The present invention relates to a technology for improving a transmission capacity in a case in which there is a propagation delay difference between abase station device and each of terminal station devices in a wireless communication system in which the base station device and a plurality of terminal station devices communicate with each other using time division multiplexing in a duplex operation system.
In a wireless communication system using time division multiplexing (hereinafter, referred to as time division duplex (TDD)) in a duplex operation system, switching between a downlink signal (DL) from a base station device to a terminal station device and an uplink signal (UL) from the terminal station device to the base station device is necessary. At the time of switching between the DL and the UL, a guard time (a standby time) used for preventing a collision between signals is provided. Here, by providing a guard time longer than a propagation delay for a transmission distance between the DL and the UL, a collision between the DL and the UL can be avoided. For example, a method of determining a guard time in accordance with a predicted propagation delay may be considered (see NPL 1).
However, in a case in which there is a difference in propagation delays of terminal station devices in a wireless communication system in which a base station device and a plurality of terminal station devices communicate with each other using time division multiplexing in a duplex operation system, a guard time is set in accordance with a terminal station device of which a propagation delay is long. At this time, a surplus standby time occurs in a terminal station device of which a propagation delay is relatively short among the plurality of terminal station devices. Particularly, in a case in which a propagation delay difference between a terminal station device of which a propagation delay is long and a terminal station device of which a propagation delay is short is large, there is a problem of the transmission capacity being decreased.
An object of the present invention is to provide a wireless communication system, abase station device, and a wireless communication method capable of improving a transmission capacity by shortening a surplus standby time by changing a frame configuration in a case in which there are differences between propagation delays of a plurality of terminal station devices using time division multiplexing in a duplex operation system.
According to the present invention, there is provided a wireless communication system in which propagation delays between a plurality of terminal station devices and a base station device, which use time division multiplexing in a duplex operation system, are different from each other, in which at least one of the base station device or the terminal station devices includes a delay calculating unit that calculates the propagation delay for each of the terminal station devices, and the base station device includes a control unit that changes a frame configuration of at least one of an uplink frame or a downlink frame such that a standby time required for switching between the uplink frame from the terminal station device to the base station device and the downlink frame from the base station device to the terminal station device is shortened in accordance with the propagation delay for each of the terminal station devices calculated by the delay calculating unit.
In addition, according to the present invention, there is provided a base station device performing wireless communication with a plurality of terminal station devices, of which propagation delays are different from each other, using time division multiplexing in a duplex operation system, the base station device including: a delay calculating unit that calculates the propagation delay for each of the terminal station devices; and a control unit that changes a frame configuration of at least one of an uplink frame or a downlink frame such that a standby time required for switching between the uplink frame from the terminal station device to the base station device and the downlink frame from the base station device to the terminal station device is shortened in accordance with the propagation delay for each of the terminal station devices calculated by the delay calculating unit.
In addition, according to the present invention, there is provided a wireless communication method in which propagation delays between a plurality of terminal station devices and a base station device, which use time division multiplexing in a duplex operation system, are different from each other, the wireless communication method including: performing a delay calculating process of calculating the propagation delay for each of the terminal station devices by using at least one of the base station device or the terminal station devices; and performing a control process of changing a frame configuration of at least one of an uplink frame or a downlink frame such that a standby time required for switching between the uplink frame from the terminal station device to the base station device and the downlink frame from the base station device to the terminal station device is shortened in accordance with the propagation delay for each of the terminal station devices calculated in the delay calculating process by using the base station device.
According to a wireless communication system, a base station device, and a wireless communication method according to the present invention, a transmission capacity can be improved by shortening a surplus standby time by changing a frame configuration in a case in which there are differences between propagation delays of a plurality of terminal station devices using time division multiplexing in a duplex operation system.
Hereinafter, a wireless communication system, a base station device, and a wireless communication method according to embodiments of the present invention will be described with reference to the drawings.
