METHOD AND USER EQUIPMENT FOR SCHEDULING WITH MULTIPLE CELLS
20220369323 · 2022-11-17
Inventors
Cpc classification
H04W72/23
ELECTRICITY
H04L27/26025
ELECTRICITY
H04W72/1263
ELECTRICITY
H04L5/0048
ELECTRICITY
International classification
Abstract
Method and user equipment (UE) are provided for scheduling with multiple cells. In particular, a UE can connect to a plurality of cells in a network. The UE can determine a specific slot for receiving a CSI-RS from a first cell. An index of the specific slot is n+X+L while n is an index of a slot for receiving a DCI from a second cell, X is a slot offset for triggering the CSI-RS and L includes parameters associated with SCSs of the first cell and the second cell. The UE can receive the CSI-RS from the first cell in the specific slot.
Claims
1. A method, comprising: connecting, by a user equipment (UE), to a plurality of cells in a network; determining, by the UE, a specific slot for receiving a channel state information reference signal (CSI-RS) from a first cell of the plurality cells, wherein an index of the specific slot is n+X+L, where n is an index of a slot for receiving a downlink control information (DCI) from a second cell of the plurality of cells, X is a slot offset for triggering the CSI-RS and L includes parameters associated with sub-carrier spacings (SCSs) of the first cell and the second cell; and receiving, by the UE, the CSI-RS from the first cell in the specific slot.
2. The method of claim 1, wherein L is
3. The method of claim 2, wherein the first CA slot offset and the second CA slot offset are determined based on a radio resource control (RRC) configuration of the plurality of cells.
4. The method of claim 2, wherein the first index of SCS of offset and the second index of SCS of offset are determined based on a radio resource control (RRC) configuration.
5. The method of claim 2, wherein N.sub.slot,offset,PDCCH.sup.CA and μ.sub.offset,PDCCH are determined by a higher-layer configuration for the second cell, and N.sub.slot,offset,CSIRS.sup.CA and μ.sub.offset,CSIRS are determined by a higher-layer configuration for the first cell.
6. The method of claim 1, wherein the CSI-RS includes an aperiodic CSI-RS.
7. The method of claim 1, wherein the SCSs of the first cell and the second cell are the same.
8. A method, comprising: connecting, by a user equipment (UE), to a plurality of cells in a network; and receiving, by the UE, a downlink control information (DCI) from a first cell of the plurality cells, wherein the DCI indicates the UE to transmit a channel state information (CSI) reporting in an uplink slot n′ in a second cell of the plurality cells; and determining, by the UE, a CSI reference resource for the CSI reporting according to a downlink slot (n-n.sub.CSI_ref), wherein n.sub.CSI_ref is an index of a slot for CSI reference, and n is
9. The method of claim 8, wherein L is
10. The method of claim 9, wherein N.sub.slot,offset,DL.sup.CA and μ.sub.offset,DL are determined by a higher-layer configuration for the first cell, and N.sub.slot,offset,UL.sup.CA and μ.sub.offset,UL are determined by a higher-layer configuration for the second cell.
11. A user equipment (UE) comprising: a transceiver that: connects to a plurality of cells in a network; a scheduling circuit that: determines a specific slot for receiving a channel state information reference signal (CSI-RS) from a first cell of the plurality cells, wherein an index of the specific slot is n+X+L, where n is an index of a slot for receiving a downlink control information (DCI) from a second cell of the plurality of cells, X is a slot offset for triggering the CSI-RS and L includes parameters associated with sub-carrier spacings (SCSs) of the first cell and the second cell; and receives, by the transceiver, the CSI-RS from the first cell in the specific slot.
12. The UE of claim 11, wherein L is
13. The UE of claim 12, wherein the first CA slot offset and the second CA slot offset are determined based on a radio resource control (RRC) configuration of the plurality of cells.
14. The UE of claim 12, wherein the first index offset and the second index offset are determined based on a radio resource control (RRC) configuration
15. The UE of claim 12, wherein N.sub.slot,offset,PDCCH.sup.CA and μ.sub.offset,PDCCH are determined by a higher-layer configuration for the second cell, and N.sub.slot,offset,CSIRS.sup.CA and μ.sub.offset,CSIRS are determined by a higher-layer configuration for the first cell.
