Method and apparatus for transceiving channel related to terminal that supports half duplex transmission in mobile communication system
09832789 · 2017-11-28
Assignee
Inventors
- Hyoung Ju Ji (Seoul, KR)
- Young Bum Kim (Seoul, KR)
- Joon Young Cho (Gyeonggi-do, KR)
- Seung-Hoon Hoon Choi (Gyeonggi-do, KR)
Cpc classification
H04W72/23
ELECTRICITY
H04L5/16
ELECTRICITY
International classification
Abstract
A method and apparatus of a user equipment (UE) for transmitting and receiving data in a wireless communication system. The UE receives first time division duplex (TDD) uplink-downlink configuration information for a first cell and second TDD uplink-downlink configuration information for a second cell, determines whether a subframe in the first cell is a special subframe and the subframe in the second cell is a downlink subframe according to the first and second TDD uplink-downlink configuration information, and determine, if the subframe in the first cell is the special subframe and the subframe in the second cell is the downlink subframe, not to receive a signal on the second cell in orthogonal frequency division multiplexing (OFDM) symbols that overlaps with at least one of a guard period (GP) or uplink pilot time slot in the first cell.
Claims
1. A method to receive data by a user equipment (UE) in a wireless communication system, the method comprising: receiving first time division duplex (TDD) uplink-downlink configuration information for a first cell and a second TDD uplink-downlink configuration information for a second cell; determining whether a subframe in the first cell is a special subframe and the subframe in the second cell is a downlink subframe according to the first and second TDD uplink-downlink configuration information; and determining, if the subframe in the first cell is the special subframe and the subframe in the second cell is the downlink subframe, not to receive a signal on the second cell in orthogonal frequency division multiplexing (OFDM) symbol that overlaps with at least one of a guard period (GP) or uplink pilot time slot (UpPTS) in the first cell.
2. The method of claim 1, wherein the signal comprises at least one of a physical downlink shared channel (PDSCH), an enhanced physical downlink control channel (EPDCCH), a physical multicast channel (PMCH), or positioning reference signal (PRS).
3. The method of claim 1, wherein the subframe comprises a subframe number of 6.
4. The method of claim 1, wherein the first TDD uplink-downlink configuration information comprises at least one of an uplink-downlink configuration number 0, 1, 2, or 6.
5. The method of claim 1, wherein the second TDD uplink-downlink configuration information comprises at least one of an uplink-downlink configuration number 3, 4, or 5.
6. A method to receive data by a user equipment (UE) in a wireless communication system, the method comprising: receiving first time division duplex (TDD) uplink-downlink configuration information for a first cell and a second TDD uplink-downlink configuration information for a second cell; determining whether a subframe in the first cell is a special subframe and the subframe in the second cell is a downlink subframe according to the first and second TDD uplink-downlink configuration information; and determining, if the subframe in the first cell is the special subframe and the subframe in the second cell is the downlink subframe, not to process a signal on the second cell in orthogonal frequency division multiplexing (OFDM) symbol that overlaps with at least one of a guard period (GP) or uplink pilot time slot (UpPTS) in the first cell.
7. The method of claim 6, wherein the signal comprises at least one of a physical downlink shared channel (PDSCH), an enhanced physical downlink control channel (EPDCCH), a physical multicast channel (PMCH), or positioning reference signal (PRS).
8. The method of claim 6, wherein the subframe comprises a subframe number 6.
9. The method of claim 6, where the first TDD uplink-downlink configuration information comprises at least one of an uplink-downlink configuration number 0, 1, 2, or 6.
10. The method of claim 6, where the second TDD uplink-downlink configuration information comprises at least one of an uplink-downlink configuration numbers 3, 4, or 5.
11. A user equipment (UE) configured to receive data in a wireless communication system, the UE comprising: a transceiver configured to transmit and receive signals; and a controller configured to: receive first time division duplex (TDD) uplink-downlink configuration information for a first cell and second TDD uplink-downlink configuration information for a second cell; determine whether a subframe in the first cell is a special subframe and the subframe in the second cell is a downlink subframe according to the first and second TDD uplink-downlink configuration information; and determine, if the subframe in the first cell is the special subframe and the subframe in the second cell is the downlink subframe, not to receive a signal on the second cell in orthogonal frequency division multiplexing (OFDM) symbol that overlaps with at least one of a guard period (GP) or uplink pilot time slot in the first cell.
