Method and Apparatus for Transmitting Signal and Communications System
20170339709 · 2017-11-23
Assignee
Inventors
Cpc classification
International classification
Abstract
Embodiments of this disclosure provide a method and apparatus for transmitting a signal and a communications system. The method includes: superimposing, by a transmitting device, symbols which are to be transmitted to multiple pieces of user equipment, to form a superimposed symbol; performing phase rotation on the superimposed symbol to form a rotated symbol; and transmitting the superimposed symbol by using a first antenna and transmitting the rotated symbol by using a second antenna. With the embodiments of this disclosure, channel conditions of multiple pieces of user equipment may be differentiated, and gains of NOMA in a microcell may be fully brought into play.
Claims
1. A method for transmitting a signal, applied to a non-orthogonal multiple access (NOMA) system, the method comprising: superimposing, by a transmitting device, symbols which are to be transmitted to multiple pieces of user equipment, to form a superimposed symbol; performing phase rotation on the superimposed symbol to form a rotated symbol; and transmitting the superimposed symbol by using a first antenna and transmitting the rotated symbol by using a second antenna, so that channel conditions of the multiple pieces of user equipment are differentiated.
2. The method according to claim 1, wherein the rotated symbol is:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
3. The method according to claim 1, wherein a rotation factor of the phase rotation introduces time disturbance and/or frequency disturbance into a channel, so that the channel fluctuates in the frequency domain and/or the time domain to differentiate the channel conditions of the multiple pieces of user equipment.
4. The method according to claim 1, wherein the superimposed symbol is transmitted by using the first antenna and the rotated symbol is transmitted by using the second antenna in the same time-frequency resource.
5. The method according to claim 1, wherein the method further comprising: selecting multiple pieces of user equipment according to channel conditions to perform NOMA scheduling.
6. The method according to claim 5, wherein the selecting multiple pieces of user equipment according to channel conditions to perform NOMA scheduling comprises: scheduling two or more pieces of user equipment in the same sub-band for the purpose of maximizing a throughput; or scheduling two or more pieces of user equipment with a difference between channel conditions thereof larger than a predetermined threshold in the same sub-band, for the purpose of ensuring a performance of successive interference cancellation; or scheduling two or more pieces of user equipment with channel conditions thereof different from each other in the same sub-band, for the purpose of maximizing the number of users that are scheduled at the same time.
7. The method according to claim 1, wherein before transmitting the superimposed symbol by using the first antenna and transmitting the rotated symbol by using the second antenna, the method further comprises: equivalently transforming the superimposed symbol to which the first antenna corresponds into a product of the rotated symbol and a phase reverse rotation coefficient; interleaving the rotated symbols in different time domain resources and/or frequency domain resources; and transmitting the interleaved symbols by using the first antenna directly after multiplying them by the phase reverse rotation coefficient, and transmitting the interleaved symbols directly by using the second antenna.
8. The signal transmitting method according to claim 7, wherein the product of the rotated symbol and the phase reverse rotation coefficient is expressed as:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
9. The method according to claim 1, wherein different pieces of user equipment in the NOMA use different phase rotation values.
10. The method according to claim 1, wherein a phase value of the phase rotation is configured for the user equipment explicitly by the transmitting device, or acquired by the user equipment implicitly.
11. An apparatus for transmitting a signal, configured in a non-orthogonal multiple access (NOMA) system, the apparatus comprising: a superimposing unit configured to superimpose symbols which are to be transmitted to multiple pieces of user equipment to form a superimposed symbol; a rotating unit configured to perform phase rotation for the superimposed symbol to form a rotated symbol; and a transmitting unit configured to transmit the superimposed symbol by using a first antenna and transmit the rotated symbol by using a second antenna, so that channel conditions of the multiple pieces of user equipment are differentiated.
12. The apparatus according to claim 11, wherein the rotated symbol is:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
13. The apparatus according to claim 11, wherein a rotation factor of the phase rotation introduces time disturbance and/or frequency disturbance into a channel, so that the channel fluctuates in the frequency domain and/or the time domain to differentiate the channel conditions of the multiple pieces of user equipment.
14. The apparatus according to claim 11, wherein the superimposed symbol is transmitted by using the first antenna and the rotated symbol is transmitted by using the second antenna in the same time-frequency resource.
15. The apparatus according to claim 11, wherein the apparatus further comprising: a scheduling unit configured to select multiple pieces of user equipment according to channel conditions to perform NOMA scheduling.
