Method and apparatus for transmitting SRS in wireless cellular mobile communication system
11750347 · 2023-09-05
Assignee
Inventors
- Youngbum Kim (Seoul, KR)
- Joonyoung Cho (Suwon-si, KR)
- Hyoungju Ji (Seoul, KR)
- Seunghoon Choi (Suwon-si, KR)
Cpc classification
H04B7/2615
ELECTRICITY
H04W52/34
ELECTRICITY
H04L5/14
ELECTRICITY
H04L5/0051
ELECTRICITY
H04L5/0048
ELECTRICITY
H04W52/367
ELECTRICITY
International classification
H04L5/14
ELECTRICITY
H04W52/34
ELECTRICITY
H04W52/36
ELECTRICITY
Abstract
The present invention relates to a method for transmitting, by a terminal, a sounding reference signal (SRS) or a physical uplink shared channel (PUSCH) in a mobile communication system. A communication method for a terminal in a communication system which supports the combination of configuration carrier using FDD scheme and configuration carrier using TDD scheme, in accordance with an embodiment of the present invention, comprises the steps of: receiving SRS transmission setting information from a base station; receiving uplink data scheduling information from the base station; determining whether or not the simultaneous transmission of the SRS transmission and the uplink data occurs; and setting the transmission of the uplink data or the SRS so that when the simultaneous transmission of the SRS transmission and the uplink data occurs, the sum of the respective transmission powers of the first and second symbols in an FDD cell and the first and second symbols of a TDD cell is not greater than the maximum transmission power of the terminal, wherein the timing of the first symbol in the FDD cell corresponds to the timing of the first symbol in the TDD cell, and the timing of the second symbol in the FDD cell corresponds to the timing of the second symbol in the TDD cell. In accordance with an embodiment of the present invention, defining the SRS transmission method of the terminal in a wireless communication system causes the terminal to effectively transmit the uplink data.
Claims
1. A method of a terminal configured with a first cell and a second cell for transmitting a sounding reference signal (SRS) the method comprising: receiving, from a base station, information for configuring an SRS transmission on two symbols in an uplink pilot time slot (UpPTS) on the first cell by higher layer signaling, the first cell operating in a time division duplex (TDD) mode; determining that an uplink control information transmission on the second cell overlaps with the SRS transmission on the first cell in a first subframe in terms of time, the second cell operating in a Frequency Division Duplex (FDD) mode; identifying whether a shortened physical uplink control channel (PUCCH) format is used to transmit the uplink control information; in a case that the shortened PUCCH format is used: transmitting, to the base station, the SRS on a second symbol in the UpPTS and dropping the SRS transmission on a first symbol in the UpPTS in the first subframe on the first cell; and transmitting, to the base station, uplink control information using the shortened PUCCH format on a plurality of symbols except a last symbol in the first subframe on the second cell; in a case that the shortened PUCCH format is not used: transmitting, to the base station, uplink control information in the first subframe on the second cell; and dropping the SRS transmission in the first subframe on the first cell; and in a case that an uplink data transmission on the second cell overlaps with the SRS transmission on the first cell in a second subframe, transmitting, to the base station, the SRS on a second symbol in the UpPTS in the second subframe on the first cell and uplink data on a plurality of symbols except a last symbol in the second subframe on the second cell.
2. A method of a base station operating a first cell and a second cell for receiving a sounding reference signal (SRS) the method comprising: transmitting, to a terminal, information for configuring an SRS transmission on two symbols in an uplink pilot time slot (UpPTS) on the first cell by higher layer signaling, the first cell operating in a time division duplex (TDD) mode; determining that an uplink control information transmission on the second cell overlaps with the SRS transmission on the first cell in a first subframe in terms of time, the second cell operating in a Frequency Division Duplex (FDD) mode; identifying whether a shortened physical uplink control channel (PUCCH) format is used to receive the uplink control information; in a case that the shortened PUCCH format is used: receiving, from the terminal, the SRS on a second symbol in the UpPTS in the first subframe on the first cell, wherein the SRS is not received on a first symbol in the UpPTS in the first subframe on the first cell; and receiving, from the terminal, uplink control information using the shortened PUCCH format on a plurality of symbols except a last symbol in the first subframe on the second cell; in a case that the shortened PUCCH format is not used, receiving, from the terminal, uplink control information in the first subframe on the second cell, wherein the SRS is not received in the first subframe on the first cell; and in a case that an uplink data transmission on the second cell overlaps with the SRS transmission on the first cell in a second subframe, receiving, from the terminal, the SRS on a second symbol in the UpPTS in the second subframe on the first cell and uplink data on a plurality of symbols except a last symbol in the second subframe on the second cell.
