Small cell configuration for interference mitigation
09935759 · 2018-04-03
Assignee
Inventors
- Yuantao Zhang (Beijing, CN)
- Haipeng Lei (Beijing, CN)
- Kodo Shu (Shanghai, CN)
- Cássio Ribeiro (Espoo, FI)
- Xiaolong Liu (Beijing, CN)
Cpc classification
H04W72/23
ELECTRICITY
International classification
Abstract
Configuration of various radio systems may have a number of possible benefits. For example, small cell configuration may be useful for interference mitigation. A method, in certain embodiments, can include determining a virtual subframe index for a cell. The method can also include communicating the virtual subframe index for the cell by communicating a time division duplex configuration and a relative subframe offset.
Claims
1. A method, comprising: determining a virtual subframe index for a cell, wherein the cell comprises a frequency division duplex small cell; and communicating the virtual subframe index for the cell by communicating a time division duplex configuration and a relative subframe offset, wherein determining the virtual subframe index for the cell is based at least on a system subframe index and the relative subframe offset, and wherein the determining and the communicating are performed by a base station of a macro cell that includes the cell.
2. The method of claim 1, wherein the virtual subframe index is defined by VSI=f(SSI, offset)=mod (SSI+(10offset), 10), where VSI is virtual subframe index and SSI is system subframe index.
3. The method of claim 1, wherein timing of a physical uplink control channel acknowledgement/negative acknowledgement for an uplink subframe corresponding to a base station off time at downlink follows a configured time division duplex configuration and timing of the physical uplink control channel acknowledgement/negative acknowledgement for an uplink subframe corresponding to a base station on time at downlink follows a frequency division duplex configuration.
4. The method of claim 1, wherein timing of an uplink grant for an uplink subframe corresponding to a base station off time at downlink follows a configured time division duplex configuration and timing of the uplink grant for an uplink subframe corresponding to a base station on time at downlink follows a frequency division duplex configuration.
5. A method, comprising: receiving a time division duplex configuration and a relative subframe offset; and determining a virtual subframe index for a cell based on the time division duplex configuration, a system subframe index, and the relative subframe offset, wherein the cell comprises a frequency division duplex small cell, and wherein the receiving and the determining are performed by a base station of the cell.
6. The method of claim 5, wherein the virtual subframe index is defined by VSI=f(SSI, offset)=mod (SSI+(10offset), 10), where VSI is virtual subframe index and SSI is system subframe index.
7. The method of claim 5, further comprising: transmitting, to a user equipment, a time division duplex configuration in a physical downlink control channel in a subframe with a virtual subframe index preknown to the user equipment.
8. An apparatus, comprising: at least one processor; and at least one memory including computer program code, wherein the at least one memory and the computer program code are configured to, with the at least one processor, cause the apparatus at least to: determine a virtual subframe index for a cell, wherein the cell comprises a frequency division duplex small cell; and communicate the virtual subframe index for the cell by communicating a time division duplex configuration and a relative subframe offset, wherein determination of the virtual subframe index for the cell is based at least on a system subframe index and the relative subframe offset, and wherein the apparatus comprises a base station of a macro cell that includes the cell.
9. The apparatus of claim 8, wherein the at least one memory and the computer program code are configured to, with the at least one processor, cause the apparatus at least to communicate the virtual subframe index over an X2 interface.
10. The apparatus of claim 8, wherein the virtual subframe index is defined by VSI=f(SSI, offset)=mod (SSI+(10offset), 10), where VSI is virtual subframe index and SSI is system subframe index.
11. An apparatus, comprising: at least one processor; and at least one memory including computer program code, wherein the at least one memory and the computer program code are configured to, with the at least one processor, cause the apparatus at least to: receive a time division duplex configuration and a relative subframe offset; and determine a virtual subframe index for a cell based on the time division duplex configuration, a system subframe index, and the relative subframe offset, wherein the cell comprises a frequency division duplex small cell, and wherein the apparatus comprises a base station of the cell.