12. The UE of claim 11, wherein the signal comprises at least one of a physical downlink shared channel (PDSCH), an enhanced physical downlink control channel (EPDCCH), a physical multicast channel (PMCH), or positioning reference signal (PRS).
13. The UE of claim 11, wherein the subframe comprises a subframe number 6.
14. The UE of claim 11, wherein the first TDD uplink-downlink configuration information comprises at least one of an uplink-downlink configuration number 0, 1, 2, or 6.
15. The UE of claim 11, wherein the second TDD uplink-downlink configuration information comprises at least one of an uplink-downlink configuration number 3, 4, or 5.
Description
BRIEF DESCRIPTION OF DRAWINGS
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MODE FOR THE INVENTION
(13) Exemplary embodiments of the present invention are described with reference to the accompanying drawings in detail. Detailed description of well-known functions and structures incorporated herein may be omitted to avoid obscuring the subject matter of the present invention. Further, the following terms are defined in consideration of the functionality in the present invention, and may vary according to the intention of a user or an operator, usage, etc. Therefore, the definition should be made on the basis of the overall content of the present specification.
(14) Although the description is directed to the OFDM-based radio communication system, particularly the 3GPP EUTRA, it will be understood by those skilled in the art that the present invention can be applied even to other communication systems having the similar technical background and channel format, with a slight modification, without departing from the spirit and scope of the present invention.
(15)
(16) The TDD radio frame has one of 7 configurations defined by the kinds of the 10 subframes constituting the radio frame as shown in table 1.
(17) TABLE-US-00001 TABLE 1 Uplink-downlink Downlink-to-Uplink Subframe number configuration Switch-point periodicity 0 1 2 3 4 5 6 7 8 9 0 5 ms D S U U U D S U U U 1 5 ms D S U U D D S U U D 2 5 ms D S U D D D S U D D 3 10 ms D S U U U D D D D D 4 10 ms D S U U D D D D D D 5 10 ms D S U D D D D D D D 6 5 ms D S U U U D S U U D
(18) In table 1, ‘D’ denotes the subframe reserved for downlink transmission, ‘U’ denotes the subframe reserved for uplink transmission, and ‘S’ denotes the special subframe.
(19)
(20) As shown in
(21) TABLE-US-00002 TABLE 2 Normal cyclic Extended cyclic prefix in downlink prefix in downlink UpPTS UpPTS Normal Extended Normal Extended Special cyclic cyclic cyclic cyclic subframe prefix in prefix in prefix in prefix in configuration DwPTS uplink uplink DwPTS uplink uplink 0 6592 .Math. T.sub.s 2192 .Math. T.sub.s 2560 .Math. T.sub.s 7680 .Math. T.sub.s 2192 .Math. T.sub.s 2560 .Math. T.sub.s 1 19760 .Math. T.sub.s 20480 .Math. T.sub.s 2 21952 .Math. T.sub.s 23040 .Math. T.sub.s 3 24144 .Math. T.sub.s 25600 .Math. T.sub.s 4 26336 .Math. T.sub.s 7680 .Math. T.sub.s 4384 .Math. T.sub.s 5120 .Math. T.sub.s 5 6592 .Math. T.sub.s 4384 .Math. T.sub.s 5120 .Math. T.sub.s 20480 .Math. T.sub.s 6 19760 .Math. T.sub.s 23040 .Math. T.sub.s 7 21952 .Math. T.sub.s — — — 8 24144 .Math. T.sub.s — — —
(22) As shown in table 2, there are 9 kinds of special subframe configurations that can be selectively used per carrier or cell and notified from the base station to the terminals.
(23) Unlike the FDD and TDD terminals, the half-duplex terminal may use the downlink and uplink transmission bandwidth in the same way as the FDD or TDD terminal but cannot perform transmission and reception simultaneously. In the LTE and LTE-A systems, whether to support the half-duplex transmission is determined by the base station scheduler which, especially in the FDD mode, controls such that downlink and uplink transmissions do not occur simultaneously on the same frequency. Since the downlink and uplink are on the same frequency band in the TDD mode, the transmission and reception do not occurs simultaneously.
