Data transmission method and apparatus
11140017 · 2021-10-05
Assignee
Inventors
Cpc classification
H04B7/0456
ELECTRICITY
H04L27/34
ELECTRICITY
H04W72/23
ELECTRICITY
International classification
H04B7/0456
ELECTRICITY
H04L25/03
ELECTRICITY
Abstract
Embodiments of the present invention provide a data transmission method and apparatus, and the method includes: modulating to-be-sent information bits according to a lower order constellation diagram, and generating 4m lower order modulation symbols; multiplying a precoding matrix Q by a column vector including every four lower order modulation symbols in the 4m lower order modulation symbols, to obtain 4m to-be-sent higher order modulation symbols corresponding to a higher order constellation diagram; and respectively and correspondingly sending the 4m to-be-sent higher order modulation symbols on different carriers of two antennas. The to-be-sent higher order modulation symbols include some or all to-be-sent information bits. Therefore, the same signal can be simultaneously sent on different carriers of multiple antennas, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
Claims
1. A data transmission method, comprising: receiving, by two receive antennas, signals on two carriers, wherein a signal received by a first receive antenna on a first subcarrier is r.sub.11, a signal received by a second receive antenna on the first subcarrier is r.sub.21, a signal received by the first receive antenna on a second subcarrier is r.sub.12, and a signal received by the second receive antenna on the second subcarrier is r.sub.22, wherein the two receive antennas comprise the first receive antenna and the second receive antenna, and the two carriers comprise the first subcarrier and the second subcarrier; obtaining 4m estimated values of lower order modulation symbols after channel equalization is performed on [r.sub.11 r.sub.21 r.sub.12 r.sub.22]T, wherein m is an integer greater than or equal to 1; and demodulating the 4m estimated values of lower order modulation symbols according to a corresponding lower order constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
2. The method according to claim 1, wherein the lower order modulation symbols are quadrature phase shift keying (QPSK) modulation symbols or binary phase shift keying (BPSK) modulation symbols.
3. The method according to claim 1, wherein m is equal to 1, the 4m estimated values of lower order modulation symbols are respectively represented as ŝ.sub.0, ŝ.sub.1, ŝ.sub.2, and ŝ.sub.3, and
4. The method according to claim 3, wherein the lower order modulation symbols are binary phase shift keying (BPSK) symbols, the precoding matrix
5. The method according to claim 3, wherein the lower order modulation symbols are quadrature phase shift keying (QPSK) symbols, the precoding matrix
6. The method according to claim 3, wherein the lower order modulation symbols are quadrature phase shift keying (QPSK) symbols, the precoding matrix
7. A data transmission apparatus, comprising: a receiver deployed on a first receive antenna and a second receive antenna, and configured to receive signals on two carriers that comprise a first subcarrier and a second subcarrier, wherein a signal received by the first receive antenna on the first subcarrier is r.sub.11, a signal received by the second receive antenna on the first subcarrier is r.sub.21, a signal received by the first receive antenna on the second subcarrier is r.sub.12, and a signal received by the second receive antenna on the second subcarrier is r.sub.22; a channel equalizer, configured to obtain 4m estimated values of lower order modulation symbols after channel equalization is performed on [r.sub.11 r.sub.21 r.sub.12 r.sub.22]T, wherein m is an integer greater than or equal to 1; and a demodulator, configured to demodulate the 4m estimated values of lower order modulation symbols according to a corresponding lower order constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
8. The apparatus according to claim 7, wherein the lower order modulation symbol is a quadrature phase shift keying (QPSK) modulation symbol or a binary phase shift keying (BPSK) modulation symbol.
9. The apparatus according to claim 7, wherein m is equal to 1, the 4m estimated values of lower order modulation symbols are respectively represented as ŝ.sub.0, ŝ.sub.1, ŝ.sub.2, and ŝ.sub.3, and
10. The apparatus according to claim 9, wherein the lower order modulation symbols are binary phase shift keying (BPSK) symbols, the precoding matrix
11. The apparatus according to claim 9, wherein the lower order modulation symbols are quadrature phase shift keying (QPSK) symbols, the precoding matrix
12. The apparatus according to claim 9, wherein the lower order modulation symbols are quadrature phase shift keying (QPSK) symbols, the precoding matrix
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) To describe the technical solutions in the embodiments of the present invention more clearly, the following briefly describes the accompanying drawings required for describing the embodiments. Apparently, the accompanying drawings in the following description show merely some embodiments of the present invention, 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
(24) The following clearly describes the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are merely some but not all of the embodiments of the present invention. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
(25) In the specification, claims, and accompanying drawings of the present invention, the terms “first”, “second”, “third”, “fourth”, and so on (if existent) are intended to distinguish between similar objects but do not necessarily indicate a specific order or sequence. It should be understood that the data termed in such a way is interchangeable in proper circumstances so that the embodiments of the present invention described herein can be implemented in orders except the order illustrated or described herein. Moreover, the terms “include”, “contain” and any other variants are intended to cover the non-exclusive inclusion, for example, a process, method, system, product, or device that includes a list of steps or units is not necessarily limited to those units, but may include other units not expressly listed or inherent to such a process, method, system, product, or device.