16. The UE of claim 11, wherein the CSI-RS includes an aperiodic CSI-RS.
17. The UE of claim 11, wherein the SCSs of the first cell and the second cell are the same.
18. A user equipment (UE) comprising: a transceiver that: connects to a plurality of cells in a network; and receives a downlink control information (DCI) from a first cell of the plurality of cells, wherein the DCI indicates the UE to transmit a channel state information (CSI) reporting in an uplink slot n′ in a second cell; a scheduling circuit that: determines a CSI reference resource for the CSI reporting according to a downlink slot (n-n.sub.CSI_ref), wherein n.sub.CSI_ref is an index of a slot for CSI reference, and n is
19. The UE of claim 18, wherein L is
20. The UE of claim 19, wherein N.sub.slot,offset,DL.sup.CA and μ.sub.offset,DL are determined by a higher-layer configuration for the first cell, and N.sub.slot,offset,UL.sup.CA and μ.sub.offset,UL are determined by a higher-layer configuration for the second cell.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The accompanying drawings, where like numerals indicate like components, illustrate embodiments of the invention.
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016] Reference will now be made in detail to some embodiments of the invention, examples of which are illustrated in the accompanying drawings.
[0017]
[0018] Each cell 121 may provide radio access using a Radio Access Technology (RAT) (e.g., the 5G NR technology). The UE 110 may be a smart phone, a wearable device, an Internet of Things (IoT) device, and a tablet, etc. Alternatively, UE 110 may be a Notebook (NB) or Personal Computer (PC) inserted or installed with a data card which includes a modem and RF transceiver(s) to provide the functionality of wireless communication.
[0019] Each cell 121 may provide communication coverage for a geographic coverage area in which communications with the UE 110 is supported via a communication link 101. The communication links 101 shown in the 5G NR network 100 may respectively include uplink (UL) transmissions from the UE 110 to the cells 121 (e.g., on the Physical Uplink Control Channel (PUCCH) or Physical Uplink Shared Channel (PUSCH)) or downlink (DL) transmissions from the cells 121 to the UE 110 (e.g., on the Physical Downlink Control Channel (PDCCH) or Physical Downlink Shared Channel (PDSCH)). The cells 121 may communicate with each other via a communication link 122 between two cells 121.
[0020]
[0021] Similarly, for the UE 110, antenna 177 transmits and receives RF signals. RF transceiver module 176, coupled with the antenna, receives RF signals from the antenna, converts them to baseband signals and sends them to processor 173. The RF transceiver 176 also converts received baseband signals from the processor 173, converts them to RF signals, and sends out to antenna 177. Processor 173 processes the received baseband signals and invokes different functional modules and circuits to perform features in the UE 110. Memory 172 stores program instructions and data 170 to control the operations of the UE 110.
[0022] The cell 121 and the UE 110 also include several functional modules and circuits that can be implemented and configured to perform embodiments of the present invention. In the example of
[0023] Configuration and control circuit 181 provides different parameters to configure and control the UE 110. The UE 110 includes a set of control functional modules and circuit 160. Scheduling circuit 162 handles scheduling with multiple cells and associated network parameters. Configuration and control circuit 161 handles configuration and control parameters from the cells 121.
[0024] Note that the different functional modules and circuits can be implemented and configured by software, firmware, hardware, and any combination thereof. The function modules and circuits, when executed by the processors 193 and 173 (e.g., via executing program codes 190 and 170), allow the cells 121 and the UE 110 to perform embodiments of the present invention.
[0025] In some embodiments, the UE 110 may connect to the cells 121. After connecting to the cells 121, the UE 110 may determine a specific slot for receiving a channel state information reference signal (CSI-RS) from a first cell of the cells 121. An index of the specific slot is n+X+L while n is an index of a slot for receiving a downlink control information (DCI) from a second cell of the cells 121, X is a slot offset for triggering the CSI-RS and L includes parameters associated with sub-carrier spaces (SCSs) of the first cell and the second cell. The UE 110 may transmit the CSI-RS in the specific slot.
