The present invention relates to a band sharing communication system where a primary system with higher priority and a secondary system with lower priority share frequency bands, a line control method, a line control device and a line control program.
In an FDMA (Frequency Division Multiple Access) scheme, multiple users share frequency bands to perform communications. For example, a primary terminal station A of a primary system with higher priority and a secondary terminal station B of a secondary system with lower priority are respectively allocated frequency bands under the control of a common base station. The same applies to where the primary system and the secondary system are independent of each other with an independent base station provided for each system and a common line control device allocates the frequency bands of the primary system and the secondary system.
In such cases, it is desired to increase frequency utilization efficiency by minimizing vacant bands. For example, an OFDM (Orthogonal Frequency Division Multiplexing) scheme, which is an approach to multiplexing subcarriers of narrow bands, can make a frequency spectrum steep and increase frequency utilization efficiency by reducing transition areas in the spectrum. In satellite communications, a scheme with a roll-off rate of 0.02 has been adopted as a standard also in single carrier schemes and there is an increasing demand for improved frequency utilization efficiency.
Against such a background, there have been studies on approaches to making effective utilization of a frequency band by utilizing vacant bands as much as possible among multiple communication services.
For example, Non-Patent Literature 1 proposes spectrum division transmission which seeks effective utilization of frequency by dividing a band of a single carrier with respect to a vacant band. This enables the vacant band to be filled with the band divided into narrow bands regardless of what kind of carrier the band of an actual signal is.
Non-Patent Literature 2 is a method of making effective use of frequency by using an optimal priority control for an application in allocation of time-frequency resource blocks in OFDMA (Orthogonal Frequency Division Multiple Access), used in the downlink of the LTE system.
Such an approach where a base station (or a line control device) dynamically manages bands and allocates an optimal resource arrangement to terminal stations can achieve flexible priority control by using a communication scheme having high degree of freedom in time-frequency width.
Non-Patent Literature 1: J. Abe, F. Yamashita and K. Kobayashi, “Direct spectrum division transmission for highly efficient satellite communications.”, 2010 5th Advanced Satellite Multimedia Systems Conference and the 11th Signal Processing for Space Communications Workshop, pp. 401-40 6, 2010.
Non-Patent Literature 2: T. Erpek, A. Abdelhadi and T. C. Clancy, “An optimal application-aware resource block scheduling in LTE”, 2015 International Conference on Computing, Networking and Communications (ICNC), pp. 2 75-279, 2015.
Here, consider a case where a prescribed frequency band is efficiently shared under the following constraints:
(1) The band is shared by multiple systems.
(2) An order of priorities exists among the systems.
(3) The systems are each independent and basically operate on different frequencies according to the FDMA scheme.
(4) A bandwidth of a carrier transmitted by a station in each system is fixed and does not permit flexible arrangement such as changing the bandwidth as a function of vacant bands or divided arrangement with subcarriers like the spectrum division transmission technique of Non-Patent Literature 1 or in OFDMA, for example.
(5) A base station has no function of dynamically allocating resource to each terminal station.
With these constraints, a resource block has to be split along the frequency axis and moreover allocation must be continuous.
Then, it is impossible to make effective use of vacant bands by distributed arrangement in the frequency domain like Non-Patent Literature 1 or by allocation in the time domain like Non-Patent Literature 2.
Further, as dynamic and flexible band allocation is not possible, bands must be allocated pursuant to a certain defined policy and conventional approaches cannot be utilized.
An object of the present invention is to provide a band sharing communication system that allows systems with different priorities of band occupation to keep track of utilization of an entire band and can achieve efficient band sharing only with band allocation and line disconnection, and a line control method, a line control device and a line control program.
A first aspect of the present invention provides a band sharing communication system in which there are a primary system and a secondary system in descending order of priority of communication, the systems share frequency bands, and a base station or a line control device performs allocation of a requested band of a terminal station of each system. The base station or the line control device includes: occupied band setting means for setting a primary occupied band and a secondary occupied band adjacent to the primary occupied band; band allocation means for allocating a vacant band of the primary occupied band with respect to a requested band of a primary terminal station and allocating a vacant band of the secondary occupied band with respect to a requested band of a secondary terminal station; and band transferring means for, when there is no vacant band in the primary occupied band with respect to a requested band of the primary terminal station, transferring a band of the secondary occupied band from the secondary occupied band to the primary occupied band and allocating the band to the primary terminal station, said band being adjacent to the primary occupied band and equivalent to the requested band. The secondary terminal station is configured to, when the secondary terminal station is performing communication in the band equivalent to the requested band and being transferred from the secondary occupied band to the primary occupied band and detects degradation in communication quality due to interference with the primary terminal station, suspend said band and provide the band to the primary terminal station.