(26) In the present invention, to improve transceiving performance of data transmission, both frequency diversity and space diversity are implemented by sending a signal.
(27) An application scenario of the present invention is shown in
(28) Specific embodiments are used below to describe in detail the technical solutions of the present invention. The following several specific embodiments may be combined with each other, and the same or similar concept or process may not be described repeatedly in some embodiments.
(29)
(30) S201. Modulate information bits according to a lower order constellation diagram, and generate 4m lower order modulation symbols, where
(31) m is an integer greater than or equal to 1.
(32) S202. Separately multiply a precoding matrix Q by a column vector including every four lower order modulation symbols in the 4m lower order modulation symbols, to obtain 4m higher order modulation symbols corresponding to a higher order constellation diagram.
(33) The precoding matrix Q is obtained according to the 4m lower order modulation symbols and the higher order constellation diagram.
(34) The higher order modulation symbols include some or all to-be-sent information bits.
(35) For example:
(36) For a quadrature phase shift keying (Quadrature Phase Shift Key, QPSK), the higher order modulation symbols include all the information bits. In a sending process, an information bit is sent on all transmit antennas and all subcarriers, for example, all symbols that are sent on a first subcarrier of a first transmit antenna, a second subcarrier of the first transmit antenna, a first subcarrier of a second transmit antenna, and a second subcarrier of the second transmit antenna include information about an information bit 1.
(37) For an SQPSK, the higher order modulation symbols include half of the to-be-sent information bits. In a sending process, one information bit is sent on one subcarrier of all transmit antennas. If four information bits are sent, both a first subcarrier of a first transmit antenna and a second subcarrier of a second transmit antenna include information about an information bit 1 and an information bit 2, and both a second subcarrier of the first transmit antenna and a first subcarrier of the second transmit antenna include information about an information bit 3 and an information bit 4.
(38) S203: Respectively send the 4m higher order modulation symbols on different carriers of two antennas.
(39) The 4m higher order modulation symbols are classified into four types, a 4(i−1)+1.sup.th higher order modulation symbol is a first higher order modulation symbol, a 4(i−1)+2.sup.th higher order modulation symbol is a second higher order modulation symbol, a 4(i−1)+3.sup.th higher order modulation symbol is a third higher order modulation symbol, and a 4(i−1)+4.sup.th higher order modulation symbol is a fourth higher order modulation symbol, where 1≤i≤l, and i is an integer.
(40) Specifically, the first higher order modulation symbol is sent on a first subcarrier of a first transmit antenna; the second higher order modulation symbol is sent on a first subcarrier of a second transmit antenna; the third higher order modulation symbol is sent on a second subcarrier of the first transmit antenna; and the fourth higher order modulation symbol is sent on a second subcarrier of the second transmit antenna.
(41) In this embodiment of the present invention, the information bits are modulated according to the lower order constellation diagram, and the 4m lower order modulation symbols are generated; the precoding matrix Q is multiplied by the column vector including every four lower order modulation symbols in the 4m lower order modulation symbols, to obtain the 4m higher order modulation symbols corresponding to the higher order constellation diagram; and the 4m higher order modulation symbols are respectively and correspondingly sent on the different carriers of the two antennas. The higher order modulation symbols include some or all information bits. Therefore, the same signal can be simultaneously sent on different carriers of multiple antennas, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(42)
(43)
(44) S301. Two receive antennas receive signals on two carriers.
(45) The two receive antennas are respectively a first receive antenna and a second receive antenna, and the two carriers are respectively a first subcarrier and a second subcarrier. A signal received by the first receive antenna on the first subcarrier is r.sub.11, a signal received by the second receive antenna on the first subcarrier is r.sub.21, a signal received by the first receive antenna on the second subcarrier is r.sub.12, and a signal received by the second receive antenna on the second subcarrier is r.sub.22.
(46) S302. Obtain 4m estimated values of lower order modulation symbols after channel equalization is performed on [r.sub.11 r.sub.21 r.sub.12 r.sub.22].sup.T, where
(47) m is an integer greater than or equal to 1.
(48) S303. Demodulate the 4m estimated values of lower order modulation symbols according to a corresponding lower order constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
(49) In this embodiment, the channel equalization is performed on a column vector including the signals that are received by the two receive antennas on different carriers, to obtain the 4m estimated values of lower order modulation symbols; the 4m estimated values of lower order modulation symbols are demodulated according to the corresponding lower order constellation diagram, to obtain the estimated value of the information bits sent by the transmit end; and the estimated value of the information bits sent by the transmit end is obtained in the manner of joint demodulation. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(50)
(51) S401. Perform channel equalization on signals that are received by two antennas on a first subcarrier, to obtain 2m estimated values of first higher order modulation symbols, where
(52) m is an integer greater than or equal to 1.