3. A terminal configured with a first cell and a second cell for transmitting a sounding reference signal (SRS) the terminal comprising: a transceiver configured to transmit and receive a signal; and a controller coupled to the transceiver and configured to control to: receive, from a base station, information for configuring an SRS transmission on two symbols in an uplink pilot time slot (UpPTS) on the first cell by higher layer signaling, the first cell operating in a time division duplex (TDD) mode, determine that an uplink control information transmission on the second cell overlaps with the SRS transmission on the first cell in a first subframe in terms of time, the second cell operating in a Frequency Division Duplex (FDD) mode, identify whether a shortened physical uplink control channel (PUCCH) format is used to transmit the uplink control information, in a case that the shortened PUCCH format is used: transmit, to the base station, the SRS on a second symbol in the UpPTS and drop the SRS transmission on a first symbol in the UpPTS in the first subframe on the first cell, and transmit, to the base station, uplink control information using the shortened PUCCH format on a plurality of symbols except a last symbol in the first subframe on the second cell, in a case that the shortened PUCCH format is not used: transmit, to the base station, uplink control information in the first subframe on the second cell, and drop the SRS transmission in the first subframe on the first cell, and in a case that an uplink data transmission on the second cell overlaps with the SRS transmission on the first cell in a second subframe, transmit, to the base station, the SRS on a second symbol in the UpPTS in the second subframe on the first cell and uplink data on a plurality of symbols except a last symbol in the second subframe on the second cell.
4. A base station operating a first cell and a second cell for receiving a sounding reference signal (SRS) the base station comprising: a transceiver configured to transmit and receive a signal; and a controller coupled with the transceiver and configured to control to: transmit, to a terminal, information for configuring an SRS transmission on two symbols in an uplink pilot time slot (UpPTS) on the first cell by higher layer signaling, the first cell operating in a time division duplex (TDD) mode, determine that an uplink control information transmission on the second cell overlaps with the SRS transmission on the first cell in a first subframe in terms of time, the second cell operating in a Frequency Division Duplex (FDD) mode, identify whether a shortened physical uplink control channel (PUCCH) format is used to receive the uplink control information, in a case that the shortened PUCCH format is used: receive, from the terminal, the SRS on a second symbol in the UpPTS in the first subframe on the first cell, wherein the SRS is not received on a first symbol in the UpPTS in the first subframe on the first cell, and receive, from the terminal, uplink control information using the shortened PUCCH format on a plurality of symbols except a last symbol in the first subframe on the second cell, in a case that the shortened PUCCH format is not used: receive, from the terminal, uplink control information in the first subframe on the second cell, wherein the SRS is not received in the first subframe on the first cell, and in a case that an uplink data transmission on the second cell overlaps with the SRS transmission on the first cell in a second subframe, receive, from the terminal, the SRS on a second symbol in the UpPTS in the second subframe on the first cell and uplink data on a plurality of symbols except a last symbol in the second subframe on the second cell.
Description
BRIEF DESCRIPTION OF DRAWINGS
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MODE FOR THE INVENTION
(30) Embodiments of the present invention are described in detail referring to the accompanying drawings. Detailed descriptions of well-known functions and structures incorporated herein may be omitted to avoid obscuring the subject matter of the invention. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
(31) The term ‘eNB’ refers to an entity configured to assign resources to UE, and is used in the sense of at least one of the following: eNode B, eNB, Node B, Base Station (BS), radio access unit, base station controller, node on a network.
(32) The term ‘terminal’ is used in the sense of: User Equipment (UE), Mobile Station (MS), cellular phone, smartphone, computer, or multimedia system capable of performing a communication function.
(33) Embodiments of the present invention are described based on E-UTRA (or called LTE) or Advanced E-UTRA (or called LTE-A) system; however, it should be understood that the present invention can also be applied to various types of communication systems which have the technical background and channel forms similar to those of the present invention.
(34) It will be appreciated to those skilled in the art that embodiments of the present invention can be modified without departing from the scope and sprit of the present invention and the modifications can also be applied to other types of communication systems.
(35) In the present disclosure, a method for UE to transmit a Sounding Reference Signal (SRS) via a special subframe is defined to perform carrier aggregation using duplex schemes that differ from each other according to component carriers.
(36) In the following description, embodiments of the present invention to resolve the conventional problems are explained in detail.
(37)
(38) Referring to
(39) PUSCH refers to a physical channel carrying uplink data that UE transmits to eNB. In order to estimate the PUSCH, Reference Signals (RSs) 409 and 410 are transmitted. Therefore, the PUSCH is mapped to intervals 411, 412, and 413 in the subframe 403, except for symbols where the RSs 409 and 410 and located, and is then transmitted to eNB.
(40) eNB determines the settings, such as a condition as to whether one or two SRS symbols are transmitted during the interval of UpPTS 407, a symbol in UpPTS 407 to transmit one SRS, etc., and informs UE of the settings via higher-layer signaling.
(41) In this case, UE needs to simultaneously transmit a PUSCH via the FDD cell 401 and an SRS via the TDD cell 402 during the interval corresponding to the UpPTS 407, and this may cause a problem that the sum of the PUSCH transmission power and the SRS transmission power exceeds the maximum allowable transmission power of UE. Therefore, there is a need to define specified transmission methods for PUSCH and SRS.
First Embodiment
(42) In a first embodiment, specified operations are defined when UE needs to simultaneously transmit a PUSCH to an FDD cell and an SRS to a TDD cell, under the condition shown in
(43) 1) Method 1
(44)
(45) According to Method 1, UE transmits only the second one of the two SRS symbols to be transmitted via a TDD cell 502, without transmitting the first SRS symbol; and performs rate matching for a PUSCH to be transmitted via an FDD cell 501 within the last symbol interval in a subframe, thereby transmitting the PUSCH. Channel coding is generally performed to add an error correcting capability to data that UE needs to transmit. UE adjusts the size of output bit stream channel-encoded to match with the amount of resource scheduled by eNB, and maps the output bit stream to a time-frequency resource, which is called a rate-matching.