In
The base station device 101 includes a plurality of antennas 201 and performs communication with a plurality of terminal station devices 102 using multi user (MU)-multiple input multiple output (MIMO). In addition, in the wireless communication system 100, TDD is used in a duplex operation system, and a signal of a downlink (DL) and a signal of an uplink (UL) are time-divisionally multiplexed. Although an MU-MIMO system will be described in each of the embodiments described below, a similar effect can be acquired also in a case in which a propagation delay difference between the base station device 101 and the terminal station devices 102 is large in a point to multi point (P-MP) system or the like. For example, whether or not the propagation delay difference is large may be determined on the basis of whether or not the propagation delay difference is equal to or larger than a sub-frame length. Alternatively, whether or not the propagation delay difference is large may be determined on the basis of whether a transmission capacity is improved by a predetermined rate (for example, 5%) or more by using the transmission capacity as a criterion. In this way, in a case in which the propagation delay difference is large, change of a frame configuration described in each of the embodiments described below may be performed.
In
Here, a transmission distance between the base station device 101 and the terminal station device 102(1) is longer than a transmission distance between the base station device 101 and the terminal station device 102(2), and thus the propagation delay Td1 is longer than the propagation delay Td2. At this time, a propagation delay difference Ids between the terminal station device 102(1) and the terminal station device 102(2) is given as in Equation (1).
T
ds=ABS(Td1−Td2) (1)
In Equation (1), ABS(x) represents an absolute value of x.
For example, in a case in which a difference between distances to the terminal station device 102(1) and the terminal station device 102(2) from the base station device 101 is 30 km, a propagation delay difference Ids between a propagation delay Td1 of the terminal station device 102(1) and a propagation delay Td2 of the terminal station device 102(2) is about 200 μsec in a round trip.
In a case in which the terminal station device 102(1) and the terminal station device 102(2) perform communication with the base station device 101 using TDD using frames of the same length, a guard time (GT) is set in accordance with the terminal station device 102(1) of which a propagation delay is long such that there is no collision between frames of the UL and the DL. In this case, a surplus standby time occurs between a frame of the UL and a frame of the DL in the terminal station device 102(2) of which the propagation delay is shorter than that of the terminal station device 102(1), and there is a problem in that the transmission capacity is decreased.
Thus, the wireless communication system 100 described in each of embodiments to be described below changes the frame configuration such that the transmission capacity is increased by shortening a surplus standby time of the terminal station device 102(2) of which the propagation delay is shorter than that of the terminal station device 102(1). More specifically, a payload length is extended such that the surplus standby time is shortened in a range in which a collision between the UL and the DL does not occur.
[Example of Frame Configuration of Comparative Example]
In
In the example illustrated in
In the period TDL, a frame of the DL transmitted from the antenna 201(1) of the base station device 101 is received by the terminal station device 102(1), and a propagation delay at that time is Tai. In addition, a frame of the DL transmitted from the antenna 201(2) of the base station device 101 is received by the terminal station device 102(2), and a propagation delay at that time is Tae. The propagation delay Td1 of the terminal station device 102(1) is longer than the propagation delay Td2 of the terminal station device 102(2), and thus a GT is set in accordance with the propagation delay Tai. More specifically, a time acquired by adding a margin to Td1 is set as the GT. For this reason, a surplus standby time from the end of a frame received by the terminal station device 102(2) to the end of a frame received by the terminal station device 102(1) occurs. In the example illustrated in
On the other hand, in the UL, a frame of the UL transmitted from the terminal station device 102(1) to the base station device 101 is received by the antenna 201(1) of the base station device 101, and a propagation delay at that time is Td1. In addition, a frame of the UL transmitted from the terminal station device 102(2) to the base station device 101 is received by the antenna 201(2) of the base station device 101, and a propagation delay at that time is Tae. For this reason, a surplus standby time corresponding to a propagation delay difference Ids from the end of the frame of the terminal station device 102(2) received by the base station device 101 occurs.
