Sign In to Follow Application
View All Documents & Correspondence

Improved Channel Quality Indicator Method

Abstract: It would be to provide a method which will work with future versions of LTE-A, be backwards compatible and alleviate interference to signals for basic system operation. The method includes generating one or more Reference Signals associated with the one or more Channel Quality Indicators, and includes mapping the one or more Channel Quality Indicator-Reference Signals to the last symbol of the second slot of the one or more subframes. Figure 1A

Get Free WhatsApp Updates!
Notices, Deadlines & Correspondence

Patent Information

Application #
Filing Date
24 August 2012
Publication Number
02/2014
Publication Type
INA
Invention Field
COMMUNICATION
Status
Email
Parent Application
Patent Number
Legal Status
Grant Date
2020-05-01
Renewal Date

Applicants

NEC CORPORATION
7-1, SHIBA 5-CHOME, MINATO-KU, TOKYO 108-8001

Inventors

1. NG, BOON LOONG
C/O NEC AUSTRALIA PTY. LTD., 649-655 SPRINGVALE ROAD, MULGRAVE, VICTORIA 3170

Claims

1. A method implemented in a wireless communications system, the method comprising: transmitting from a base station to a user equipment (UE) one or more channel quality indicator (CQI) reference signals in a subframe; and transmitting from the user equipment to the base station a report determined according to said one or more CQI reference signals, wherein the CQI reference signal transmission is repeated at a CQI reference signal transmission period, and wherein a subframe offset is provided within a frame for the CQI reference signal transmission.

2. The method according to claim 1, wherein the report comprises at least one of a rank indicator (RI), a CQI, and a precoding matrix indicator (PMI).

3. The method according to claim 1, wherein the CQI reference signal transmission avoids collision with a Cell-specific Reference Signal (CRS), a Dedicated Reference Signal (DRS), a Physical Broadcast Channel (PBCH), or a synchronization signal.

4. The method according to claim 1, wherein the CQI reference signal transmission period comprises any of 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms.

5. The method according to claim 1, wherein the CQI reference signal transmission period comprises any of 2 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Frequency Division Duplex (FDD) transmission.

6. The method according to claim 1 wherein the CQI reference signal transmission period comprises any of 1 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Time Division Duplex (TDD) transmission.

7. The method according to claim 1, wherein the CQI reference signal transmission period is cell-specific and a CQI or PMI reporting period is UE-specific.

8. The method according to claim 1, wherein a CQI or PMI reporting period is equal to or longer than the CQI reference signal transmission period.

9. The method according to claim 1, wherein the subframe offset is relative to subframe 0 within the frame and takes a value from 0 ms to (TCQI.RS - 1 ms) where TCQI-RS denotes the CQI reference signal transmission period.

10. The method according to claim 1, wherein the subframe offset is cell-specific.

11. The method according to claim 1, wherein said one or more CQI reference signals are used for one or more antenna ports for spatial multiplexing, the number of said one or more antenna ports being equal to or less than 8, or for one or more transmission layers, the number of said one or more transmission layers being equal to or less than 8.

12. The method according to claim 1, wherein a CQI reference signal position depends on a cyclic prefix (CP) length.

13. The method according to claim 1, wherein the base station is configured to be used in a Coordinated Multi-Point (CoMP) transmission.

14. A wireless communications system, comprising: a user equipment (UE); a base station to transmit to the user equipment a channel quality indicator (CQI) reference signals in a subframe, wherein the user equipment transmits to the base station a report determined according to the CQI reference signals, and wherein the subframe comprises a resource block and a last OFDM (orthogonal frequency-division multiplexing) symbol in the resource block conveys the CQI reference signal.

15. The wireless communications system according to claim 14, wherein the report comprises at least one of a rank indicator (RI), a CQI, and a precoding matrix indicator (PMI).

16. The wireless communications system according to claim 14, wherein the CQI reference signal transmission avoids collision with a Cell-specific Reference Signal (CRS), a Dedicated Reference Signal (DRS), a Physical Broadcast Channel (PBCH), or a synchronization signal.

17. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period comprises any of 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms.

18. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period comprises any of 2 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Frequency Division Duplex (FDD) transmission.

19. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period comprises any of 1 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Time Division Duplex (TDD) transmission.

20. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period is cell-specific and a CQI or PMI reporting period is UE-specific.

21. The wireless communications system according to claim 14, wherein a CQI or PMI reporting period is equal to or longer than the CQI reference signal transmission period.

22. The wireless communications system according to claim 14, wherein the subframe offset is relative to subframe 0 within the frame and takes a value from 0 ms to (TCQI-RS - 1 ms) where TCQI-RS denotes the CQI reference signal transmission period.

23. The wireless communications system according to claim 14, wherein the subframe offset is cell-specific.

24. The wireless communications system according to claim 14, wherein said one or more CQI reference signals are used for one or more antenna ports for spatial multiplexing, the number of said one or more antenna ports being equal to or less than 8, or for one or more transmission layers, the number of said one or more transmission layers being equal to or less than 8.

25. The wireless communications system according to claim 14, wherein a CQI reference signal position depends on a cyclic prefix (CP) length.