16. The apparatus according to claim 11, wherein the apparatus further comprising: a transforming unit configured to equivalently transform the superimposed symbol to which the first antenna corresponds into a product of the rotated symbol and a phase reverse rotation coefficient; and an interleaving unit configured to interleave the rotated symbols in different time domain resources and/or frequency domain resources; and the transmitting unit is further configured to transmit the interleaved symbols by using the first antenna after multiplying them by the phase reverse rotation coefficient, and transmit the interleaved symbols directly by using the second antenna.
17. The apparatus according to claim 16, wherein the product of the rotated symbol and the phase reverse rotation coefficient is expressed as:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
18. The apparatus according to claim 11, wherein different pieces of user equipment in the NOMA use different phase rotation values.
19. The apparatus according to claim 11, wherein a phase value of the phase rotation is configured for the user equipment explicitly by the apparatus, or acquired by the user equipment implicitly.
20. A communications system, comprising: a base station configured to superimpose symbols which are to be transmitted to multiple pieces of user equipment to form a superimposed symbol, perform phase rotation for the superimposed symbol to form a rotated symbol, and transmit the superimposed symbol by using a first antenna and transmit the rotated symbol by using a second antenna, so that channel conditions of the multiple pieces of user equipment are differentiated.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Many aspects of the disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of this disclosure. To facilitate illustrating and describing some parts of the disclosure, corresponding portions of the drawings may be exaggerated or reduced.
[0028] Elements and features depicted in one drawing or embodiment of the disclosure may be combined with elements and features depicted in one or more additional drawings or embodiments. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views and may be used to designate like or similar parts in more than one embodiment.
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DETAILED DESCRIPTION
[0045] These and further aspects and features of the present disclosure will be apparent with reference to the following description and attached drawings. In the description and drawings, particular embodiments of the disclosure have been disclosed in detail as being indicative of some of the ways in which the principles of the disclosure may be employed, but it is understood that the disclosure is not limited correspondingly in scope. Rather, the disclosure includes all changes, modifications and equivalents coming within the terms of the appended claims.
[0046] Under a microcell environment, user equipment often experiences flat channels, and there exists no relatively large difference between large-scale attenuation of channels between user equipment as it does in a macrocell, which is disadvantageous to bringing gains of the NOMA into play. In the embodiments of this disclosure, equivalent channels of user equipment intensely change in a frequency domain (or a time domain) by artificially creating a frequency (or time) selective diversity by adding an antenna, which may provide multi-user diversity gains for NOMA subband scheduling.
[0047] Taking single antenna transmission as a conventional method,
[0048] In
[0049]
[0050] How to create artificial diversity by adding a transmission antenna is illustrated above by taking a frequency domain as an example. Embodiments of this disclosure shall be further described below.
Embodiment 1
[0051] Embodiment 1 of this disclosure provides a method for transmitting a signal, applied to an NOMA system.
[0052] step 401: a transmitting device superimposes symbols which are to be transmitted to multiple pieces of user equipment, to form a superimposed symbol;
[0053] step 402: phase rotation is performed on the superimposed symbol to form a rotated symbol; and
[0054] step 403: the superimposed symbol is transmitted by using a first antenna and the rotated symbol is transmitted by using a second antenna, so that channel conditions of the multiple pieces of user equipment are differentiated.
[0055] In this embodiment, the transmitting device may superimpose the symbols to be transmitted to multiple pieces of user equipment based on the NOMA technique to form the superimposed symbol. It should be appreciated that in the embodiment of this disclosure, for the sake of simplicity, power is omitted and only, for example, S1+S2, is used to denote the superimposed symbol, which should be in a form of, for example, √{square root over (P.sub.1)}s.sub.1+√{square root over (P.sub.2)}s.sub.2, and is easily understood by those skilled in the art.
[0056] In this embodiment, the rotated symbol may be:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
[0057] where, S1 and S2 are symbols respectively to be transmitted for first user equipment and second user equipment, θ is a predetermined phase value, k.sub.i is a factor in a frequency domain, and t.sub.i is a factor in a time domain.
[0058] In this embodiment, a rotation factor of the phase rotation, such as e.sup.jθk.sup.
[0059]
[0060] for the superimposed symbol (S1+S2), a rotated symbol (S.sub.1+S.sub.2)e.sup.jθk.sup.
[0061] and for the superimposed symbol (S3+S4), a rotated symbol (S.sub.3+S.sub.4)e.sup.jθk.sup.