In this way, in a case in which the frame configuration is not changed, in the terminal station device 102(2) of which a propagation delay is short, compared to the terminal station device 102(1) of which a propagation delay is long, a surplus standby time occurs between a frame of the DL and a frame of the UL, and there is a problem in that a transmission capacity is decreased.
[Example of Frame Configuration Common to Embodiments]
In
In addition, similar to the comparative example illustrated in
In the example illustrated in
Here, a period TDL of a downlink including a GT and a period TUL of an uplink including a GT are the same as those of the comparative example illustrated in
In this way, in the example illustrated in
Here, the base station device 101 may change at least one of a modulation system and an encoding system to a system that is strong for data error in accordance with an increase in the transmission capacity according to extension of the payload lengths. In accordance with this, communication quality and reliability of the wireless communication system 100 are improved. A combination of a modulation system and an encoding system is given as a modulation and coding scheme (MCS) index. For example, when the MCS index becomes smaller, the transmission capacity becomes smaller, and the combination becomes stronger for data error. Thus, by decreasing the MCS index in correspondence with an increase in the transmission capacity according to extension of the payload lengths, the communication quality and the reliability can be improved without changing the transmission capacity.
In
Similar to the examples illustrated in
In the example illustrated in
Here, the frame of DL2 of the terminal station device 102(2) is longer than the frame of DL1 of the terminal station device 102(1), and a guard time GT2 of the terminal station device 102(2) is shorter than a guard time GT1 of the terminal station device 102(1).
In the case of
In this way, in the example illustrated in
In the example illustrated in
(Configuration Example of Base Station Device 101)
In
The antennas 201(1) to 201(N) convert high frequency signals output by the transmission/reception unit 202 into electromagnetic waves and transmits the electromagnetic waves to the terminal station device 102(1) to the terminal station device 102(N). To the contrary, the antennas 201(1) to 201(N) convert electromagnetic waves transmitted by the terminal station device 102(1) to the terminal station device 102(N) into high frequency signals and outputs the high frequency signals to the transmission/reception unit 202. In
The transmission/reception unit 202 converts a transmission signal for each terminal station device 102 into a high frequency signal and outputs the converted high frequency signals to the N antennas 201 and converts a high frequency signal input from each of the N antennas 201 into reception signals from each terminal station device 102. In the example illustrated in
The control unit 203 is configured using a computer operating in accordance with a program stored in advance and performs overall control of the base station device 101. For example, the control unit 203 performs a process of measuring a propagation delay between the base station device 101 and the terminal station device 102 and changing a frame configuration such that the surplus standby time described with reference to
The delay measurement signal generating unit 204 generates a measurement signal determined in advance for measuring a propagation delay (referred to as a propagation delay measurement signal) in accordance with an instruction of the control unit 203 and outputs the generated propagation delay measurement signal to the transmission/reception unit 202. As the propagation delay measurement signal, for example, an M sequence sign or the like is used. Here, the propagation delay measurement signal may be transmitted before start of data communication or may be transmitted during data communication. In addition, a method for performing measurement as required during data communication by adding the propagation delay measurement signal to the start of the frame of communication data will be described below.
The delay calculating unit 205 calculates a propagation delay between the base station device 101 and each terminal station device 102 on the basis of information received from the N terminal station devices 102 (corresponding to a delay calculating process). Thereafter, the delay calculating unit 205 outputs the calculated propagation delay to the control unit 203. In the example illustrated in
When the control unit 203 changes the frame configuration, the frame configuration notifying unit 206 performs a process of notifying the terminal station device 102 of information of the changed frame configuration. Here, as a method for notifying the terminal station device 102 of the frame configuration information, a method of storing frame configuration information in a header of communication data and transmitting the stored frame configuration information to the terminal station device 102 may be considered. Alternatively, a method of transmitting information of a frame configuration to the terminal station device 102 as independent control data before start of communication separately from communication data may be considered.
