This application is the national phase entry of International Application No. PCT/CN2021/090941, filed on Apr. 29, 2021, which is based upon and claims priority to Chinese Patent Application No. 202011199804.0, filed on Nov. 2, 2020, the entire contents of which are incorporated herein by reference.
The present invention belongs to the field of telecommunications, and in particular, relates to a high-dimensional signal transmission method.
In existing communication systems, for example, orthogonal frequency division multiplexing (OFDM), one subchannel is configured to transmit different information from other subchannels. Information of different subchannels is kept independent of each other, and mutual interference between the subchannels is suppressed as far as possible, so that the overall capacity of a communication system is improved. However, when the channel condition of a certain subchannel is poor, information transmitted by the subchannel will be lost. In the existing communication systems, various methods are used to overcome the sudden deep fading of a certain subchannel. When the subchannel corresponds to a time domain subchannel, time domain diversity is used; and when the subchannel corresponds to a frequency domain subchannel, frequency domain diversity is used. However, to ensure communication quality, traditional diversity technologies usually lead to a reduction of the overall throughput of the system.
To effectively solve the contradiction between the communication quality and the overall throughput of a system, the present invention provides a high-dimensional signal transmission method. Multiple signals are regarded as a whole signal, and the whole signal is transmitted in parallel by a plurality of subchannels, so that the problem of sudden deterioration of a certain subchannel is solved while ensuring the overall throughput of the system unchanged.
The present invention provides a high-dimensional signal transmission method. In the method, a transmitter for processing and sending an original signal, a receiver for receiving and recovering the original signal, and a plurality of subchannels for the transmitter and the receiver are provided. The plurality of subchannels include time-domain, frequency-domain, space-domain and code-domain subchannels.
The high-dimensional signal transmission method includes the following steps:
Further, the precoding signals and the matched signals in step 1 are time-varying signals.
According to the present invention, M M-dimensional first signals are generated according to M original signals q1(t), q2(t), . . . , qM(t), M M-dimensional second signals are generated according to a precoding signal and the first signals, and finally, a transmitter sums up all of the second signals and then transmits by utilizing M subchannels. In this way, each subchannel carries information of the M original signals; hence, when any subchannel experiences deep fading, the deep fading is shared jointly by M signals, thus preventing the deep fading from causing a particularly severe impact on any signal. Moreover, all of the original signals can be recovered by utilizing the signals on the other subchannels, thus increasing the systematic resistance against subchannel deep fading. Meanwhile, the system implements the parallel transmission of the M original signals, thus ensuring the throughput of a communication system.
A specific embodiment of the present invention is given below with reference to block diagrams of the specification. In this embodiment, a transmitter adopts a transmitter signal processing block diagram shown in
The transmitter generates M M-dimensional precoding signals α1(t), α2(t), . . . , αM(t), and the receiver generates M M-dimensional matched signals β1(t), β2(t), . . . , βM(t). In this embodiment,
where f1=100 kHz, f2=800 kHz, and a function vec(A) indicates that columns of a matrix A are extracted and put together in order to forma new column vector.
αi(t)=α1(t+(i−1)Δτ),i=2,3, . . . ,M
βi(t)=αi*(t),i=2,3, . . . ,M
where
and αi*(t) represents a vector that is obtained by conjugating each elements in the vector αi(t).
The transmitter generates M M-dimensional first signals s1(t), s2(t), . . . , sM(t) according to M original signals q1(t), q2(t), . . . , qM(t), where the first signals satisfy:
βiH(t)diag(αi(t))si(t)=qi(t)
The transmitter generates M M-dimensional second signals x1(t), x2(t), . . . , xM(t), where the generation method is as follows:
xj(t)=diag(αj(t))sj(t), j=1, 2, . . . , M. The transmitter sums up all of the second signals to obtain an M-dimensional transmission signal
and sends the transmission signal to the receiver by M subchannels, where one subchannel is used to send one dimension of the transmission signal.
The receiver adopts a receiver signal processing block diagram shown in
ŝi(t)=βiH(t)r(t),i=1,2, . . . ,M
Number | Date | Country | Kind |
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202011199804.0 | Nov 2020 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/090941 | 4/29/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2022/088636 | 5/5/2022 | WO | A |
Number | Name | Date | Kind |
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9570105 | Mathew et al. | Feb 2017 | B1 |
20180115912 | Gao | Apr 2018 | A1 |
Number | Date | Country |
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106059640 | Oct 2016 | CN |
109639325 | Apr 2019 | CN |
112019464 | Dec 2020 | CN |
Entry |
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Chunxia Bai, et al., Treatment of multi-dimensional signal based on complex wavelet-contourlet transform, Automation & Instrumentation, 2011, pp. 113-115, 118, Issue 153. |
Number | Date | Country | |
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20240022293 A1 | Jan 2024 | US |