[0062] Hence, the channel is made to fluctuate in the frequency domain (identified by k.sub.i) and/or the time domain (identified by t.sub.i) to differentiate the channel conditions of the multiple pieces of user equipment, and facilitate acquiring NOMA gains.
[0063] For the sake of simplicity in the following, description shall be given taking the frequency domain only as an example.
[0064] In this embodiment, multiple pieces of user equipment may be selected according to the channel conditions to perform NOMA scheduling.
[0065]
[0066]
[0067] In an implementation, two or more pieces of user equipment (such as user equipment of channel conditions exceeding a predetermined threshold) in the same sub-band may be scheduled for the purpose of maximizing a throughput.
[0068] In another implementation, two or more pieces of user equipment with a difference between channel conditions thereof larger than the predetermined threshold may be scheduled in the same sub-band for the purpose of ensuring a performance of successive interference cancellation.
[0069] In a further implementation, two or more pieces of user equipment of channel conditions different from each other may be scheduled in the same sub-band for the purpose of maximizing the number of users that are scheduled.
[0070] It should be appreciated that
[0071] In this embodiment, signal spatial diversity may be introduced into the NOMA artificial diversity.
[0072]
[0073] step 1101: a transmitting device superimposes the symbols which are to be transmitted to multiple pieces of user equipment, to form a superimposed symbol;
[0074] step 1102: phase rotation is performed on the superimposed symbol to form a rotated symbol;
[0075] step 1103: the superimposed symbol to which the first antenna corresponds is equivalently transformed into a product of the rotated symbol and a phase reverse rotation coefficient;
[0076] step 1104: the rotated symbols in different time domain resources and/or frequency domain resources are interleaved; and
[0077] step 1105: the interleaved symbols are transmitted by using the first antenna after multiplying them by the phase reverse rotation coefficient, and the interleaved symbols are directly transmitted by using the second antenna.
[0078] In this embodiment, the product of the rotated symbol and the phase reverse rotation coefficient may be expressed as:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
[0079] where, S1 and S2 are symbols respectively to be transmitted for the first user equipment and the second user equipment, θ is a predetermined phase value, k.sub.i is a frequency domain factor, and t.sub.i is a factor in the time domain.
[0080] Then, real part and imaginary part interleaving may be performed on the obtained symbol, such as (s.sub.1+s.sub.2)e.sup.jθk.sup.
[0081]
[0082] In this embodiment, for different user equipment performing the NOMA, different phase rotation values, i.e. different values of θ, may be used. For example, a pair of user equipment (UE1 and UE2) performing the NOMA use θ1, and another pair of user equipment (UE3 and UE4) performing the NOMA use θ2.
[0083] In this embodiment, a phase value of the phase rotation may be configured for the user equipment explicitly by the transmitting device, or acquired by the user equipment implicitly; for example, it is obtained by multiplying a fixed angle by a user equipment ID.
[0084] It can be seen from the above embodiment that, by forming the rotated symbol by performing phase rotation on the superimposed symbol and transmitting the superimposed symbol by using the first antenna and transmitting the rotated symbol by using the second antenna, channel conditions of multiple pieces of user equipment may be differentiated, and gains of NOMA in a microcell may be fully brought into play. Furthermore, with the transform and interleaving of the phase rotation symbols, gains of a signal spatial diversity may be created and utilized.
Embodiment 2
[0085] The embodiment of this disclosure provides an apparatus for transmitting a signal, configured in an NOMA system. This embodiment corresponds to the method for transmitting a signal of Embodiment 1, with identical contents being not going to be described herein any further.
[0086]
[0087] a superimposing unit 1301 configured to superimpose symbols which are to be transmitted to multiple pieces of user equipment to form a superimposed symbol;
[0088] a rotating unit 1302 configured to perform phase rotation for the superimposed symbol to form a rotated symbol; and
[0089] a transmitting unit 1303 configured to transmit the superimposed symbol by using a first antenna and transmit the rotated symbol by using a second antenna, so that channel conditions of the multiple pieces of user equipment are differentiated.
[0090] In this embodiment, the rotated symbol may be expressed as:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
[0091] where, S1 and S2 are symbols respectively to be transmitted for first user equipment and second user equipment, θ is a predetermined phase value, k.sub.i is a factor in a frequency domain, and t.sub.i is a factor in a time domain.