(46) Referring to
(47) 2) Method 2
(48)
(49) Referring to
(50) 3) Method 3
(51)
(52) Referring to
(53) 4) Method 4
(54)
(55) Referring to
(56) In this case, the PUSCH transmission power or the SRS transmission power is adjusted so that the sum of the PUSCH transmission power and the SRS transmission power can be maintained within the maximum allowable transmission power of UE, during the UpPTS interval 807 where uplink signals are simultaneously transmitted to the FDD cell 801 and TDD cell 802. For example, when the PUSCH transmission has priority, the SRS transmission power is adjusted to a value less than a required level of transmission power, so that the sum of the PUSCH transmission power and the SRS transmission power is maintained within the maximum allowable transmission power of UE, during UpPTS interval 807. Alternatively, when the SRS transmission has priority, the PUSCH transmission power is adjusted to a value less than a required level of transmission power, so that the sum of the PUSCH transmission power and the SRS transmission power is maintained within the maximum allowable transmission power of UE, during UpPTS interval 807. Alternatively, each of the SRS transmission power and the PUSCH transmission power is adjusted to a value less than a required level of transmission power, so that the sum of the PUSCH transmission power and the SRS transmission power is maintained within the maximum allowable transmission power of UE, during UpPTS interval 807.
(57) In general, the PUSCH transmission power is constantly maintained within one subframe transmitting PUSCH, thereby simplifying operations of the receiver. Therefore, according to an embodiment, when PUSCH transmission power is adjusted during the SC-FDMA symbol interval overlapping with the UpPTS interval 807 and PUSCH is transmitted, the value of adjusted PUSCH transmission power can also be applied to the interval of the remaining symbols transmitting PUSCH in the subframe as well as the SC-FDMA symbol interval overlapping with the UpPTS interval 807.
(58) When transmission power of UE is adjusted, eNB is capable of: determining a condition as to whether it prioritizes the SRS signal transmission or the PUSCH signal transmission or equalizes the SRS signal transmission and the PUSCH signal transmission regardless of the priority; and then informing the UE of the condition via higher-layer signaling.
(59) In addition, one of the Method 1 to Method 4 is pre-defined as a method to be applied or eNB informs UE of the pre-defined method via higher-layer signaling. Alternatively, in another embodiment, one of the Method 1 to Method 4 may be defined as a method to be applied according to a condition as to whether the PUSCH transmission is initial transmission or re-transmission. For example, when the PUSCH transmission is initial transmission, Method 3 where the PUSCH transmission has priority is applied. When the PUSCH transmission is re-transmission, Method 2 where the SRS transmission has priority is applied. When the PUSCH transmission is re-transmission, the receiver of the eNB has a higher probability of successfully decoding PUSCH via an HARQ process combining the initially transmitted PUSCH with the re-transmitted PUSCH. Therefore, the SRS transmission has a relatively high priority in re-transmitting PUSCH.
Second Embodiment
(60) In a second embodiment, specified operations are defined when UE needs to simultaneously transmit a PUSCH to an FDD cell and an SRS to a TDD cell, under the condition shown in
(61) 1) Method 1
(62)
(63) Referring to
(64) In this case, UE is capable of adjusting transmission power of SRS 910 transmitted to an FDD cell 901 and transmission power of SRS 909 transmitted to a TDD cell 902, respectively, so that the sum of the transmission power of SRS 910 and the transmission power of SRS 909 does not exceed the maximum allowable transmission power of UE. The quantity of SRS transmission power to be adjusted may be determined according to the priority. For example, when SRS symbols 910 and 909, transmitted to an FDD cell 901 and a TDD cell 902, respectively, have the same degree of importance, the transmission power of SRS 910 transmitted to an FDD cell 901 and the transmission power of SRS 909 transmitted to a TDD cell 902 is reduced by the same proportion, so that the sum of the adjusted transmission power of SRS 910 and the adjusted transmission power of SRS 909 does not exceed the maximum allowable transmission power of UE. When SRS 910 transmitted to an FDD cell 901 has priority, the transmission power of SRS 909 transmitted to a TDD cell 902 is reduced by a relatively larger proportion and the transmission power of SRS 910 transmitted to an FDD cell 901 is reduced by a relatively smaller proportion or not reduced, so that the sum of the adjusted transmission power of SRS 910 and the adjusted transmission power of SRS 909 does not exceed the maximum allowable transmission power of UE. According to embodiments, eNB may determine the priority between SRSs to be transmitted and inform UE of the determined priority via higher-layer signaling.
(65) 2) Method 2
(66)
(67) Referring to
(68) SRS to be transmitted to an FDD cell 1001 is mapped to the last symbol 1001 in a subframe 1003 and then transmitted thereto. Like Method 1, UE is capable of adjusting transmission power of SRS 1010 transmitted to an FDD cell 1001 and transmission power of SRS 1009 transmitted to a TDD cell 1002, respectively, according to the priority between SRSs to be transmitted, so that the sum of the transmission power of SRS 1010 and the transmission power of SRS 1009 does not exceed the maximum allowable transmission power of UE.