A second aspect of the present invention provides a line control method for a band sharing communication system in which there are a primary system and a secondary system in descending order of priority of communication, the systems share frequency bands, and allocation of a requested band of a terminal station of each system is performed. The method includes: an occupied band setting step of setting a primary occupied band and a secondary occupied band adjacent to the primary occupied band; a band allocation step of allocating a vacant band of the primary occupied band with respect to a requested band of a primary terminal station and allocating a vacant band of the secondary occupied band with respect to a requested band of a secondary terminal station; and a band transferring step of, when there is no vacant band in the primary occupied band with respect to a requested band of the primary terminal station, transferring a band of the secondary occupied band from the secondary occupied band to the primary occupied band and allocating the band to the primary terminal station, said band being adjacent to the primary occupied band and equivalent to the requested band. The secondary terminal station is configured to, when the secondary terminal station is performing communication in the band equivalent to the requested band and being transferred from the secondary occupied band to the primary occupied band and detects degradation in communication quality due to interference with the primary terminal station, suspend said band and provide the band to the primary terminal station.
A third aspect of the present invention provides a line control device for a band sharing communication system in which there are a primary system and a secondary system in descending order of priority of communication, the systems share frequency bands, and allocation of a requested band of a terminal station of each system is performed. The line control device includes: occupied band setting means for setting a primary occupied band and a secondary occupied band adjacent to the primary occupied band; band allocation means for allocating a vacant band of the primary occupied band with respect to a requested band of a primary terminal station and allocating a vacant band of the secondary occupied band with respect to a requested band of a secondary terminal station; and band transferring means for, when there is no vacant band in the primary occupied band with respect to a requested band of the primary terminal station, transferring a band of the secondary occupied band from the secondary occupied band to the primary occupied band and allocating the band to the primary terminal station, said band being adjacent to the primary occupied band and equivalent to the requested band, wherein the band equivalent to the requested band is provided through autonomous suspension of the secondary terminal station.
A fourth aspect of the present invention causes a computer to perform processing executed by the line control device according to the third aspect, so as to perform setting of each occupied band, allocation of a vacant band of each occupied band with respect to a requested band of each terminal station, and a transfer process from the secondary occupied band to the primary occupied band.
When bands utilized by the primary system with higher priority of band occupation and the secondary system with lower priority conflict with each other, the present invention can efficiently achieve band sharing by disconnecting a line on the side of the secondary system and transferring it to the primary system, thereby expanding the occupied band of the primary system and shrinking the occupied band of the secondary system.
According to the present invention, a system band is divided into segments and a primary system with higher priority and a secondary system with lower priority each occupy consecutive frequency bands in units of segments, as shown in
A base station or a line control device connected to the base station allocates vacant segments of the primary occupied band and the secondary occupied band in opposite directions to each another in response to band occupation requests from the primary terminal station and the secondary terminal station. For example, the primary terminal station is allocated vacant segments from the lower frequency side (segment 1), while the secondary terminal station is allocated vacant segments from the higher frequency side (segment 20). The respectively allocated segments are indicated to the primary terminal station and the secondary terminal station via control signals. The primary terminal station and the secondary terminal station occupy the allocated segments and start communication.
A feature of the present invention is that when there is a band occupation request from a further new primary terminal station while the primary system occupies all of the primary occupied band, the secondary occupied band adjacent to the primary occupied band is transferred to the primary occupied band in units of segments to expand the primary occupied band, thus addressing the band occupation request of the primary terminal station, as shown in
In
In
In
Here, a situation where the primary system occupies the segments 1 to 10 of the primary occupied band and the secondary system occupies the segments 20 to 11 of the secondary occupied band is shown in
A processing procedure when a new primary terminal station sends a band occupation request to the base station in this situation is described.
In
The base station allocates the segment transferred from the secondary occupied band as a vacant band of the primary occupied band (S14), and indicates the allocated band to the primary terminal station (S15). Whereupon, the base station performs an updating process to expand the primary occupied band and shrink the secondary occupied band (S1). The primary terminal station occupies the allocated segment (S16), and starts communication (S17). However, if the secondary terminal station is using the segment in question, signals of the primary terminal station and signals of the secondary terminal station interfere with each other such that the primary terminal station cannot start communication and communication quality is degraded for the secondary terminal station.
In
For the communication in the segment which has been suspended autonomously by the secondary terminal station, reconnection is made if there is a vacant segment in the secondary occupied band and the communication is simply discontinued if there is no vacant segment.
(When Vacant Segments Occur in the Primary Occupied Band and the Secondary Occupied Band)
When communication by the primary terminal station ends and vacant segments occur in the primary occupied band, different measures are taken depending on whether the primary occupied band and the secondary occupied band contain adjacent segments or not. When a segment adjacent to the secondary occupied band becomes vacant in the primary occupied band, the base station transfers consecutive vacant segments 14, 13 starting from segment 14 to the secondary occupied band from the primary occupied band and performs an updating process to shrink the primary occupied band and expand the secondary occupied band, as shown in
By contrast, when a segment other than the segment adjacent to the secondary occupied band becomes vacant in the primary occupied band, the base station leaves that vacant segment as it is and does not perform an updating process of the primary occupied band and the secondary occupied band, as shown in
When communication by the secondary terminal station ends and vacant segments occur in the secondary occupied band, the base station does not transfer the vacant segments of the secondary occupied band to the primary occupied band and maintains the secondary occupied band regardless of whether the primary occupied band and the secondary occupied band contain adjacent segments or not, as shown in
In
In
In
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/029097 | 7/24/2019 | WO |