(53) S402. Perform channel equalization on signals that are received by the two antennas on a second subcarrier, to obtain 2m estimated values of second higher order modulation symbols.
(54) S403. Demodulate the 2m estimated values of first higher order modulation symbols in a mapping manner of a higher order constellation diagram, to obtain a first estimated value of information bits sent by a transmit end.
(55) S404. Demodulate the 2m estimated values of second higher order modulation symbols in the mapping manner of the higher order constellation diagram, to obtain a second estimated value of the information bits sent by the transmit end.
(56) S405. Combine the first estimated value of the information bits sent by the transmit end and the second estimated value of the information bits sent by the transmit end, to obtain an estimated value of the information bits sent by the transmit end.
(57) In this embodiment, the channel equalization is performed on the signals that are received by the two antennas on the first subcarrier, to obtain the 2m estimated values of first higher order modulation symbols; the channel equalization is performed on the signals that are received by the two antennas on the second subcarrier, to obtain the 2m estimated values of second higher order modulation symbols; the 2m estimated values of first higher order modulation symbols are demodulated in the mapping manner of the higher order constellation diagram, to obtain the first estimated value of the information bits sent by the transmit end; the 2m estimated values of second higher order modulation symbols are demodulated in the mapping manner of the higher order constellation diagram, to obtain the second estimated value of the information bits sent by the transmit end; and the first estimated value of the information bits sent by the transmit end and the second estimated value of the information bits sent by the transmit end are combined, to obtain the estimated value of the information bits sent by the transmit end, that is, the estimated value of the information bits sent by the transmit end is obtained in the manner of performing independent demodulation and then performing combination. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(58) The SQPSK and the QPSK are used as examples for detailed description in the following, and in the following embodiments, m=1 is used as an example for description.
(59) 1. A flowchart using the SQPSK as an example. A flowchart of a transmit end is shown in
(60) S501. Modulate four information bits according to a BPSK constellation diagram, and generate four BPSK symbols.
(61) A binary phase shift keying (Binary Phase Shift Keying, BPSK for short) constellation diagram is shown in
(62) S502. Multiply a precoding matrix Q by a column vector including the four BPSK symbols, to obtain four higher order modulation symbols corresponding to a QPSK constellation diagram.
(63) The QPSK constellation diagram is shown in
(64) A precoding matrix
(65)
is obtained according to four lower order modulation symbols and the QPSK constellation diagram, [s.sub.0 s.sub.1 s.sub.2 s.sub.3].sup.T is the column vector including the four BPSK symbols, the four higher order modulation symbols are respectively [x.sub.0 x.sub.1 x.sub.2 x.sub.3].sup.T, and
(66)
(67) S503. Send x.sub.0 on a first subcarrier of a first transmit antenna; send x.sub.1 on a first subcarrier of a second transmit antenna; send x.sub.2 on a second subcarrier of the first transmit antenna; and send x.sub.3 on a second subcarrier of the second transmit antenna.
(68) In this embodiment, the four information bits are modulated according to the BPSK constellation diagram, and four BPSK symbols are generated; the precoding matrix Q is multiplied by the column vector including the four BPSK symbols, to obtain the four higher order modulation symbols corresponding to the QPSK constellation diagram; and x.sub.0 is sent on the first subcarrier of the first transmit antenna, x.sub.1 is sent on the first subcarrier of the second transmit antenna, x.sub.2 is sent on the second subcarrier of the first transmit antenna, and x.sub.3 is sent on the second subcarrier of the second transmit antenna. It can be learned that s.sub.0 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both frequency diversity and space diversity are implemented; and s.sub.1 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented, so that transceiving performance of data transmission is improved.
(69) There are two processing manners at a receive end. A first manner is shown in
(70) S801. Perform channel equalization on a column vector including signals that are received by two receive antennas on two carriers, to obtain four estimated values of BPSK symbols.
(71) The column vector including signals that are received by the two receive antennas on the two carriers is
(72)
and
(73)
where r.sub.1,1 represents a signal received by a first receive antenna on a first subcarrier, r.sub.2,1 represents a signal received by a second receive antenna on the first subcarrier, r.sub.1,2 represents a signal received by the first receive antenna on a second subcarrier, and r.sub.2,2 represents a signal received by the second receive antenna on the second subcarrier. h.sub.11,1 represents a channel response that is from a first transmit antenna to the first receive antenna and that is on the first subcarrier; h.sub.12,1 represents a channel response that is from the first transmit antenna to the second receive antenna and that is on the first subcarrier; h.sub.21,1 represents a channel response that is from a second transmit antenna to the first receive antenna and that is on the first subcarrier; h.sub.22,1 represents a channel response that is from the second transmit antenna to the second receive antenna and that is on the first subcarrier; h.sub.11,2 represents a channel response that is from the first transmit antenna to the first receive antenna and that is on the second subcarrier; h.sub.12,2 represents a channel response that is from the first transmit antenna to the second receive antenna and that is on the second subcarrier; h.sub.21,2 represents a channel response that is from the second transmit antenna to the first receive antenna and that is on the second subcarrier; and h.sub.22,2 represents a channel response that is from the second transmit antenna to the second receive antenna and that is on the second subcarrier.