(69) For uplink data to be transmitted to an FDD cell 1001, UE performs rate matching for channel-encoded uplink data over intervals except for RS symbol locations 1013 and 1014 and an interval overlapping with the UpPTS interval 1007 within a subframe 1003, thereby configuring and transmitting a PUSCH (1012). Therefore, uplink signal transmission is not performed for the last second symbol 1011 of the subframe 1003.
(70) Method 2 has a feature so that it transmits two SRS symbols to a TDD cell 1002 whenever possible, despite PUSCH transmission loss which may be caused due to the decrease in the number of symbols configuring a PUSCH transmitted to the FDD cell 1001, thereby allowing eNB to relatively precisely measure a channel state of the TDD cell 1002.
(71) 3) Method 3
(72)
(73) Referring to
(74) In this case, UE is capable of adjusting transmission power of an uplink signal transmitted to an FDD cell 1101 and transmission power of an uplink signal transmitted to a TDD cell 1102, respectively, so that the sum of the transmission power of an uplink signal transmitted to an FDD cell 1101 and transmission power of an uplink signal transmitted to a TDD cell 1102 does not exceed the maximum allowable transmission power of UE, during the UpPTS interval 1107 where the uplink signal transmissions to the FDD cell 1101 and the TDD cell 1102 are simultaneously performed. In addition, like Method 1, Method 3 defines the priority according to cells or types of uplink transmission signal, and adjusts the transmission power based on the defined priority.
(75) In general, the PUSCH transmission power is constantly maintained within one subframe transmitting PUSCH, thereby simplifying operations of the receiver. Therefore, according to an embodiment, when PUSCH is transmitted with adjusted PUSCH transmission power during the SC-FDMA symbol interval overlapping with the UpPTS interval 1107, the value of adjusted PUSCH transmission power can also be applied to the interval of the remaining symbols transmitting PUSCH in the subframe as well as the SC-FDMA symbol interval overlapping with the UpPTS interval 1107.
(76) Like the first embodiment, the second embodiment is implemented in such a way that one of the Method 1 to Method 3 is pre-defined as a method to be applied or eNB informs UE of the pre-defined method via higher-layer signaling. Alternatively, in another embodiment, one of the Method 1 to Method 3 may be defined as a method to be applied according to a condition as to whether the PUSCH transmission is initial transmission or re-transmission. For example, when the PUSCH transmission is initial transmission, Method 1 where the PUSCH transmission has priority is applied. When the PUSCH transmission is re-transmission, Method 2 where the SRS transmission has priority is applied. When the PUSCH transmission is re-transmission, the receiver of the eNB has a higher probability of successfully decoding PUSCH via an HARQ process combining the initially transmitted PUSCH with the re-transmitted PUSCH. Therefore, the SRS transmission has a relatively high priority in re-transmitting PUSCH.
(77) The first and second embodiments may also be modified in such a way to define operations regarding a case that UE transmits a PUSCH to an FDD cell and a random access preamble to a TDD cell during the interval of UpPTS 2 symbol. In general, PUSCH is processed for its additional error correction by the HARQ process. When the transmission time points of the PUSCH and the random access preamble overlap with each other, the modifications may prioritize the transmission of a random access preamble. Since the length of a random access preamble in a UpPTS interval is fixed to an interval of 2 symbols, the modifications may also employ Method 2 and Method 4 of the first embodiment and Method 2 and Method 3 of the second embodiment, which can transmit 2 symbol unlink signals in UpPTS. In this case, its detailed description can be substituted by those of the first and second embodiments where the SRS is only replaced with a random access preamble. In order to prevent the reception performance degradation of a random access preamble, the transmission power of a random access preamble may be maintained to a constant value during the UpPTS interval.
Third Embodiment
(78) In a third embodiment, specified operations are defined when UE needs to simultaneously transmit a PUSCH to an FDD cell and an SRS to a TDD cell, under the condition shown in
(79) 1) Method 1
(80)
(81) According to Method 1, UE transmits PUSCH to be transmitted to an FDD cell 1201 thereto by using the entire symbol in a subframe, without transmitting an SRS symbol to be transmitted to a TDD cell 1202. Referring to
(82) 2) Method 2
(83)
(84) Referring to
(85) 3) Method 3
(86)
(87) Referring to
(88) 4) Method 4
(89)
(90) Referring to
(91) In this case, the PUSCH transmission power or the SRS transmission power is adjusted so that the sum of the PUSCH transmission power and the SRS transmission power can be maintained within the maximum allowable transmission power of UE in the location of an SRS symbol 1508 of the UpPTS interval 1507 where uplink signals are simultaneously transmitted to the FDD cell 1501 and the TDD cell 1502. For example, when the PUSCH transmission has priority, the SRS transmission power is adjusted to a value less than a required level of transmission power, so that the sum of the PUSCH transmission power and the SRS transmission power is maintained within the maximum allowable transmission power of UE in the location of the SRS symbol 1508. Alternatively, when the SRS transmission has priority, the PUSCH transmission power is adjusted to a value less than a required level of transmission power, so that the sum of the PUSCH transmission power and the SRS transmission power is maintained within the maximum allowable transmission power of UE in the location of the SRS symbol 1508. Alternatively, each of the SRS transmission power and the PUSCH transmission power is adjusted to a value less than a required level of transmission power, so that the sum of the PUSCH transmission power and the SRS transmission power is maintained within the maximum allowable transmission power of UE in the location of the SRS symbol 1508.