(24) Since the multiple carriers have the same TDD configuration, in Rel. 10, even in the case of using the carrier aggregation, the scheduling of transmission and reception on the multiple carriers is performed in the same way as before. In Rel. 11 supporting the multiple carriers with different TDD configurations, however, uplink-downlink collision may occur at a certain subframe.
(25) Particularly when a special subframe and a downlink subframe occur at the same time, the uplink part of the special subframe collides with some OFDM symbol of the downlink subframe so as to cause a problem in that the terminal fails transmitting/receiving at the corresponding symbols. This is the case where the terminal has the data to receive from the base station at the same time of attempting transmission of PRACH at the uplink part of the special subframe. Prior to starting explanation of an embodiment of the present invention in association of such a case, a described is made of the PRACH transmission of the terminal briefly.
(26) The terminal transmits PRACH in uplink for initial attach or uplink synchronization.
(27) There are four preamble formats characterized by different PRACH sequence and CP lengths.
(28) TABLE-US-00003 TABLE 3 Preamble format T.sub.cp T.sub.SEQ 0 3168 .Math. T.sub.s 24576 .Math. T.sub.s 1 21024 .Math. T.sub.s 24576 .Math. T.sub.s 2 6240 .Math. T.sub.s 2 .Math. 24576 .Math. T.sub.s 3 21024 .Math. T.sub.s 2 .Math. 24576 .Math. T.sub.s 4 448 .Math. T.sub.s 4096 .Math. T.sub.s
(29) In table 3, format 4 is used only in subframe type II supporting TDD and, particularly, capable of being transmitted only at the special subframe. The special subframe configuration supporting PRACH format 4 can be used only with the configurations 5, 6, 7, and 8 for the DL normal CP and only with configurations 4, 5, and 6 for the DL extended CP in table 2. The special subframe may carry two types of signals in uplink, i.e. PRACH in the preamble formation 4 of table 3 and Sounding Reference Signal (SRS). For PRACH transmission, the base station determines only the transmission resource while the base station determines the transmission timing.
(30) As described above, in the case of aggregating the carriers having different TDD configurations (one carrier having one of the TDD configurations 0, 1, 2, and 6 of table 1 and the other carrier having one of the TDD configurations 3, 4, and 5 of table 1), the special subframe (S) and downlink subframe (D) may be scheduled simultaneously at the 6.sup.th subframe as shown in table 1. As described above, since the special subframe has both the downlink and uplink parts, it causes a problem at the half-duplex terminal which cannot perform transmission and reception simultaneously.
(31)
(32) As shown in
(33) In this case, since the PRACH transmission timing is determined by the terminal, the base station cannot schedule uplink transmission at the corresponding duration to avoid uplink-downlink collision and, if suspending the downlink transmission in the cell B 420 to guarantee the uplink transmission, the terminal cannot use, even when it is performing downlink reception operation in the cell A 410, the frequency resource.
(34) In order to solve the above problems, the terminal according to an embodiment of the present invention determines whether to perform downlink reception based on at least one of the presence/absence of PRACH in the special subframe and special subframe configuration. Hereinafter, a description is made of the method of controlling whether to receive downlink channel at the subframe where uplink and downlink transmission collide in the case where a plurality of carriers having different TDD configurations are aggregated according to an embodiment of the present invention.
(35)
(36) Referring to
(37) Accordingly, the terminal receives the signal at the downlink part (DwPTS) of the special subframe 501, switches to uplink during the GP, and transmits PRACH at the uplink part (UpPTS) 509. If there is not PRACH transmission in the special subframe 501, the terminal receives the downlink signal through the cell B 507.
(38) Since the terminal determines whether to receive downlink signal in the downlink subframe 507 coexisting with the special subframe 501 depending on whether to transmit PRACH in the special subframe 501, it is advantageous for the terminal to transmit PRACH always independently of the scheduling of the base station. If the base station has scheduled downlink transmission in the cell B 505, downlink retransmission is performed.
(39) According to the first embodiment of the present invention, if no downlink signal is received in the downlink subframe 507 coexistent with the special subframe 501, it is advantageous in terms of solving the problem occurring at the region 507 of the downlink subframe 507 which collides with the uplink part (UpPTS) of the special subframe but disadvantageous in terms of wasting frequency resource even though it is possible to receive downlink signal at the part 511 overlapped with the downlink part (DwPTS) of the special subframe.