12. The apparatus of claim 11, wherein the virtual subframe index is defined by VSI=f(SSI, offset)=mod (SSI+(10offset), 10), where VSI is virtual subframe index and SSI is system subframe index.
13. The apparatus of claim 11, wherein the at least one memory and the computer program code are configured to, with the at least one processor, cause the apparatus at least to transmit, to a user equipment, a time division duplex configuration in a physical downlink control channel in a subframe with a virtual subframe index preknown to the user equipment.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For proper understanding of the invention, reference should be made to the accompanying drawings, wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Challenges of using subframe level small cell on/off can include deciding how the macro cell indicates to the small cell with the subframe on/off pattern and correspondingly deciding how the small cell indicates to the user equipment (UE) the configured pattern. Another challenge may be deciding how to send the acknowledgement/negative acknowledgment (ACK/NACK or A/N) for physical uplink shared channel (PUSCH) transmissions when the corresponding downlink (DL) subframe is turned off. A further challenge may be deciding how and when to send an uplink (UL) grant for a specific PUSCH transmission when the corresponding DL subframe is turned off.
(8) According to certain embodiments, a frequency division duplex (FDD) small cell can be indicated by a macro cell, or a network node, through an X2 interface, with a time division duplex (TDD) configuration and a relative subframe offset. A system subframe index (SSI) can be a subframe index defined in the FDD mode. Various TDD configurations are described, for example, in chapter 4.2 of 3GPP TS 36.211 V11.1.0 (2012-12), 3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Evolved Universal Terrestrial Radio Access (E-UTRA); Physical Channels and Modulation (Release 11), the entirety of which is hereby incorporated herein by reference. Other TDD configurations are also permitted. In one example, the TDD configuration may be DSUUDDSUUD. By using such information, the small cell may deduce a virtual subframe index (VSI) for each DL/UL subframe. The function may be VSI=f(SSI, offset)=mod (SSI+(10offset), 10).
(9)
(10) The TDD configuration can be transmitted in a physical downlink control channel (PDCCH) in the subframe with the
(11) virtual subframe index preknown by the UE. The preknown information may be informed to the UE using radio resource control (RRC) signaling. Alternatively, the user equipment could be configured by default to expect the TDD configuration in a specific subframe, for example virtual subframe 0. Other ways of configuring the preknown information are also permitted.
(12) With such a configuration, the related transmission timing can follow various rules. For example, the PUSCH A/N for the UL subframe corresponding to X (namely an eNB-off time) at DL can follow the timing defined for the configured TDD configuration. The PUSCH A/N for the UL subframe (SF) corresponding to DL transmission (namely an eNB-on time marked as D in
(13) Additionally, the UL grant scheduling timing for the UL subframe corresponding to X (namely an eNB-off time) at DL can follow the configured TDD configuration. The UL-grant scheduling timing for the UL subframe corresponding to D (namely an eNB-on time) can follow the FDD configuration.
(14) One additional new bit can be included in the UL-grant downlink control information (DCI) to differentiate whether this DCI schedules the PUSCH transmission in the following UL SF following FDD timing or TDD timing.
(15) As described above, an FDD small cell could be configured with a TDD configuration, and a relative subframe offset, by which the small cell will deduce a virtual subframe index for each DL/UL subframe. The function for such derivation can be VSI=f(SSI, offset)=mod (SSI+(10-offset), 10), as also mentioned above.
(16)
(17) The TDD configuration can be transmitted in PDCCH in the subframe with the virtual subframe index preknown by the UE, for example, in the virtual subframe index 0.