(92) In general, the PUSCH transmission power is constantly maintained within one subframe transmitting PUSCH, thereby simplifying operations of the receiver. Therefore, according to an embodiment, when PUSCH transmission power is adjusted in the location of the SRS symbol 1508 and PUSCH is transmitted, the value of adjusted PUSCH transmission power can also be applied to the interval of the remaining symbols transmitting PUSCH in the subframe as well as the SC-FDMA symbol interval overlapping with the location where the SRS symbol 1508 is transmitted during the UpPTS interval 1507.
(93) When the transmission power of UE is adjusted, eNB is capable of determining a condition as to whether it prioritizes the SRS signal transmission or the PUSCH signal transmission or equalizes the SRS signal transmission and the PUSCH signal transmission regardless of the priority, and then informing the UE of the condition via higher-layer signaling.
(94) In addition, one of the Method 1 to Method 4 is pre-defined as a method to be applied or eNB informs UE of the pre-defined method via higher-layer signaling. Alternatively, in another embodiment, one of the Method 1 to Method 4 may be defined as a method to be applied according to a condition as to whether the PUSCH transmission is initial transmission or re-transmission. For example, when the PUSCH transmission is initial transmission, Method 1 where the PUSCH transmission has priority is applied. When the PUSCH transmission is re-transmission, Method 2 or Method 3 where the SRS transmission has priority is applied. When the PUSCH transmission is re-transmission, the receiver of the eNB has a higher probability of successfully decoding PUSCH via an HARQ process combining the initially transmitted PUSCH with the re-transmitted PUSCH. Therefore, the SRS transmission has a relatively high priority in re-transmitting PUSCH.
Fourth Embodiment
(95) In a fourth embodiment, specified operations are defined when UE needs to simultaneously transmit a PUSCH to an FDD cell and an SRS to a TDD cell, under the condition shown in
(96) 1) Method 1
(97)
(98) Referring to
(99) 2) Method 2
(100)
(101) Referring to
(102) According to Method 2, UE maps an SRS to be transmitted to an FDD cell 1701 to the last symbol in a subframe 1703 and transmits the result to the FDD cell 1701 (1710). For uplink data to be transmitted to an FDD cell 1701, UE performs rate matching for channel-encoded uplink data over intervals except for RS symbol locations 1712 and 1713 and a UpPTS interval 1707 within a subframe 1703, thereby configuring and transmitting a PUSCH (1711). Therefore, uplink signal transmission is not performed for the last second symbol 1709 of the subframe 1703.
(103) Method 2 has a feature so that it transmits SRS symbols to a TDD cell 1702 whenever possible, despite PUSCH transmission loss which may be caused due to the decrease in the number of symbols configuring a PUSCH transmitted to the FDD cell 1701, thereby allowing eNB to measure a channel state of the TDD cell 1702.
(104) 3) Method 3
(105)
(106) Referring to
(107) In this case, UE is capable of adjusting transmission power of an uplink signal transmitted to an FDD cell 1801 and transmission power of an uplink signal transmitted to a TDD cell 1802, respectively, so that the sum of the transmission power of an uplink signal transmitted to an FDD cell 1801 and transmission power of an uplink signal transmitted to a TDD cell 1802 does not exceed the maximum allowable transmission power of UE, in the SRS symbol location 1808 of the TDD cell 1802 where the uplink signal transmissions to the FDD cell 1801 and the TDD cell 1802 are simultaneously performed. In addition, like Method 4 of the third embodiment, Method 3 defines the priority according to cells or types of uplink transmission signals, and adjusts the transmission power based on the defined priority.
(108) In general, the PUSCH transmission power is constantly maintained within one subframe transmitting PUSCH, thereby simplifying operations of the receiver. Therefore, according to an embodiment, when PUSCH transmission power is adjusted in a location in an FDD cell 1801, corresponding to a location of the SRS symbol 1808, and the PUSCH is transmitted, the value of adjusted PUSCH transmission power can also be applied to the interval of the remaining symbols transmitting PUSCH in the subframe as well as the SC-FDMA symbol interval overlapping with the location where the SRS symbol 1808 is transmitted, during the UpPTS interval 1807.
(109) When the transmission power of UE is adjusted, eNB is capable of determining a condition as to whether it prioritizes the SRS signal transmission or the PUSCH signal transmission or equalizes the SRS signal transmission and the PUSCH signal transmission regardless of the priority, and then informing the UE of the condition via higher-layer signaling.