(74) The four estimated values of BPSK symbols are respectively represented as ŝ.sub.0, ŝ.sub.1, ŝ.sub.2, and ŝ.sub.3, and
(75)
(76) W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(77)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(78) S802. Demodulate the four estimated values of BPSK modulation symbols in a mapping manner of a BPSK constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
(79) In this embodiment, the channel equalization is performed on the column vector including the signals that are received by the two receive antennas on the two carriers, to obtain the four estimated values of BPSK symbols; and the four estimated values of BPSK modulation symbols are demodulated in the mapping manner of the BPSK constellation diagram, to obtain the estimated value of the information bits sent by the transmit end, that is, the estimated value of the information bits sent by the transmit end is obtained in the manner of joint demodulation. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(80) The second manner is shown in
(81) S901. Perform channel equalization on signals that are received by two antennas on a first subcarrier, to obtain two estimated values of first higher order modulation symbols.
(82) The signals that are received by the two antennas on the first subcarrier may be represented as:
(83)
where r.sub.1,1 represents a signal received by a first receive antenna on the first subcarrier, and r.sub.2,1 represents a signal received by a second receive antenna on the first subcarrier.
(84) The channel equalization is performed on the signals
(85)
that are received on the first subcarrier, to obtain the two estimated values that are of the first higher order modulation symbols and that are respectively {circumflex over (x)}.sub.1 and {circumflex over (x)}.sub.2, and
(86)
where W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(87)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(88) S902. Perform channel equalization on signals that are received by the two antennas on a second subcarrier, to obtain two estimated values of second higher order modulation symbols.
(89) The signals that are received by the two antennas on the second subcarrier may be represented as:
(90)
where r.sub.1,2 represents a signal received by the first receive antenna on the second subcarrier, and r.sub.2,2 represents a signal received by the second receive antenna on the second subcarrier.
(91) The channel equalization is performed on the signals
(92)
that are received on the second subcarrier, to obtain the two estimated values that are of the second higher order modulation symbols and that are respectively {circumflex over (x)}.sub.2 and {circumflex over (x)}.sub.3, and
(93)
where W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(94)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(95) S903. Demodulate the two estimated values of first higher order modulation symbols in a mapping manner of a QPSK constellation diagram, to obtain a first estimated value of information bits sent by a transmit end.
(96) The first estimated value may be represented as:
(97) {circumflex over (b)}.sub.0, {circumflex over (b)}.sub.1, {circumflex over (b)}.sub.2, and {circumflex over (b)}.sub.3.
(98) S904. Demodulate the two estimated values of second higher order modulation symbols in the mapping manner of the QPSK constellation diagram, to obtain a second estimated value of the information bits sent by the transmit end.
(99) The second estimated value may be represented as:
(100)
(101) S905. Combine the first estimated value of the information bits sent by the transmit end and the second estimated value of the information bits sent by the transmit end, to obtain an estimated value of the information bits sent by the transmit end.
(102) The estimated value of the information bits sent by the transmit end is {tilde over (b)}.sub.0, {tilde over (b)}.sub.1, {tilde over (b)}.sub.2, or {tilde over (b)}.sub.3, where {tilde over (b)}.sub.k=({circumflex over (b)}.sub.k+{circumflex over (b)}.sub.k)/2, and k=0, 1, 2, or 3.
(103) In this embodiment, the channel equalization is performed on the signals that are received by the two antennas on the first subcarrier, to obtain the two estimated values of first higher order modulation symbols; the channel equalization is performed on the signals that are received by the two antennas on the second subcarrier, to obtain the two estimated values of second higher order modulation symbols; the two estimated values of first higher order modulation symbols are demodulated in the mapping manner of the QPSK constellation diagram, to obtain the first estimated value of the information bits sent by the transmit end; the two estimated values of second higher order modulation symbols are demodulated in the mapping manner of the QPSK constellation diagram, to obtain the second estimated value of the information bits sent by the transmit end; and the first estimated value of the information bits sent by the transmit end and the second estimated value of the information bits sent by the transmit end are combined, to obtain the estimated value of the information bits sent by the transmit end, that is, the estimated value of the information bits sent by the transmit end is obtained in the manner of performing independent demodulation and then performing combination. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(104) 2. A flowchart using the QPSK as an example. Implementations of the QPSK are classified into two types, a higher order constellation diagram of a first implementation is a 256 quadrature amplitude modulation (Quadrature Amplitude Modulation, QAM for short) constellation diagram, and a higher order constellation diagram of a second implementation is a 128QAM constellation diagram.