The data communication unit 207 converts communication data, for example, input from a network or a communication device connected to the outside into a transmission signal on the basis of the frame configuration output by the control unit 203 and transmits the converted transmission signal to each of the N terminal station devices 102. In addition, the data communication unit 207 converts a reception signal received from each of the N terminal station devices 102 into communication data and outputs the converted communication data to a network and a communication device connected to the outside. Here, as described above, in a case in which frame configuration information is transmitted to the terminal station device 102 with being stored in the header of communication data, the data communication unit 207 stores the frame configuration information output from the frame configuration notifying unit 206 in the header of the communication data.
In this way, the base station device 101 can shorten the surplus standby time described with reference to
(Configuration Example of Terminal Station Device 102)
In
The antenna 301 converts a high frequency signal output by the transmission/reception unit 302 into an electromagnetic wave, transmits the electromagnetic wave to the base station device 101, converts an electromagnetic wave transmitted by the base station device 101 into a high frequency signal, and outputs the high frequency signal to the transmission/reception unit 302. In this embodiment, the antenna 301 performs communication with N antennas 201 from an antenna 201(1) to an antenna 201(N) of the base station device 101 using MU-MIMO.
The transmission/reception unit 302 converts a transmission signal into a high frequency signal, outputs the high frequency signal to the antenna 301, and converts a high frequency signal input from the antenna 301 into a reception signal.
The signal returning unit 303 returns and outputs the propagation delay measurement signal received by the transmission/reception unit 302 to the transmission/reception unit 302.
The frame configuration changing unit 304 instructs the data communication unit 305 of a frame configuration used for transmission data and reception data on the basis of information of a frame configuration received from the base station device 101. Here, as described above, in a case in which the base station device 101 transmits frame configuration information with being stored in the header of communication data, the frame configuration changing unit 304 extracts the frame configuration information from reception data of the data communication unit 305 and instructs the data communication unit 305 of the frame configuration. Alternatively, in a case in which the base station device 101 transmits frame configuration information using control data other than communication data before start of communication or during communication, the frame configuration changing unit 304 receives the control data and instructs the data communication unit 305 of the frame configuration. In addition, the function of the frame configuration changing unit 304 may be included in the data communication unit 305.
The data communication unit 305 converts transmission data into a transmission signal on the basis of the frame configuration instructed from the frame configuration changing unit 304 and transmits the transmission signal from the transmission/reception unit 302 to the base station device 101. In addition, the data communication unit 305 converts a reception signal received by the transmission/reception unit 302 from the base station device 101 into reception data.
In this way, the terminal station device 102 returns back the propagation delay measurement signal received from the base station device 101 such that the base station device 101 can measure a round-trip propagation delay. Then, the terminal station device 102 is able to communicate with the base station device 101 for transmission data and reception data on the basis of the frame configuration notified from the base station device 101.
(Example of Processing Sequence)
In Step S101, the delay measurement signal generating unit 204 of the base station device 101 generates a propagation delay measurement signal and transmits the generated propagation delay measurement signal from the transmission/reception unit 202 to the terminal station device 102.
In Step S102, the signal returning unit 303 of each terminal station device 102 receives the propagation delay measurement signal from the base station device 101.
In Step S103, the signal returning unit 303 of each terminal station device 102 returns and transmits the propagation delay measurement signal received from the base station device 101 to the base station device 101.
In Step S104, the delay calculating unit 205 of each base station device 101 receives the propagation delay measurement signal that is returned and transmitted from a plurality of terminal station devices 102 and calculates a propagation delay for each of the terminal station devices 102.
In Step S105, the control unit 203 of the base station device 101 calculates a surplus standby time on the basis of the propagation delay for each of the plurality of terminal station devices 102 acquired in Step S104. For example, in the case of
In Step S106, the frame configuration notifying unit 206 of the base station device 101 changes the frame configuration on the basis of the surplus standby time calculated in Step S105 and transmits information of the changed frame configuration to the terminal station device 102. The change of the frame configuration is performed for each of the plurality of terminal station devices 102. For example, in the case illustrated in
In Step S107, the frame configuration changing unit 304 of each terminal station device 102 changes the frame configuration on the basis of the information of the frame configuration notified from the base station device 101.