(110) In addition, like the first embodiment, one of the Method 1 to Method 3 may be pre-defined as a method to be applied or eNB may inform UE of the pre-defined method via higher-layer signaling. Alternatively, in another embodiment, one of the Method 1 to Method 3 may be defined as a method to be applied according to a condition as to whether the PUSCH transmission is initial transmission or re-transmission. For example, when the PUSCH transmission is initial transmission, Method 1 where the PUSCH transmission has priority is applied. When the PUSCH transmission is re-transmission, Method 2 where the SRS transmission has priority is applied. When the PUSCH transmission is re-transmission, the receiver of the eNB has a higher probability of successfully decoding PUSCH via an HARQ process combining the initially transmitted PUSCH with the re-transmitted PUSCH. Therefore, the SRS transmission has a relatively high priority in re-transmitting PUSCH.
Fifth Embodiment
(111) In a fifth embodiment, specified operations are defined when UE needs to simultaneously transmit a PUSCH containing Uplink Control Information (UCI) to an FDD cell and an SRS to a TDD cell, under the condition shown in
(112) Uplink Control Information (UCI) refers to control information that UE transmits to eNB via uplink. UCI contains: ACK/NACK representing a condition as to whether downlink data transmitted from eNB to UE fails; Channel Quality Indicator (CQI) representing a status of downlink channel; Rank Indicator (RI) representing a rank of downlink channel; Pre-coding Matrix Indicator (PMI) representing pre-coding information; etc. The ACK/NACK and RI are required to have a relatively high reception capability, compared with the other factors. Therefore, when ACK/NACK and RI are multiplexed with uplink data on PUSCH, the mapping located on the time domain is fixed to be near the RS. This results in a relatively high channel estimation gain, and also a relatively high reception capability.
(113)
(114) Referring to
(115) When an SRS is transmitted during the UpPTS interval 1907 of the TDD cell 1902, the first to fourth embodiments have part of the methods that are not capable of performing uplink signal transmission to the location of the symbol 1921 to which the RI can be mapped. Therefore, when the RI is multiplexed with uplink data and the result is transmitted, a method capable of guaranteeing transmission of the symbol 1921 may be employed, e.g., Method 1, Method 3, and Method 4 of the first embodiment; Method 1 and Method 3 of the second embodiment; Method 1 and Method 4 of the third embodiment; and Method 1 and Method 3 of the fourth embodiment.
(116)
(117) Referring to
(118) The eNB assigns a schedule to UE so that UE can transmit PUSCH in the n.sup.th subframe (subframe n) in operation 2002. The eNB determines whether the transmission time points of SRS and PUSCH of the UE overlap with each other within the n.sup.th subframe in operation 2003.
(119) When the eNB ascertains that the transmission time points of SRS and PUSCH of the UE do not overlap with each other within the n.sup.th subframe in operation 2003, it is capable of receiving PUSCH transmitted from the UE, in the n.sup.th subframe in operation 2005.
(120) On the other hand, when the eNB ascertains that the transmission time points of SRS and PUSCH of the UE overlap with each other within the n.sup.th subframe in operation 2003, it is capable of receiving PUSCH and SRS from the UE, by using methods of the first to fifth embodiments in operation 2004. Since those methods were described above, their detailed description is omitted below. A method to be applied may be pre-determined between UE and eNB. Alternatively, eNB informs UE of the pre-defined method via higher-layer signaling. The process of higher-layer signaling may be performed before operation 2002 where eNB makes a schedule to enable UE to transmit PUSCH in operation 2002.
(121)
(122) Referring to
(123) The UE is scheduled by eNB to transmit PUSCH in the n.sup.th subframe (subframe n) in operation 2102. The UE determines whether the transmission time points of SRS and PUSCH overlap with each other within the n.sup.th subframe in operation 2103.
(124) When the UE ascertains that the transmission time points of SRS and PUSCH do not overlap with each other within the n.sup.th subframe in operation 2103, it is capable of transmitting PUSCH in the n.sup.th subframe in operation 2105.
(125) On the other hand, when the UE ascertains that the transmission time points of SRS and PUSCH overlap with each other within the n.sup.th subframe in operation 2103, it is capable of transmitting SRS and PUSCH, using methods of the first to fifth embodiments, in the n.sup.th subframe in operation 2104. Since its detailed description was described in the previous embodiments, it is omitted below.
(126)
(127) For the sake of the convenience, detailed descriptions of well-known functions and structures incorporated herein are omitted to avoid obscuring the subject matter of the invention. Referring to
(128) The PUSCH block 2231 of the FDD cell transmitter 2230 creates PUSCH for uplink data by performing processes, such as channel-encoding, modulation, etc. When the UE has uplink transmission signals to be transmitted to an FDD cell, the multiplexer 2233 multiplexes the uplink transmission signals with the created PUSCH. The transmitting RF block 2235 processes the multiplexed signals and transmits the processed signals to the eNB.
(129) The SRS block 2251 of the TDD cell transmitter 2250 creates an SRS signal according to the settings of eNB. When the UE has uplink transmission signals to be transmitted to a TDD cell, the multiplexer 2253 multiplexes the uplink transmission signals with the created SRS signal. The transmitting RF block 2255 processes the multiplexed signals and transmits the processed signals to the eNB.
(130)
(131) Referring to
(132) The FDD cell receiver 2330: processes signals received from the UE via the receiving RF block 2335; separates a PUSCH signal from the processed signals via the de-multiplexer 2333; and performs processes, such as demodulation, channel-decoding, etc., via the PUSCH block 2331, thereby obtaining uplink data.