[0092] In this embodiment, a rotation factor of the phase rotation introduces time disturbance and/or frequency disturbance into a channel, so that the channel fluctuates in the frequency domain and/or the time domain to differentiate the channel conditions of the multiple pieces of user equipment. The transmitting unit 1303 is configured to transmit the superimposed symbol by using the first antenna and transmit the rotated symbol by using the second antenna in the same time-frequency resource.
[0093]
[0094] As shown in
[0095] a scheduling unit 1401 configured to select multiple pieces of user equipment according to the channel conditions to perform NOMA scheduling.
[0096] As shown in
[0097] a transforming unit 1402 configured to equivalently transform the superimposed symbol to which the first antenna corresponds into a product of the rotated symbol and a phase reverse rotation coefficient; and
[0098] an interleaving unit 1403 configured to interleave the rotated symbols in different time domain resources and/or frequency domain resources;
[0099] and the transmitting unit 1303 is further configured to transmit the interleaved symbols by using the first antenna after multiplying them by the phase reverse rotation coefficient, and transmit the interleaved symbols directly by using the second antenna.
[0100] For example, the product of the rotated symbol and the phase reverse rotation coefficient may be expressed as:
(s.sub.1+s.sub.2)e.sup.jθk.sup.
(s.sub.1+s.sub.2)e.sup.jθt.sup.
(s.sub.1+s.sub.2)e.sup.jθk.sup.
[0101] where, S1 and S2 are symbols respectively to be transmitted for first user equipment and second user equipment, θ is a predetermined phase value, k.sub.i is a factor in a frequency domain, and t.sub.i is a factor in a time domain.
[0102] In this embodiment, different pieces of user equipment performing the NOMA may use different phase rotation values. Furthermore, a phase value of the phase rotation is configured for the user equipment explicitly by the apparatus 1400 or acquired by the user equipment implicitly.
[0103] This embodiment further provides a transmitting device, configured with the apparatus 1300 or 1400 as described above.
[0104]
[0105] The transmitting device 1500 may carry out the method for transmitting a signal described in Embodiment 1. And the central processing unit 200 may be configured to carry out the functions of the apparatus 1300 or 1400, that is, the central processing unit 200 may be configured to perform the following control: superimposing symbols which are to be transmitted to multiple pieces of user equipment to form a superimposed symbol; performing phase rotation on the superimposed symbol to form a rotated symbol; and transmitting the superimposed symbol by using a first antenna and transmitting the rotated symbol by using a second antenna, so that channel conditions of the multiple pieces of user equipment are differentiated.
[0106] Furthermore, as shown in
[0107] It can be seen from the above embodiment that, by forming the rotated symbol by performing phase rotation on the superimposed symbol and transmitting the superimposed symbol by using the first antenna and transmitting the rotated symbol by using the second antenna, channel conditions of multiple pieces of user equipment may be differentiated, and gains of NOMA in a microcell may be fully brought into play. Furthermore, with the transform and interleaving of the phase rotation symbols, gains of a signal spatial diversity may be created and utilized.
Embodiment 3
[0108] The embodiment of this disclosure provides a communications system, with contents identical to those in Embodiment 1 or 2 being not going to be described herein any further.
[0109] The base station 1601 is configured to superimpose symbols which are to be transmitted to multiple pieces of user equipment 1602 to form a superimposed symbol, perform phase rotation for the superimposed symbol to form a rotated symbol, and transmit the superimposed symbol by using a first antenna and transmits the rotated symbol by using a second antenna, so that channel conditions of the multiple pieces of user equipment 1602 are differentiated.
[0110] The above apparatuses and methods of the present disclosure may be implemented by hardware, or by hardware in combination with software. The present disclosure relates to such a computer-readable program that when the program is executed by a logic device, the logic device is enabled to carry out the apparatus or components as described above, or to carry out the methods or steps as described above. The present disclosure also relates to a storage medium for storing the above program, such as a hard disk, a floppy disk, a CD, a DVD, and a flash memory, etc.
[0111] One or more functional blocks and/or one or more combinations of the functional blocks in the drawings may be realized as a universal processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware component or any appropriate combinations thereof. And they may also be realized as a combination of computing equipment, such as a combination of a DSP and a microprocessor, multiple processors, one or more microprocessors in communications combination with a DSP, or any other such configuration.
[0112] The present disclosure is described above with reference to particular embodiments. However, it should be understood by those skilled in the art that such a description is illustrative only, and not intended to limit the protection scope of the present disclosure. Various variants and modifications may be made by those skilled in the art according to the principle of the present disclosure, and such variants and modifications fall within the scope of the present disclosure.