In Step S108, the data communication unit 207 of the base station device 101 performs MU-MIMO communication with the plurality of terminal station devices 102 using the frame configuration changed in Step S106.
In Step S109, the data communication unit 305 of each terminal station device 102 performs MU-MIMO communication with the base station device 101 using the frame configuration changed in Step S107.
In this way, in the wireless communication system 100 according to the first embodiment, the base station device 101 can measure a propagation delay for each of the plurality of terminal station devices 102 and change the frame configuration such that the surplus standby time as described with reference to
In this way, the surplus standby time described with reference to
In addition, in
In
(Configuration Example of Base Station Device 101a)
In
Here, the configuration of the base station device 101a is basically the same as that of the base station device 101 according to the first embodiment, and thus the delay calculating unit 205a of which an operation is different will be described.
The delay calculating unit 205a receives information about a detection timing of a propagation delay measurement signal, which has been transmitted from the base station device 101a, in the terminal station device 102a from the terminal station device 102a. The information of a detection timing, for example, is information of a detection time of a propagation delay measurement signal, which has been transmitted from the base station device 101a, in the terminal station device 102a. In this case, it is assumed that time synchronization has been established between the base station device 101a and the terminal station device 102a using a global positioning system (GPS) or the like. On the other hand, the delay calculating unit 205a can acquire information of a transmission time of a propagation delay measurement signal from the delay measurement signal generating unit 204. Then, the delay calculating unit 205a calculates a difference between a reception time and a transmission time notified from the plurality of terminal station devices 102a as a propagation delay of each of the terminal station devices 102a (corresponding to a delay calculation process). The propagation delay calculated by the delay calculating unit 205a is output to the control unit 203. The control unit 203 changes the frame configuration on the basis of the propagation delay of each terminal station device 102a calculated by the delay calculating unit 205a.
A subsequent process is the same as that of the base station device 101 and the terminal station device 102 according to the first embodiment.
In this way, the base station device 101a measures a propagation delay for each of the N terminal station devices 102a and changes the frame configuration of communication data, thereby being able to shorten a surplus standby time described with reference to
(Configuration Example of Terminal Station Device 102a)
The terminal station device 102a includes an antenna 301, a transmission/reception unit 302, a frame configuration changing unit 304, a data communication unit 305, a delay measurement signal detecting unit 311, and a detection timing notifying unit 312.
Here, processes of the antenna 301, the transmission/reception unit 302, the frame configuration changing unit 304, and the data communication unit 305 are the same as those of the terminal station device 102 according to the first embodiment, and thus duplicate description will be omitted. The terminal station device 102a according to the second embodiment does not have the signal returning unit 303 of the terminal station device 102 according to the first embodiment but includes the delay measurement signal detecting unit 311 and the detection timing notifying unit 312.
The delay measurement signal detecting unit 311 detects a propagation delay measurement signal received by the transmission/reception unit 302 and outputs a detection timing (a detection time point) to the detection timing notifying unit 312.
The detection timing notifying unit 312 transmits information of the detection timing input from the delay measurement signal detecting unit 311 from the transmission/reception unit 302 to the base station device 101a. Here, the detection timing notifying unit 312 may transmit information of the detection timing to the base station device 101 with being stored in the header of communication data or may transmit information of the detection timing to the base station device 101 using control data other than the communication data.
Thus, the terminal station device 102a notifies the base station device 101a of the detection timing of the propagation delay measurement signal received from the base station device 101a such that the base station device 101a can measure a propagation delay. Then, the terminal station device 102a transmits/receives communication data to/from the base station device 101a on the basis of the frame configuration notified from the base station device 101a.