(133) The TDD cell receiver 2350: processes signals received from the UE via the receiving RF block 2355; separates an SRS signal from the processed signal via the de-multiplexer 2353; and obtains uplink channel status information via the SRS block 2351.
Sixth Embodiment
(134)
(135) In a sixth embodiment, specified operations are defined when UE needs to simultaneously transmit Uplink Control Information (UCI) to an FDD cell 2401, via a Physical Uplink Control Channel (PUCCH) 2411 for transmitting control information, and an SRS to a TDD cell 2402. Since the UCI was described, in detail, in the fifth embodiment, its description is omitted below.
(136) 1) Method 1
(137) Method 1 is related to a case where the transmission interval of SRS is the last one symbol within a subframe.
(138) Referring to
(139) The UE may be previously notified, from eNB, via signaling, of a condition as to whether it can use the shortened PUCCH format. According to an embodiment, when UE is notified from eNB that it is not allowed to use the shortened PUCCH format and the transmission time points of PUCCH and SRS overlap with each other within the same subframe, it transmits PUCCH during the entire time interval of the subframe; however, it may not transmit SRS.
(140) 2) Method 2
(141) Method 2 is related to a case where the transmission interval of SRS is the last two symbols or the second-to-last symbol within a subframe.
(142) As shown in
(143) That is, when UE is notified from eNB that it is allowed to use the shortened PUCCH format and the transmission time points of PUCCH 2411 and SRS overlap with each other within the same subframe, the UE is capable of transmitting UCI in the shortened PUCCH format during the time interval except for the last one symbol interval 2410 of the subframe. UE transmits the SRS 2409 of the TDD cell 2402 in the last symbol interval of the subframe. UE does not transmit an SRS of the TDD cell 2402 which has been planned to be transmitted in the interval of the second-to-last symbol 2408 within the subframe.
(144) On the other hand, when UE is notified from eNB that it is not allowed to use the shortened PUCCH format and the transmission time points of PUCCH and SRS overlap with each other within the same subframe, it transmits PUCCH 2411 during the entire time interval of the subframe but does not transmit SRS.
(145) Referring to
(146) In a condition where UE is set to use the shortened PUCCH format, the UE does not transmit the first SRS symbol 2408 but transmits the second SRS symbol 2409 during the UpPTS interval 2407 corresponding to a time interval of the two SC-FDMA symbols in the special subframe 2404 of the TDD cell 2402. In this case, for the FDD cell 2401, UE does not transmit PUCCH in the last SC-FDMA symbol interval 2410 overlapping with the transmission time point of the second SRS symbol 2409 of the UpPTS interval 2407. In addition, UE is capable of: configuring PUCCH 2411 in the shortened PUCCH format, from channel-encoded UCI, during a time interval except for the last SC-FDMA symbol location 2410 and RS symbol locations 2412 and 2413, within a corresponding subframe 2403 of an FDD cell 2401; and transmitting it. According to embodiments, RS symbol locations 2412 and 2413 in transmission of PUCCH may differ from RS symbol locations (e.g., 512 and 513 shown in
(147)
(148) Referring to
(149) The eNB is capable of setting control information regarding SRS transmission of UE, such as a transmission period, resources for SRS transmission, etc., and notifies the UE of the settings in operation 2502. According to embodiments, the control information may be configured via higher-layer signaling.
(150) The embodiment may also be modified in such a way that operation 2502 is performed earlier than operation 2501 or they are simultaneously performed.
(151) The eNB determines whether the transmission time points of SRS and PUCCH for UCI transmission of the UE overlap with each other within the n.sup.th subframe (subframe #n) used to receive uplink signals from the UE in operation 2503. The eNB may determine the SRS transmission time point of the UE based on the information set in operation 2502. According to embodiments, when the eNB transmits downlink data to the UE at a time point of subframe #n−4 corresponding to subframe #n, it detects that the UE has sent the subframe #n containing HARQ-ACK/NACK via PUCCH.
(152) When the eNB ascertains that the transmission time points of SRS and PUCCH of the UE do not overlap with each other in operation 2503, it is capable of receiving PUCCH transmitted from the UE via the subframe #n in operation 2506. In this case, the PUCCH is a general PUCCH which does not have a shortened PUCCH format.
(153) On the other hand, when the eNB ascertains that the transmission time points of SRS and PUCCH of the UE overlap with each other in subframe #n in operation 2503, it determines whether the UE is set to use a shortened PUCCH format in operation 2504.
(154) When the eNB ascertains that the UE is set to use a shortened PUCCH format in operation 2504, it is capable of receiving SRS and PUCCH in the shortened PUCCH format from the UE, according to Method 1 or Method 2 of the sixth embodiment, in operation 2505. That is, when the transmission interval of SRS is the last one symbol within a subframe, the eNB is capable of receiving SRS and PUCCH via Method 1 of the sixth embodiment. When the transmission interval of SRS is the last two symbols or the second-to-last symbol in a special subframe, the eNB is capable of receiving SRS and PUCCH via Method 2 of the sixth embodiment. Since the detailed description was explained in the previous embodiments, it is omitted below.