(40) Another embodiment of the present invention proposes a method of using the time duration capable of receiving downlink signal in the downlink subframe partially overlapped with the special subframe insofar as possible.
(41)
(42) Referring to
(43) Here, the cell 1 603 may be the Primary Cell (PCell), and the cell B 605 is the Secondary Cell (SCell). According to the second embodiment of the present invention as depicted in
(44) As shown in
(45) Accordingly in the case that it is necessary to transmit PRACH in the uplink part (UpPTS) 609 of the special subframe 601, the terminal receives the downlink data during the downlink part (DwPTS) of the special subframe 601 in the cell A 601 and during the part 611 of the downlink subframe 607 which matches the DwPTS of the special subframe 601.
(46) According to the second embodiment of the present invention, the terminal is capable of securing downlink data regions as much as the downlink part (DwPTS) always on all the carriers so as to improve the data transmission efficiency as compared to the first embodiment.
(47) If the base station configures the resource for PRACH transmission in the uplink part (UpPTS), it is necessary to match the part 611 allocated for downlink transmission in the downlink subframe 607 to the downlink part (DwPTS) of the special subframe 601, the size of the control channel region decreases as compared to the legacy case. This is because the maximum symbol size of the control channel is 2 in the special subframe and 3 in the downlink subframe.
(48) In summary, in the case that the terminal operating in the half-duplex mode receives the special subframe 601 in the cell A 603 and the downlink subframe 607 in the cell B 605, the transmitter of the terminal operates in match with the symbol structure of the special subframe of the cell A 603, at least with the GP and UpPTS, so as to receive the downlink symbols by means of the receiver of the terminal in the cell B 605 within the corresponding time duration.
(49)
(50) Referring to
(51) Otherwise if it fails to demodulate the DL grant in the downlink subframe 707 of the cell 705, the terminal stops receiving downlink signal in the cell B 705 but receives the downlink signal at the downlink part (DwPTS) of the special subframe 701 of the cell A 703 and, if necessary, transmits PRACH at the uplink part (UpPTS).
(52) According to the third embodiment of the present invention, the terminal receives the control channel (PDCCH) in the downlink subframe of the cell B705 at least and, if there is no DL grant transmitted by the base station in the downlink subframe 707, receives no downlink signal in the data region of the cell B 705. However, the terminal may receive uplink control channel of the control region of the corresponding downlink subframe 707.
(53) In detail, the terminal receives the control channel region 709 of the downlink subframe 707 first and checks the scheduling information for data channel transmission in the cell B 705. If there is no downlink scheduling information, the terminal does not receive symbols following the control channel region 708 and, if necessary, transmits PRACH at the uplink part 709 of the special subframe 701. At this time, the terminal may check the control channel for uplink transmission regardless of the existence of the downlink scheduling information.
(54) Referring to
(55) If the base station does not permit transmission of the control channel for downlink transmission in the downlink subframe 707 of the cell B 705, the terminal may check the control channel for uplink transmission at the control channel region (PDCCH) of the downlink subframe 707 under the assumption that the symbols following the control channel (PDCCH) of the downlink subframe 707 of the cell B 705 carries no downlink signal.
(56) In detail, assuming that the cell A 703 is the primary cell (PCell) and the cell B 705 is the secondary cell (SCell), if it fails to demodulate the DL grant received in the control channel region of the downlink subframe of the SCell which is coincident with the special subframe of the PCell, the terminal does not receive the downlink signals such as PDSCH, E-PDCCH, PMCH, and PRS in the data channel region of the downlink channel region.
(57) According to the third embodiment, the base station is capable of scheduling the data channel freely regardless of PRACH transmission of the terminal, and the terminal is capable of determining whether to transmit PRACH through determination on presence/absence of scheduling so as to avoid unnecessary PRACH transmission. If the terminal needs to transmit PRACH and if the base station schedules data channel transmission for PRACH transmission of the terminal, the PRACH transmission may be delayed; however, since the base station does not perform scheduling any longer until the synchronization with the terminal is acquired, the terminal may secure the time for PRACH transmission.
(58)
(59) Referring to
(60) If the uplink parts (UpPTS) of the two special subframes are identical in length with each other, the terminal receives the downlink channel in the downlink parts (DwPTS) of the respective special subframes. That is, the terminal receives the downlink channel at the downlink part (DwPTS) 807 according to the special subframe configuration X in the cell A 803 and at the downlink part (DwPTS) 809 according to the special subframe configuration Y in the cell B 805.