(Example of Processing Sequence)
In
In Step S102a, the delay measurement signal detecting unit 311 of each terminal station device 102a detects a propagation delay measurement signal received from the base station device 101a and outputs a detection timing (a detection time point) to the detection timing notifying unit 312.
In Step S103a, the detection timing notifying unit 312 of each terminal station device 102a transmits information of the detection timing input from the delay measurement signal detecting unit 311 to the base station device 101a.
In Step S104a, the delay calculating unit 205a of the base station device 101a receives the information of the detection timing from the plurality of terminal station devices 102a and calculates a propagation delay for each terminal station device 102a.
Thereafter, the processes of Step S105 to Step S109 are performed similar to those illustrated in
In this way, in the wireless communication system 100a according to the second embodiment, the base station device 101a measures a propagation delay for each of the plurality of terminal station devices 102a and changes the frame configuration such that the surplus standby time as described with reference to
In accordance with this, the surplus standby time described with reference to
Here, in the second embodiment, although an example in which a propagation delay is calculated by transmitting a propagation delay measurement signal before start of data communication is illustrated, a propagation delay may be measured at any time during data communication by storing the propagation delay measurement signal in the header of a frame of the communication data.
In addition, in
The wireless communication system 100b according to the third embodiment is the same as the wireless communication system 100 illustrated in
Although the base station device 101b and the terminal station device 102b according to the third embodiment are composed of blocks that are basically the same as those according to the first embodiment, operations of a delay calculating unit 205 and a control unit 203 are slightly different from those according to the first embodiment. In the third embodiment, the delay calculating unit 205 illustrated in
In the third embodiment, a correlation of propagation delay measurement signals communicated between the base station device 101b and the terminal station device 102b is calculated, and not only a propagation delay but also a delay time of a delayed wave according to multiple paths and the like is acquired. Thereafter, the base station device 101b changes the frame configuration with the delay time of the delayed wave taken into account. More specifically, the base station device 101b changes the frame configuration such that not ends of frames of a direct wave but ends of frames of a delayed wave do not collide with each other at the time of switching between the DL and the UL.
In
In Step S104b, the base station device 101b receives a propagation delay measurement signal that is returned and transmitted from the plurality of terminal station devices 102b and calculates a propagation delay for each terminal station device 102b. In addition, the base station device 101b acquires a delay time of a delayed wave with which a propagation delay measurement signal received from the plurality of terminal station devices 102b is received with a delay due to a multi-path and the like. The delay time can be acquired by taking a sliding correlation of propagation delay measurement signals received by the base station device 101b.
In Step S105b, the base station device 101b calculates a surplus standby time on the basis of the propagation delay and the delay time of the delayed wave for each of the plurality of terminal station devices 102b acquired in Step S104b. For example, in the case of
Thereafter, processes of Step S106 to Step S109 are performed similar to those illustrated in
In this way, in the wireless communication system 100b according to the third embodiment, the base station device 101b calculates a surplus standby time by measuring a propagation delay and a delay time of the delayed wave for each of the plurality of terminal station devices 102b and changes the frame configuration.
In accordance with this, the surplus standby time described with reference to
As described above, according to a wireless communication system, a base station device, and a wireless communication method according to the present invention, the frame configuration is changed in a case in which a propagation delay difference between the plurality of terminal station devices using time division multiplexing in a duplex operation system is large, thereby being able to shorten a surplus standby time and improve the transmission capacity.
In addition, the present invention can be applied to any system in which there are a plurality of terminal station devices, and a propagation delay difference occurs regardless of a communication system thereof. In each of the embodiments described above, although the MU-MIMO system employing TDD as a duplex operation system has been described as an example, the present invention can be applied also to an SISO system performing P-MP communication and the like.
In addition, the processes performed by the delay calculating unit 205 (the delay calculating unit 205a) and the control unit 203 of the base station device 101 (the base station device 101a and the base station device 101b) according to each of the embodiments described with reference to
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/023235 | 6/12/2020 | WO |