(105) In one embodiment, a flowchart at a transmit end is shown in
(106) S1001. Modulate eight information bits according to a QPSK constellation diagram, and generate four QPSK symbols.
(107) The QPSK constellation diagram is shown in
(108) S1002. Multiply a precoding matrix Q by a column vector including the four QPSK symbols, to obtain four higher order modulation symbols corresponding to a 256QAM constellation diagram.
(109) The 256QAM constellation diagram is shown in
(110)
is obtained according to four lower order modulation symbols and the 256QAM constellation diagram.
(111) Specifically, one 256QAM symbol can be split into combinations of the four QPSK symbols, that is, s=(±8)*s.sub.0+(±4)*s.sub.1+(±2)*s.sub.2+(±1)*s.sub.3. A coefficient combination (±8, ±4, ±2, ±1) is used as a start point for finding a combination Q that can generate an orthogonal matrix.
(112) It is easy to learn that the coefficient combination (±8, ±4, ±2, ±1) may generate 384 different row vectors, and a generation method is as follows:
(113) (1) 16 row vectors are first generated in the following according to an order of (±8, ±4, ±2, ±1):
(114) (8, 4, 2, 1), (8, 4, 2, −1), (8, 4, −2, 1), (8, 4, −2, −1), (8, −4, 2, 1), (8, −4, 2, −1), (8, −4, −2, 1), (8, −4, −2, −1), (−8, 4, 2, 1), (−8, 4, 2, −1), (−8, 4, −2, 1), (−8, 4, −2, −1), (−8, −4, 2, 1), (−8, −4, 2, −1), (−8, −4, −2, 1), and (−8, −4, −2, −1).
(115) Cyclic shift is performed on the foregoing generated 16 vectors, and 64 row vectors are generated. (8, 4, 2, 1) is used as an example, and four row vectors can be generated: (8, 4, 2, 1), (1, 8, 4, 2), (2, 1, 8, 4), and (4, 2, 1, 8). By analogy, 64 row vectors can be generated in total.
(116) (2) Further, 64×5 row vectors are generated in the following according to an order of (±8, ±4, ±1, ±2), (±8, ±2, ±4, ±1), (±8, ±2, ±1, ±4), (±8, ±1, ±2, ±4), and (±8, ±1, ±4, ±2).
(117) Generally, a value of a first row vector is first fixed at (8, 4, −2, 1), and then the remaining 383 row vectors are searched for a row vector orthogonal to the first row vector, and the found row vector is (4, −8, 1, 2). After the first row vector and a second row vector are determined, the remaining 382 row vectors are searched for a row vector orthogonal to both the first row vector and the second row vector, and a value of the found row vector is (2, 1, 8, −4). By analogy, the remaining 381 row vectors are searched for a row vector orthogonal to the first row vector, the second row vector, and the third row vector, and a value of the found row vector is (1, −2, −4, −8).
(118)
is the column vector including the four QPSK symbols, and the four higher order modulation symbols are respectively x.sub.1, x.sub.2, x.sub.3, and x.sub.4, and
(119)
(120) S1003. Send x.sub.0 on a first subcarrier of a first transmit antenna; send x.sub.1 on a first subcarrier of a second transmit antenna; send x.sub.2 on a second subcarrier of the first transmit antenna; and send x.sub.3 on a second subcarrier of the second transmit antenna.
(121) In this embodiment, the eight information bits are modulated according to the QPSK constellation diagram, and four QPSK symbols are generated; the precoding matrix Q is multiplied by the column vector including the four QPSK symbols, to obtain the four higher order modulation symbols corresponding to the 256QAM constellation diagram; and x.sub.0 is sent on the first subcarrier of the first transmit antenna, x.sub.1 is sent on the first subcarrier of the second transmit antenna, x.sub.2 is sent on the second subcarrier of the first transmit antenna, and x.sub.3 is sent on the second subcarrier of the second transmit antenna. It can be learned that s.sub.0 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both frequency diversity and space diversity are implemented; s.sub.1 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented; s.sub.2 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented; and s.sub.3 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented, so that transceiving performance of data transmission is improved.
(122) In the first implementation, there are two processing manners at a receive end. A first manner is shown in
(123) As shown in
(124) S1201. Perform channel equalization on a column vector including signals that are received by two receive antennas on two carriers, to obtain four estimated values of QPSK symbols.
