modulation scheme.
(122) Optionally, the processor 1101 is further configured to use a multiple access manner of Code Division Multiple Access CDMA or Time Division Multiple Access TDMA for the control channel, so as to distinguish signaling of the UE from signaling of other UE.
(123) Optionally, the signaling carried in the control channel includes the signaling of the UE and system message signaling.
(124) That the processor 1101 modulates, by using the first modulation scheme, the signaling carried in the control channel specifically includes:
(125) classifying the signaling of the UE and the system message signaling into at least one group, where each group includes at least a part of the signaling of the UE and at least a part of the system message signaling; and
(126) performing multiplexing and interleaving on signaling in each group, performing an N+M point discrete Fourier transform. DFT on the interleaved signaling, and mapping, to a system resource of K points, M+N points obtained after the DFT transform, and then performing a K point inverse fast Fourier transform IFFT, so as to obtain a single carrier SC symbol corresponding to each group, where
(127) M, N, and K are positive integers, and a sum of M and N is less than or equal to K.
(128) Alternatively, that the processor 1101 modulates, by using the first modulation scheme, the signaling carried in the control channel specifically includes:
(129) classifying the signaling of the UE and the system message signaling into two groups, where in the two groups, one group A includes the signaling of the UE, and the other group B includes the system message signaling,
(130) for the group A, the base station performs an N point DFT on signaling in the group A, and
(131) for the group B, the base station performs an M point DFT on signaling in the group B; and
(132) mapping, to a system resource of K points, M+N points obtained after the DFT transform performed on the group A and the DFT transform performed on the group B, and then performing a K point IFFT, so as to obtain an SC symbol corresponding to the group A and an SC symbol corresponding to the group B, where
(133) M, N, and K are positive integers, and a sum of M and N is less than or equal to K.
(134) Optionally, when the control channel and the traffic channel are multiplexed using time division multiplexing, a time guard interval is set between the control channel and the traffic channel.
(135) The base station in this embodiment may be configured to execute the method embodiment shown in
(136)
(137) The control channel and the traffic channel are multiplexed using time division multiplexing, frequency division multiplexing, or space division multiplexing, the first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(138) Optionally, the control channel is ahead of the traffic channel in terms of time, header information is carried in a start time period of the control channel, and the header information includes at least one of the following information:
(139) the first modulation scheme, the second modulation scheme, the first demodulation scheme, the second demodulation scheme, a quantity of symbols included in the control channel and a quantity of symbols included in the traffic channel.
(140) The first demodulation scheme is a demodulation scheme corresponding to the first modulation scheme, and the second demodulation scheme is a demodulation scheme corresponding to the second modulation scheme.
(141) Optionally, if the UE belongs to a first UE group, the header information further includes group information of the first UE group to which the UE belongs, and the group information is used to indicate a start time of a search section of the first UE group.
(142) Optionally, the first modulation scheme is a single-carrier modulation scheme, and the second modulation scheme is an orthogonal frequency division multiplexing OFDM modulation scheme.
(143) Optionally, the processor 1202 is further configured to use a multiple access manner of Code Division Multiple Access CDMA or Time Division Multiple Access TDMA, so as to obtain, from the signal, a signal that belongs to the UE.
(144) That the processor 1202 demodulates the signal by using the first demodulation scheme and the second demodulation scheme specifically includes: demodulating the signal of the UE by using the first demodulation scheme and the second demodulation scheme.
(145) Optionally, when the control channel and the traffic channel are multiplexed using time division multiplexing, a time guard interval is set between the control channel and the traffic channel.
(146) The user equipment in this embodiment may be configured to execute the method embodiment shown in
(147) Persons of ordinary skill in the art may understand that all or some of the steps of the method embodiments may be implemented by a program instructing relevant hardware. The program may be stored in a computer-readable storage medium. When the program runs, the steps of the method embodiments are performed. The foregoing storage medium includes: any medium that can store program code, such as a ROM, a RAM, a magnetic disk, or an optical disc.
(148) Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present application, but not for limiting the present application. Although the present application is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some or all technical features thereof, without departing from the scope of the technical solutions of the embodiments of the present application.