(155) On the other hand, when the eNB ascertains that the UE is not set to use a shortened PUCCH format in operation 2504, it is capable of receiving PUCCH transmitted from the UE in operation 2506. In this case, the PUCCH is a general PUCCH which does not have a shortened PUCCH format.
(156)
(157) Referring to
(158) The UE is capable of obtaining control information regarding SRS transmission, from the eNB, such as a transmission period, resources for SRS transmission, etc., in operation 2602. According to embodiments, the control information may be configured via higher-layer signaling.
(159) The embodiment may also be modified in such a way that operation 2602 is performed earlier than operation 2601 or they are simultaneously performed.
(160) The UE determines whether the transmission time points of SRS and PUCCH overlap with each other within the n.sup.th subframe (subframe #n) in operation 2603. The UE may determine the SRS transmission time point based on the SRS setup information obtained in operation 2602. According to embodiments, when the eNB transmits downlink data to the UE at a time point of subframe #n−4 corresponding to subframe #n, the UE sends the subframe #n containing HARQ-ACK/NACK via PUCCH.
(161) When the UE ascertains that the transmission time points of SRS and PUCCH do not overlap with each other within the subframe #n in operation 2603, it is capable of transmitting PUCCH via the subframe #n in operation 2606. In this case, the PUCCH is a general PUCCH which does not have a shortened PUCCH format.
(162) On the other hand, when the UE ascertains that the transmission time points of SRS and PUCCH overlap with each other within the subframe #n in operation 2603, it determines whether it is set to use a shortened PUCCH format according to the setup information of the eNB in operation 2604.
(163) When the UE ascertains that it is set by the eNB to use a shortened PUCCH format in operation 2604, it is capable of transmitting SRS and PUCCH in the shortened PUCCH format, according to Method 1 or Method 2 of the sixth embodiment, in operation 2605. That is, when the transmission interval of SRS is the last one symbol within a subframe, the UE is capable of receiving SRS and PUCCH via Method 1 of the sixth embodiment. When the transmission interval of SRS is the last two symbols or the second-to-last symbol in a special subframe, the UE is capable of receiving SRS and PUCCH via Method 2 of the sixth embodiment. Since the detailed description was explained in the previous embodiments, it is omitted below.
(164) On the other hand, when the UE ascertains that it is not set by the eNB to use a shortened PUCCH format in operation 2604, it is capable of transmitting PUCCH in operation 2606. In this case, the PUCCH is a general PUCCH which does not have a shortened PUCCH format.
(165)
(166) For the sake of the convenience, detailed descriptions of well-known functions and structures incorporated herein are omitted to avoid obscuring the subject matter of the invention. Referring to
(167) The PUCCH block 2731 of the FDD cell transmitter 2730 creates PUCCH for UCI by performing processes, such as channel-encoding, modulation, etc. When the UE has uplink transmission signals to be transmitted to an FDD cell, the multiplexer 2733 multiplexes the uplink transmission signals with the created PUCCH. The transmitting RF block 2735 processes the multiplexed signals and transmits the processed signals to the eNB.
(168) The SRS block 2751 of the TDD cell transmitter 2750 creates an SRS signal according to the settings of eNB. When the UE has uplink transmission signals to be transmitted to a TDD cell, the multiplexer 2753 multiplexes the uplink transmission signals with the created SRS signal. The transmitting RF block 2755 processes the multiplexed signals and transmits the processed signals to the eNB.
(169) Although it is not shown, the FDD cell transmitter 2730 of the UE may further include a PUSCH block. In this case, the controller 2710 is capable of controlling the components, included in the FDD cell transmitter 2730 and the TDD cell transmitter 2750, to perform operations related to the PUSCH transmission and SRS transmission by the UE, using the methods of the first to fifth embodiments described above, referring to control information received from the eNB.
(170)
(171) Referring to
(172) The FDD cell receiver 2830: processes signals received from the UE via the receiving RF block 2835; separates a PUCCH signal from the processed signals via the de-multiplexer 2833; and performs processes, such as demodulation, channel-decoding, etc., via the PUCCH block 2831, thereby obtaining UCI.
(173) The TDD cell receiver 2850: processes signals received from the UE via the receiving RF block 2855; separates an SRS signal from the processed signal via the de-multiplexer 2853; and obtains uplink channel status information via the SRS block 2851.
(174) Although it is not shown, the FDD cell receiver 2830 of the eNB may further include a PUSCH block. In this case, the controller 2810 is capable of controlling the components, included in the FDD cell receiver 2830 and the TDD cell receiver 2850, to perform operations of the eNB related to the reception of SRS and PUSCH transmitted from the UE, using the methods of the first to fifth embodiments described above.
(175) The embodiments of the present invention described in the description and drawings are merely provided to assist in a comprehensive understanding of the invention and are not suggestive of limitation. It should be understood that the invention may include all modifications and/or equivalents and/or substitutions included in the idea and technical scope of the present disclosure.
(176) Although embodiments of the invention have been described in detail above, it should be understood that many variations and modifications of the basic inventive concept herein described, which may be apparent to those skilled in the art, will still fall within the spirit and scope of the embodiments of the invention as defined in the appended claims.