(125) The column vector including signals that are received by the two receive antennas on the two carriers is
(126)
and
(127)
where r.sub.1,1 represents a signal received by a first receive antenna on a first subcarrier, r.sub.2,1 represents a signal received by a second receive antenna on the first subcarrier, r.sub.1,2 represents a signal received by the first receive antenna on a second subcarrier, and r.sub.2,2 represents a signal received by the second receive antenna on the second subcarrier. h.sub.11,1 represents a channel response that is from a first transmit antenna to the first receive antenna and that is on the first subcarrier; h.sub.12,1 represents a channel response that is from the first transmit antenna to the second receive antenna and that is on the first subcarrier; h.sub.21,1 represents a channel response that is from a second transmit antenna to the first receive antenna and that is on the first subcarrier; h.sub.22,1 represents a channel response that is from the second transmit antenna to the second receive antenna and that is on the first subcarrier; h.sub.11,2 represents a channel response that is from the first transmit antenna to the first receive antenna and that is on the second subcarrier; h.sub.12,2 represents a channel response that is from the first transmit antenna to the second receive antenna and that is on the second subcarrier; h.sub.21,2 represents a channel response that is from the second transmit antenna to the first receive antenna and that is on the second subcarrier; and h.sub.22,2 represents a channel response that is from the second transmit antenna to the second receive antenna and that is on the second subcarrier.
(128) The four estimated values of QPSK symbols are respectively represented as ŝ.sub.0, ŝ.sub.1, ŝ.sub.2, and ŝ.sub.3, and
(129)
(130) W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(131)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(132) S1202. Demodulate the four estimated values of QPSK modulation symbols in a mapping manner of a QPSK constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
(133) In this embodiment, the channel equalization is performed on the column vector including the signals that are received by the two receive antennas on the two carriers, to obtain the four estimated values of QPSK symbols; and the four estimated values of QPSK modulation symbols are demodulated in the mapping manner of the QPSK constellation diagram, to obtain the estimated value of the information bits sent by the transmit end, that is, the estimated value of the information bits sent by the transmit end is obtained in the manner of joint demodulation. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(134) The second manner:
(135) As shown in
(136) S1301. Perform channel equalization on signals that are received by two antennas on a first subcarrier, to obtain two estimated values of first higher order modulation symbols.
(137) The signals that are received by the two antennas on the first subcarrier may be represented as:
(138)
where r.sub.1,1 represents a signal received by a first receive antenna on the first subcarrier, and r.sub.2,1 represents a signal received by a second receive antenna on the first subcarrier.
(139) The channel equalization is performed on the signals
(140)
that are received on the first subcarrier, to obtain the two estimated values that are of the first higher order modulation symbols and that are respectively {circumflex over (x)}.sub.0 and {circumflex over (x)}.sub.1, and
(141)
where W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(142)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(143) S1302. Perform channel equalization on signals that are received by the two antennas on a second subcarrier, to obtain two estimated values of second higher order modulation symbols.
(144) The signals that are received by the two antennas on the second subcarrier may be represented as:
(145)
where r.sub.1,2 represents a signal received by the first receive antenna on the second subcarrier, and r.sub.2,2 represents a signal received by the second receive antenna on the second subcarrier.
(146) The channel equalization is performed on the signals
(147)
that are received on the second subcarrier, to obtain the two estimated values that are of the second higher order modulation symbols and that are respectively {circumflex over (x)}.sub.2 and {circumflex over (x)}.sub.3, and
(148)
where W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(149)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(150) S1303. Demodulate the two estimated values of first higher order modulation symbols in a mapping manner of a 256QAM constellation diagram, to obtain a first estimated value of information bits sent by a transmit end.
(151) The first estimated value may be represented as:
(152) {circumflex over (b)}.sub.0, {circumflex over (b)}.sub.1, {circumflex over (b)}.sub.2, {circumflex over (b)}.sub.3, {circumflex over (b)}.sub.4, {circumflex over (b)}.sub.5, {circumflex over (b)}.sub.6, and {circumflex over (b)}.sub.7.
(153) S1304. Demodulate the two estimated values of second higher order modulation symbols in the mapping manner of the 256QAM constellation diagram, to obtain a second estimated value of the information bits sent by the transmit end.
(154) The second estimated value may be represented as:
(155)
(156) S1305. Combine the first estimated value of the information bits sent by the transmit end and the second estimated value of the information bits sent by the transmit end, to obtain an estimated value of the information bits sent by the transmit end.
(157) The estimated value of the information bits sent by the transmit end is {tilde over (b)}.sub.0, {tilde over (b)}.sub.1, {tilde over (b)}.sub.2, {tilde over (b)}.sub.3, ,
,
, or
, where {tilde over (b)}.sub.k=({circumflex over (b)}.sub.k+{circumflex over (b)}.sub.k)/2, and k=0, 1, 2, 3, 4, 5, 6, or 7.
(158) In this embodiment, the channel equalization is performed on the signals that are received by the two antennas on the first subcarrier, to obtain the two estimated values of first higher order modulation symbols; the channel equalization is performed on the signals that are received by the two antennas on the second subcarrier, to obtain two estimated values of second higher order modulation symbols; the two estimated values of first higher order modulation symbols are demodulated in the mapping manner of the 256QAM constellation diagram, to obtain the first estimated value of the information bits sent by the transmit end; the two estimated values of second higher order modulation symbols are demodulated in the mapping manner of the 256QAM constellation diagram, to obtain the second estimated value of the information bits sent by the transmit end; and the first estimated value of the information bits sent by the transmit end and the second estimated value of the information bits sent by the transmit end are combined, to obtain the estimated value of the information bits sent by the transmit end, that is, the estimated value of the information bits sent by the transmit end is obtained in the manner of performing independent demodulation and then performing combination. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(159) In one embodiment, a flowchart at a transmit end is shown in
(160) S1401. Modulate eight information bits according to a QPSK constellation diagram, and generate four QPSK symbols.