[0026] In some embodiments, L is
while N.sub.slot,offset,CSIRS.sup.CA is a first carrier aggregation (CA) slot offset associated with the first cell for transmitting the CSI-RS, N.sub.slot,offset,PDCCH.sup.CA is a second CA slot offset associated with the second cell for receiving the DCI, μ.sub.offset,CSIRS is a first SCS index with maximum value among lowest configured SCSs of the plurality of cells, μ.sub.offset,PDCCH is a second SCS index with maximum value among lowest configured SCSs of the plurality of cells and μ.sub.CSIRS is an index of SCS of the first cell.
[0027] In some embodiments, N.sub.slot,offset,PDCCH.sup.CA and μ.sub.offset,PDCCH are determined by a higher-layer configuration (e.g., a radio resource control (RRC) configuration) for the second cell, and N.sub.slot,offset,CSIRS.sup.CA and μ.sub.offset,CSIRS are determined by a higher-layer configuration (e.g., an RRC configuration for the first cell. In some embodiments, the CSI-RS may include an aperiodic CSI-RS.
[0028]
[0029] In this example, DCI is transmitted in slot ‘0’ of the cell 121b. Slot offset for triggering the CSI-RS is configured as ‘0’.
[0030] A first CA slot offset of the cell 121b is determined as ‘3’ based on a reference slot (i.e., slot ‘0’) of the PCell 121a. More specifically, slot differences between slot ‘0’ of the cell 121b and slot ‘0’ of the PCell 121a are three slots of the PCell 121a. In other words, slot ‘0’ of the cell 121b starts from slot ‘3’ of the PCell 121a.
[0031] A second CA slot offset of the cell 121c is determined as ‘0’ based on the reference slot (i.e., slot ‘0’) of the PCell 121a. More specifically, there is no slot difference between slot ‘0’ of the cell 121c and slot ‘0’ of the PCell 121a. In other words, slot ‘0’ of the cell 121c starts from slot ‘0’ of the PCell 121a.
[0032] According to table 1 below, an SCS index of the PCell 121a is ‘3’, an SCS index of the cell 121b is ‘1’ and an SCS index of the cell 121c is ‘1’. The SCS index with maximum value is ‘3’. Therefore, μ.sub.offset,PDCCH ‘3’, μ.sub.offset,CSIRS is ‘3’ and the index of SCS of the cell 121c is ‘1’ (i.e., μ.sub.CSIRS is ‘1’)
TABLE-US-00001 TABLE 1 μ Frequency 0 15 kHz 1 30 kHz 2 60 kHz 3 120 kHz 4 240 kHz
[0033] Therefore, based on the formula n+X+L, in this example, the index of the specific slot for receiving CSI-RS is
Accordingly, the UE 110 may receive the CSI-RS in slot ‘0’ of the cell 121c.
[0034] In some embodiments, after connecting to the cells 121, the UE 110 may receive a DCI from a first cell of the cells 121. The DCI may indicate the UE 110 to transmit a CSI reporting in an uplink slot n′ in a second cell of the cells 121. Then, the UE 110 may determine a CSI reference resource for the CSI reporting according to a downlink slot (n-n.sub.CSI_ref). n.sub.CSI_ref is an index of a slot for CSI reference (i.e., n.sub.CSI_ref defined in 3GPP Technical Specification), and n is
while μ.sub.DL is an index of SCS of the first cell, μ.sub.UL is an index of SCS of the second cell and L includes parameters associated with SCSs of the first cell and the second cell.
[0035] In some embodiments, when discontinuous reception (DRX) is configured in the network, the UE 110 may report a CSI report only if receiving at least one CSI-RS transmission occasion for channel measurement and CSI-RS and/or CSI-IM occasion for interference measurement in DRX active time no later than CSI reference resource and drops the report otherwise.
[0036] In some embodiments, L is
while N.sub.slot,offset,DL.sup.CA is a first CA slot offset associated with the first cell for receiving the DCI, N.sub.slot,offset,UL.sup.CA is a second CA slot offset associated with the second cell for transmitting the CSI reporting, μ.sub.offset,DL is a first SCS index with maximum value among lowest configured SCSs of the plurality of cells, μ.sub.offset,UL is a second SCS index with maximum value among lowest configured SCSs of the plurality of cells and μ.sub.DL is an index of SCS of the first cell.
[0037] In some embodiments, N.sub.slot,offset,DL.sup.CA and μ.sub.offset,DL are determined by a higher-layer configuration for the first cell, and N.sub.slot,offset,UL.sup.CA and μ.sub.offset,UL are determined by a higher-layer configuration for the second cell.