(18) With such configuration, the related transmission timing can follow various rules. For example, the UL-grant timing for the UL subframe overlapped with X can follow the configured TDD configuration. The UL-grant timing for the UL subframe overlapped with D can follow the FDD configuration. For example, in
(19) The PUSCH A/N for the UL subframe overlapped with X can follow the timing defined for the configured TDD configuration. The PUSCH A/N for the UL SF overlapped with DL subframe can follow the timing defined for the FDD configuration. For example, in
(20) When the UL grant for a particular UL SF happens to be in the X subframe or when the A/N for a particular UL SF happens to be in the X subframe, the UL can just transmit to the channel without depending on scheduling, like physical uplink control channel (PUCCH), sounding reference signal (SRS), or the like, or even semi-persistent scheduling (SPS) data. Another alternative is to modify the UL grant or the A/N to the nearest SF, and then the UL SF could be a normal subframe.
(21) As shown in
(22)
(23)
(24) The cell can be a frequency division duplex small cell. For example, the cell can be the cell controlled by small cell eNB 320 in
(25) In
(26) The receiving and the determining can be performed by a base station of the cell, such as small cell eNB 320 in
(27) The method can also include, at 450, transmitting, to a user equipment, a time division duplex configuration in a physical downlink control channel in a subframe with a virtual subframe index preknown to the user equipment. This preknown subframe index may, for example, be virtual subframe index 0.
(28)
(29) Each of these devices may include at least one processor, respectively indicated as 514, 524, and 534. At least one memory can be provided in each device, and indicated as 515, 525, and 535, respectively. The memory may include computer program instructions or computer code contained therein. The processors 514, 524, and 534 and memories 515, 525, and 535 can be configured to provide means corresponding to the various blocks of
(30) As shown in
(31) Transceivers 516, 526, and 536 can each, independently, be a transmitter, a receiver, or both a transmitter and a receiver, or a unit or device that is configured both for transmission and reception. Transceivers 516, 526, and 536 can also be configured to include or function as a network interface card.
(32) Processors 514, 524, and 534 can be embodied by any computational or data processing device, such as a central processing unit (CPU), application specific integrated circuit (ASIC), or comparable device. The processors can be implemented as a single controller, or a plurality of controllers or processors.
(33) Memories 515, 525, and 535 can independently be any suitable storage device, such as a non-transitory computer-readable medium. A hard disk drive (HDD), random access memory (RAM), flash memory, or other suitable memory can be used. The memories can be combined on a single integrated circuit as the processor, or may be separate from the one or more processors. Furthermore, the computer program instructions stored in the memory and which may be processed by the processors can be any suitable form of computer program code, for example, a compiled or interpreted computer program written in any suitable programming language.
(34) The memory and the computer program instructions can be configured, with the processor for the particular device, to cause a hardware apparatus such as UE 510, small eNB 520, and macro eNB 530, to perform any of the processes described above (see, for example,
(35) Furthermore, although
(36) Various advantages or benefits may arise from certain embodiments. For example, with seven available time division duplex configurations, certain embodiments could achieve flexible configuration on the subframe on/off.
(37) One having ordinary skill in the art will readily understand that the invention as discussed above may be practiced with steps in a different order, and/or with hardware elements in configurations which are different than those which are disclosed. Therefore, although the invention has been described based upon these preferred embodiments, it would be apparent to those of skill in the art that certain modifications, variations, and alternative constructions would be apparent, while remaining within the spirit and scope of the invention. In order to determine the metes and bounds of the invention, therefore, reference should be made to the appended claims.
Glossary
(38) A/N ACK/NACK
(39) CRS Cell-specific Reference Signal
(40) DCI Downlink Control Information
(41) DL Downlink
(42) FDD Frequency Division Duplex
(43) LTE Long Term Evolution
(44) MBSFN Multicast-Broadcast Single Frequency Network
(45) PDCCH Physical Downlink Control Channel
(46) PUCCH Physical Uplink Control Channel
(47) PUSCH Physical Uplink Shared Channel
(48) RRC Radio Resource Control
(49) SF Subframe
(50) SPS Semi-Persistent Scheduling
(51) SRS Sounding Reference Signal
(52) SSI System Subframe Index
(53) TDD Time Division Duplex
(54) UE User Equipment
(55) UL Uplink
(56) UPT User Packet Throughput
(57) VSF Virtual Subframe
(58) VSI Virtual Subframe Index