(161) The QPSK constellation diagram is shown in
(162) S1402. Multiply a precoding matrix Q by a column vector including the four QPSK symbols, to obtain four higher order modulation symbols corresponding to a 128QAM constellation diagram.
(163) The 128QAM constellation diagram is shown in
(164)
is obtained according to four lower order modulation symbols and the 128QAM constellation diagram. Specifically, the 128QAM constellation diagram is similar to the 256QAM constellation diagram, but a difference lies in that a coefficient combination is (±1, ±1, ±1, e.sup.±j0.25π).
(165)
is the column vector including the four QPSK symbols, and the four to-be-sent higher order modulation symbols are respectively x.sub.0, x.sub.1, x.sub.2, and x.sub.3, and
(166)
(167) S1403. Send x.sub.0 on a first subcarrier of a first transmit antenna; send x.sub.1 on a first subcarrier of a second transmit antenna; send x.sub.2 on a second subcarrier of the first transmit antenna; and send x.sub.3 on a second subcarrier of the second transmit antenna.
(168) In this embodiment, the eight information bits are modulated according to the QPSK constellation diagram, and four QPSK symbols are generated; the precoding matrix Q is multiplied by the column vector including the four QPSK symbols, to obtain the four higher order modulation symbols corresponding to the 128QAM constellation diagram; and x.sub.0 is sent on the first subcarrier of the first transmit antenna, x.sub.1 is sent on the first subcarrier of the second transmit antenna, x.sub.2 is sent on the second subcarrier of the first transmit antenna, and x.sub.3 is sent on the second subcarrier of the second transmit antenna. It can be learned that s.sub.0 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both frequency diversity and space diversity are implemented; s.sub.1 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented; s.sub.2 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented; and s.sub.3 is simultaneously sent on the first subcarrier and the second subcarrier, and sent on the first transmit antenna and the second transmit antenna, and both the frequency diversity and the space diversity are implemented, so that transceiving performance of data transmission is improved.
(169) A processing manner at the receive end is shown in
(170) S1601. Perform channel equalization on a column vector including signals that are received by two receive antennas on two carriers, to obtain four estimated values of QPSK symbols.
(171) The column vector including signals that are received by the two receive antennas on the two carriers is
(172)
and
(173)
where r.sub.1,1 represents a signal received by a first receive antenna on a first subcarrier, r.sub.2,1 represents a signal received by a second receive antenna on the first subcarrier, r.sub.1,2represents a signal received by the first receive antenna on a second subcarrier, and r.sub.2,2 represents a signal received by the second receive antenna on the second subcarrier. h.sub.11,1 represents a channel response that is from a first transmit antenna to the first receive antenna and that is on the first subcarrier; h.sub.12,1 represents a channel response that is from the first transmit antenna to the second receive antenna and that is on the first subcarrier; h.sub.21,1 represents a channel response that is from a second transmit antenna to the first receive antenna and that is on the first subcarrier; h.sub.22,1 represents a channel response that is from the second transmit antenna to the second receive antenna and that is on the first subcarrier; h.sub.11,2 represents a channel response that is from the first transmit antenna to the first receive antenna and that is on the second subcarrier; h.sub.12,2 represents a channel response that is from the first transmit antenna to the second receive antenna and that is on the second subcarrier; h.sub.21,2 represents a channel response that is from the second transmit antenna to the first receive antenna and that is on the second subcarrier; and h.sub.22,2 represents a channel response that is from the second transmit antenna to the second receive antenna and that is on the second subcarrier.
(174) The four estimated values of QPSK symbols are respectively represented as ŝ.sub.0, ŝ.sub.1, ŝ.sub.2, and ŝ.sub.3, and
(175)
(176) W is a channel equalization matrix. If a linear minimum mean square error method is used, a corresponding channel equalization matrix is W=(G.sup.HG+δ.sup.2 I.sub.4).sup.−1G.sup.H; or if a zero forcing method is used, a corresponding channel equalization matrix is W=G.sup.−1, where
(177)
δ.sup.2 is noise power, I.sub.4 is a fourth-order identity matrix, and ( ).sup.−1 represents matrix inversion.