(61) In the case that the uplink parts (UpPTS) of the two special subframes are identical in length with each other, it is possible, although the terminal receives the downlink channel through the longest downlink part (DwPTS), for the terminal to switch to the uplink part (UpPTS) for uplink channel transmission during the Guard Period (GP).
(62) Referring to
(63) That is, if the respective special subframes appearing simultaneously in the cell A 813 and cell B 815 are different in length from each other, the terminal receives the downlink symbols as many as the length of the downlink part (DwPTS) 817 of the special subframe 811 of the cell A 813 because the UpPTS of the special subframe 811 of the cell A 813 is the longest one.
(64) In the case that the special subframe configurations differ from each other as shown in
(65)
(66) Referring to
(67) The base station allocates PRACH resource in the special subframe and calculates a number of symbols for use in downlink transmission to perform scheduling at step 920. Particularly when the PRACH transmission resource is allocated in the special subframe according to the second embodiment of the present invention as described above, the base station may set the number of OFDM symbols of the control channel region and the data channel region of the downlink subframe coincident with the special subframe in the same subframe duration to a value equal to the downlink part of the special subframe. If there is not downlink transmission, the number of symbols for downlink transmission is set to 0.
(68) Next, the base station generates the scheduling information and transmits the scheduling information to the terminal at step 930 and transmits the downlink channel to the terminal and receives PRACH from the terminal at step 940. At this time, whether to receive PRACH is determined depending on whether the terminal transmits the PRACH.
(69)
(70) Referring to
(71) In detail, if it is determined to transmit PRACH in the special subframe according to the first embodiment of the present invention, the terminal may determine to not receive downlink channel in the downlink subframe coincident with the special subframe in the same subframe duration according to the first embodiment or may determine to receive the downlink channel only at the OFDM symbols of the downlink subframe which correspond to the downlink part of the special subframe in the same subframe duration according to the second embodiment.
(72) According to the third embodiment, if the DL grant is demodulated successfully in the control channel region of the downlink subframe regardless of PRACH transmission, it is possible to determine whether to receive downlink data channel in the data channel region. In the case that the special subframes different in configuration occur coincidently in the same subframe duration, it is possible to determine whether to perform downlink reception and the number of symbols therefor depending on whether the UpPTS lengths of the special subframes are identical with each other according to the fourth embodiment of the present invention.
(73) According to an embodiment of the present invention, the terminal receives the downlink channel and transmits PRACH based on the determination result at step 1040.
(74)
(75) The scheduler 1110 generates the scheduling information to be transmitted to the terminal under the control of the controller 1120. Particularly when the TDD configurations of the multiple carriers are different from each other, it may be possible to determine PRACH transmission resource and the number of downlink transmission symbols in the subframe duration in which the special subframe and the downlink subframe occur coincidently or the special subframes different in configuration occur coincidently.
(76) The transceiver 1130 transmits the generated scheduling information to the terminal and, afterward, transmits downlink channel to the terminal and receives the PRACH from the terminal.
(77)
(78) If the transceiver receives the scheduling information transmitted by the base station, the controller 1210 determines whether to perform downlink reception and the number of symbols therefor in the subframe duration in which the special subframe and the downlink subframe occur coincidently or the special subframes different in configuration occur coincidently, based on at least one of presence/absence of PRACH transmission and a special frame configuration according to an embodiment of the present invention.
(79) The transceiver 1220 receives the downlink channel from the base station and transmits PRACH to the base station under the control of the controller 1210.
(80) It is to be appreciated that those skilled in the art can change or modify the embodiments without departing the technical concept of this invention. Accordingly, it should be understood that above-described embodiments are essentially for illustrative purpose only but not in any way for restriction thereto. Thus the scope of the invention should be determined by the appended claims and their legal equivalents rather than the specification, and various alterations and modifications within the definition and scope of the claims are included in the claims.
(81) Although preferred embodiments of the invention have been described using specific terms, the specification and drawings are to be regarded in an illustrative rather than a restrictive sense in order to help understand the present invention. It is obvious to those skilled in the art that various modifications and changes can be made thereto without departing from the broader spirit and scope of the invention.