[0038]
[0039] In this example, a first CA slot offset of the cell 121y is determined as ‘3’ based on a reference slot (i.e., slot ‘0’) of the PCell 121x. More specifically, slot differences between slot ‘0’ of the cell 121y and slot ‘0’ of the PCell 121x are three slots of the PCell 121x. In other words, slot ‘0’ of the cell 121y starts from slot ‘3’ of the PCell 121x.
[0040] A second CA slot offset of the cell 121z is determined as ‘0’ based on the reference slot (i.e., slot ‘0’) of the PCell 121x. More specifically, there is no slot difference between slot ‘0’ of the cell 121z and slot ‘0’ of the PCell 121x. In other words, slot ‘0’ of the cell 121z starts from slot ‘0’ of the PCell 121x.
[0041] According to table 1, an SCS index of the PCell 121x is ‘3’, an SCS index of the cell 121y is ‘1’ and an SCS index of the cell 121z is ‘1’. The SCS index with maximum value is ‘3’. Therefore, μ.sub.offset,DL ‘3’, μ.sub.offset,UL ‘3’ and an index of SCS of the cell 121y is ‘1’ (i.e., μ.sub.DL is ‘1’).
[0042] In this example, the DCI indicates the UE 110 to transmit CSI reporting in the cell 121z. Therefore, in the time domain, the CSI reference resource for a CSI reporting in uplink slot ‘0’ (i.e., n′=0) is defined by a single downlink slot n-n.sub.CSI_ref, where n is
The UE 110 determines slot of the CSI reference resource according to the downlink slot ‘0-n.sub.CSI_ref’ of the cell 121y.
[0043]
[0044] In some embodiments, L is
while N.sub.siot,offset,CSIRS.sup.CA is a first carrier aggregation (CA) slot offset associated with the first cell for transmitting the CSI-RS, N.sub.slot,offset,PDCCH.sup.CA is a second CA slot offset associated with the second cell for receiving the DCI, μ.sub.offset,CSIRS is a first SCS index with maximum value among lowest configured SCSs of the plurality of cells, μ.sub.offset,PDCCH is a second SCS index with maximum value among lowest configured SCSs of the plurality of cells and μ.sub.CSIRS is an index of SCS of the first cell.
[0045] In some embodiments, the first CA slot offset and the second CA slot offset are determined based on a reference slot of a primary cell of the plurality of cells.
[0046] In some embodiments, the first index of SCS of offset and the second index of SCS of offset are determined based an RRC configuration.
[0047] In some embodiments, N.sub.slot,offset,PDCCH.sup.CA and μ.sub.offset,PDCCH are determined by a higher-layer configuration for the second cell, and N.sub.slot,offset,CSIRS.sup.CA and μ.sub.offset,CSIRS are determined by a higher-layer configuration for the first cell.
[0048] In some embodiments, the CSI-RS includes an aperiodic CSI-RS. In some embodiments, the SCSs of the first cell and the second cell are the same.
[0049]
while μ.sub.DL is an index of SCS of the first cell, μ.sub.UL is an index of SCS of the second cell and L includes parameters associated with SCSs of the first cell and the second cell.
[0050] In some embodiments, L is
while N.sub.slot,offset,DL.sup.CA is a first CA slot offset associated with the first cell for receiving the DCI, N.sub.slot,offset,UL.sup.CA is a second CA slot offset associated with the second cell for transmitting the CSI reporting, μ.sub.offset,DL is a first SCS index with maximum value among lowest configured SCSs of the plurality of cells, μ.sub.offset,UL is a second SCS index with maximum value among lowest configured SCSs of the plurality of cells and μ.sub.DL is an index of SCS of the first cell.
[0051] In some embodiments, N.sub.slot,offset,DL.sup.CA and μ.sub.offset,DL are determined by a higher-layer configuration for the first cell, and N.sub.slot,offset,UL.sup.CA and μ.sub.offset,UL are determined by a higher-layer configuration for the second cell.
[0052] Although the present invention has been described in connection with certain specific embodiments for instructional purposes, the present invention is not limited thereto. Accordingly, various modifications, adaptations, and combinations of various features of the described embodiments can be practiced without departing from the scope of the invention as set forth in the claims.