(178) S1602. Demodulate the four estimated values of QPSK modulation symbols in a mapping manner of a QPSK constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
(179) In this embodiment, the channel equalization is performed on the column vector including the signals that are received by the two receive antennas on the two carriers, to obtain the four estimated values of QPSK symbols; and the four estimated values of QPSK modulation symbols are demodulated in the mapping manner of the QPSK constellation diagram, to obtain the estimated value of the information bits sent by the transmit end, that is, the estimated value of the information bits sent by the transmit end is obtained in the manner of joint demodulation. The same signal can be simultaneously received by multiple receive antennas on different carriers, and frequency diversity and space diversity are implemented, so that transceiving performance of data transmission is improved.
(180)
(181) In the foregoing embodiment, the 4m higher order modulation symbols are classified into four types, a 4(i−1)+1.sup.th higher order modulation symbol is a first higher order modulation symbol, a 4(i−1)+2.sup.th higher order modulation symbol is a second higher order modulation symbol, a 4(i−1)+3.sup.th higher order modulation symbol is a third higher order modulation symbol, and a 4(i−1)+4.sup.th higher order modulation symbol is a fourth higher order modulation symbol, where 1≤i≤l, and i is an integer.
(182) The sending module is configured to send the first higher order modulation symbol on a first subcarrier of a first transmit antenna; send the second higher order modulation symbol on a first subcarrier of a second transmit antenna; send the third higher order modulation symbol on a second subcarrier of the first transmit antenna; and send the fourth higher order modulation symbol on a second subcarrier of the second transmit antenna.
(183) In the foregoing embodiment, the processing module 1702 is configured to:
(184) multiply a precoding matrix
(185)
by a column vector [s.sub.0 s.sub.1 s.sub.2 s.sub.3].sup.T including four quadrature phase shift keying QPSK symbols, to obtain four to-be-sent 256QAM modulation symbols that are corresponding to a 256 quadrature amplitude modulation QAM constellation diagram and that are respectively [x.sub.0 x.sub.1 x.sub.2 x.sub.3].sup.T, where x.sub.0 is the first higher order modulation symbol, x.sub.1 is the second higher order modulation symbol, x.sub.2 is the third higher order modulation symbol, x.sub.3 is the fourth higher order modulation symbol, and [ ].sup.T represents transpose.
(186) In the foregoing embodiment, the processing module 1702 is configured to:
(187) multiply a precoding matrix
(188)
by a column vector [s.sub.0 s.sub.1 s.sub.2 s.sub.3].sup.T including four QPSK symbols, to obtain four 128QAM modulation symbols that are corresponding to a 128QAM constellation diagram and that are respectively [x.sub.0 x.sub.1 x.sub.2 x.sub.3].sup.T, where x.sub.0 is the first higher order modulation symbol, x.sub.1 is the second higher order modulation symbol, x.sub.2 is the third higher order modulation symbol, x.sub.3 is the fourth higher order modulation symbol, and [ ].sup.T represents transpose.
(189) In the foregoing embodiment, the processing module 1702 is configured to:
(190) multiply a precoding matrix
(191)
by a column vector [s.sub.0 s.sub.1 s.sub.2 s.sub.3].sup.T including four BPSK symbols, to obtain four modulation symbols that are corresponding to a QPSK constellation diagram and that are respectively [x.sub.0 x.sub.1 x.sub.2 x.sub.3].sup.T, where x.sub.0 is the first higher order modulation symbol, x.sub.1 is the second higher order modulation symbol, x.sub.2 is the third higher order modulation symbol, and x.sub.3 is the fourth higher order modulation symbol.
(192) The apparatus in this embodiment may be correspondingly configured to implement the technical solution in the method embodiment shown in
(193)
(194) In the foregoing embodiment, the lower order modulation symbol is a quadrature phase shift keying QPSK modulation symbol or a binary phase shift keying BPSK modulation symbol.
(195) The apparatus in this embodiment may be correspondingly configured to implement the technical solution in the method embodiment shown in
(196)
(197) In the foregoing embodiment, the higher order modulation symbol is a 256 quadrature amplitude modulation QAM modulation symbol or a quadrature phase shift keying QPSK modulation symbol.
(198) The apparatus in this embodiment may be correspondingly configured to implement the technical solution in the method embodiment shown in
(199)
(200) The apparatus in this embodiment may be correspondingly configured to implement the technical solution in the method embodiment shown in
(201)
(202) The channel equalizer 2102 is configured to obtain 4m estimated values of lower order modulation symbols after channel equalization is performed on [r.sub.11 r.sub.21 r.sub.12 r.sub.22].sup.T, where m is an integer greater than or equal to 1. The demodulator 2103 is configured to demodulate the 4m estimated values of lower order modulation symbols according to a corresponding lower order constellation diagram, to obtain an estimated value of information bits sent by a transmit end.
(203) The apparatus in this embodiment may be correspondingly configured to implement the technical solution in the method embodiment shown in
(204)
(205) The apparatus in this embodiment may be correspondingly configured to implement the technical solution in the method embodiment shown in
(206) 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.
(207) Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present invention, but not for limiting the present invention. Although the present invention 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 invention.