This application claims the benefit of Taiwan application Serial No. 105139705, filed Dec. 1, 2016, the disclosure of which is incorporated by reference herein in its entirety.
The disclosure relates to a communication controlling method, a communication controlling system, a base station and a server.
Demands on both wired and wireless network communications have grown exponentially in the recent years. Providing users with better communication quality and communication speed is an essential task needing to be tackled and resolved. Various research organizations are currently focusing on and preparing development of next generation communication technologies. To enhance communication performance, technologies that can be looked into include increasing bandwidth, improving spectrum utilization efficiency and increasing the density of base stations.
Increasing the density of base stations implies that, severe signal interference is caused when the same frequency band is used in the same period. Therefore, there is a need for a solution for the above issue.
The disclosure is directed to a communication controlling method, a communication controlling system, a base station and a server.
According to an embodiment of the disclosure, a communication controlling method is provided. The communication controlling method includes obtaining a frequency-domain channel information by a first communication device, transforming the frequency-domain channel information into a compressed data according to a sensing matrix by the first communication device, transmitting the compressed data to a second communication device by the first communication device, restoring the compressed data to a time-domain channel information by the second communication device, and transforming the time-domain channel information into the frequency-domain channel information by the second communication device.
According to another embodiment of the disclosure, a communication controlling system is provided. The communication controlling system includes a first communication device and a second communication device. The first communication device is configured to obtain a frequency-domain information, transform the frequency-domain channel information into a compressed data and transmit the compressed data. The second communication device is configured to receive the compressed data, restore the compressed data to a time-domain channel information and transform the time-domain channel information into the frequency-domain channel information.
According to an embodiment of the disclosure, a base station is provided. The base station includes a reference signal receiving unit and a compressing unit. The reference signal receiving unit is configured to receive a reference signal to obtain a frequency-domain channel information. The compressing unit transforms the frequency-domain information into a compressed data according to a sensing matrix. The compressed data is transmitted to a server.
According to yet another embodiment of the disclosure, a server is provided. The server includes a compressed data receiving unit, a restoring unit and a transforming unit. The compressed data receiving unit is configured to obtain a compressed data. The restoring unit is configured to restore the compressed data to a time-domain channel information. The transforming unit is configured to transform the time-domain channel information into the frequency-domain channel information.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
The server 120 is configured to include a compressed data receiving unit 121, a restoring unit 122, a transforming unit 123 and a storage unit 124. The compressed data receiving unit 121 is, for example but not limited to, at least one of an antenna, an RF chip, a circuit board, an amplifying circuit or the combination thereof that is configured to receive signals. Each of the restoring unit 122 and the transforming unit 123 is, for example but not limited to, a circuit, a chip, a circuit board or a recording device storing multiple sets of program codes that is configured to perform various processes and operations. The storage unit 124 is, for example but not limited to, a memory, a hard drive, a portable disk or a cloud storage center that is configured to store data.
The user equipment 130 is configured to include a reference signal generating unit 131. The reference signal generating unit 131 is, for example but not limited to, a circuit, a chip, a circuit board or a recording device storing multiple sets of program codes that is configured to generate various kinds of signals.
Operations of the above components are given in detailed with reference to a flowchart according to an embodiment below.
In step S110, the reference signal receiving unit 111 of the base station 110 is configured to obtain frequency-domain channel information h. For example, the frequency-domain channel information h is a matrix of equation (1) below:
For example, the frequency-domain channel information h is obtained by measuring the channel from the user equipment 130 to the base station 110. After a reference signal generated by the user equipment 130 passes changes of the channel and is received by the reference signal receiving unit 111 of the base station 110, information of the channel is estimated by channel estimation to provide the frequency-domain channel information h.
In step S120, the compressing unit 112 of the base station 110 is configured to transform the frequency-domain channel information h into a compressed data y according to a sensing matrix A. In an embodiment, according to a parameter of a compression ratio, the estimated frequency-domain channel information h may be randomly linearly combined, and the sensing matrix A is a random linear combiner matrix. For example, the sensing matrix A may be stored in the storage unit 113 in advance, and may be, for example, a matrix in equation (2) below:
The frequency-domain channel information h is transformed into the compressed data y according to equation (3) below. That is to say, the compressed data y is a linear combination of a part of data of the frequency-domain channel information h.
As such, the frequency-domain channel information h having a length of 8 is compressed to the compressed data y having a length of 3.
In step S130, the compressing unit 112 of the base station 110 is configured to transmit the compressed data y to the compressed data receiving unit 121 of the server 120 through a feedback network 900 (in FIG. 1).
In step S140, the restoring unit 122 of the server 120 is configured to restore the compressed data y to a time-domain channel information s. In this step, the restoring unit 122 is configured to obtain the time-domain channel information s according to equation (4) below. The sensing matrix A and a fast Fourier transform (FFT) matrix F may be stored in the storage unit 124 in advance. The obtained time-domain channel information s is represented in equation (5) below:
In step S150, the transforming unit 123 of the server 120 is configured to transform the time-domain channel information s into the frequency-domain channel information h through an FFT algorithm. In this step, the transforming unit 123 is configured to obtain the frequency-domain channel information h using the FFT matrix F stored in the storage unit 124 in advance according to equation (6) below:
As such, the base station 110 is required to transmit the compressed data y only having a length of 3, and the frequency-domain channel information h having a length of 8 can then be restored at the server 120, which is equivalently lowering the data size by 62.5% and thus reducing the amount of bandwidth occupied.
In another embodiment, the sensing matrix A may be stored in the base station 110 and the server 120 in advance instead of being transmitted, and so no transmission bandwidth is occupied.
Further, the compressive sensing technology adopted is low-loss compression or lossless compression, in a way that the frequency-domain channel information h may be truly restored.
Further, the user equipment 130 need not perform any FFT operation, so as to prevent additional power consumption of the user equipment 130.
In another embodiment, the sensing matrix A may be adjusted according to a sparsity to better lower the data size.
In an embodiment, in step S160, according to the sparsity of the time-domain channel information s, the adjusting unit 125 of the server 120′ is configured to notify the compressing unit 112′ of the base station 110′ to adjust the sensing matrix A by a notification message CT. In an embodiment, a plurality of candidate matrices may be stored in the storage unit 113 of the base station 110′ in advance, and the sensing matrix A is one selected from these candidate matrices. That is to say, after the sensing matrix A is adjusted, through communication and coordination of the adjusting unit 125, contents of the sensing matrix A adopted by the server 120′ and the base station 110′ are still identical, such that the server 120′ may restore the original frequency-domain channel information h.
According to the above embodiments, adopting the compressive sensing technology provides a more apparent compression ratio and reduces the amount of bandwidth occupied. Further, the sensing matrix A adopted need not be transmitted in a way that no transmission bandwidth is occupied. Further, the frequency-domain channel information h is more truly restored, while no excessive power consumption of the user equipment 130 is additionally produced during the operation process. Further, the sensing matrix A is adjustable according to the sparsity to obtain a better compression effect.
It is intended that the specification and examples be considered as only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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105139705 | Dec 2016 | TW | national |