26. The wireless communications system according to claim 14, wherein the base station is configured to be used in a Coordinated Multi-Point (CoMP) transmission.

Specification

DESCRIPTION

Technical Field

The present invention relates to wireless communications systems, and more particularly to a method for determining and transmitting Channel Quality Indicator Reference Signals (CQI-RS) from one or more subframes such mat an associated User Equipment (UE) can use the CQI-RS to measure CQL

Background Art

In advanced mobile communication systems, such as the Long-Term-Evolution (LTE) system and the Long-Term-Evolution Advanced (LTE-A) system, User Equipment (UE) is utilised to measure and to report a number of parameters in the communication system including Rank Indicator (RI), Channel Quality Indicator (CQI) or Precoding Matrix Indicator (PMI) to the evolved Node B (eNB) thereby enabling support of resource allocation, link adaptation and spatial multiplexing transmission.

Currently, LTE (Release-8) RI, CQI/PMI measurement is performed based on the cell-specific reference signals (CRS). Each CRS is associated with transmit antenna ports at me eNB (there is a maximum of 4 transmit antenna ports). Therefore, the maximum number of transmission layers mat can be supported for spatial multiplexing is limited by the number of antenna ports available (i.e. 4).

It is envisaged that for LTE-A (Release-10), the. number of antenna ports used for spatial multiplexing or the number of transmission layers should be up to 8. Therefore, more Reference Signals are needed to enable the support of higher-order MIMO transmission.
Further, a new technology under consideration for LTE-A is Coordinated Multi-Point (CoMP) transmission. The LTE-A UE may therefore also be required to measure and report the RL CQI/PMI (or similar metric) for the Reference Signal transmitted from the eNBs mat participate in CoMP transmission.

A problem with this increase in complexity is the possibility of interference to signals important for basic system operation together with backward compatibility issues on older UEs.

It would therefore be desirable to provide a method which will work with fixture versions of LTE-A be backwards compatible and alleviate interference to signals for "basic system operation.

It will be appreciated that a reference herein to any matter which is given as prior art is
not to be taken as an admission that that matter was, in Australia or elsewhere, known or that the information it contains was part of the common general knowledge as at the priority date of the claims forming part of this specification.

Disclosure of the Invention

A improved channel quality indicator method for determining and transmitting one or more Channel Quality Indicator Reference Signals from one or more subframes such that an associated User Equipment can use the Channel Quality Indicator Reference Signals to measure Channel Quality Indicator, the subframes including first and second slots, each of the first and second slots including a plurality of symbols, and each of the first and second slots forming a resource block, wherein the method comprising:

generating one or more Reference Signals associated with the one or more Channel Quality Indicators;

mapping the one or more Channel Quality Indicator-Reference Signals to the last symbol of the second slot of the one or more subframes.

The following description refers in more detail to the various features and steps of the present invention. To facilitate an understanding of the invention, reference is made in the description to the accompanying drawings where the invention is illustrated in a preferred embodiment It is to be understood however that the invention is not limited to the preferred embodiment illustrated in the drawings.

Brief Description of the Drawings

Figure 1A is a schematic diagram of a subframe having two normal Cyclic Prefix (CP) resource blocks illustrating the location of the CQI-RS for one layer,

Figure 1B is a schematic diagram of a subframe having two extended Cyclic Prefix (CP) resource blocks illustrating the location of the CQI-RS for one layer;

Figure 2 is a schematic diagram of a subframe having two normal Cyclic Prefix (CP) resource blocks illustrating the location of the CQI-RS for multiple layers for multiplexing via (Frequency Division Multiplexing) FDM;

Figure 3 is a schematic diagram of a subframe having two normal Cyclic Prefix (CP) resource blocks illustrating the location of the CQI-RS for multiple layers for multiplexing via hybrid FDM and (Code Division Multiplexing) CDM;

Figure 4 is a schematic diagram of a subframe having two normal Cyclic Prefix (CP) resource blocks illustrating the location of the CQI-RS for multiple layers for CoMP cells
multiplexed via hybrid FDM and CDM;

Figure 5 is a schematic diagram of a series of subframes illustrating use of a cell-specific subframe offset;

Figure 6 is a schematic diagram of a series of subframes illustrating use of a cell-specific subframe offset designed for CoMP cells;

Figure 7 is a schematic diagram of bandwidth of subframes illustrating the use of the resource block offset parameter RBoffset; and

Figure 8 is a schematic diagram of bandwidth of subframes illustrating the use of the resource block offset parameter RBoffset suitable for CoMP cells.

Carrying Out the Invention.

Exemplary embodiments of the present invention are next described in detail with reference to the accompanying figures

Referring now to Figure 1 A, there is shown a subframe 100 having two normal Cyclic Prefix (CP) resource blocks 105,110.. The subframe 100 is shown with a frequency (f) axis and a time (t) axis. The resource blocks 105,110 are transmission units which are one slot 130,135 wide in time (t) and twelve subcarriers wide in frequency (f). Included in each of the slots 130, 135 are seven symbols along the time axis for a normal Cyclic Prefix resource block 105, 110. A number of resource elements which make up the overall resource block 105, 110 are cell-specific reference, signals (CRS) 25 and first and second "Long Term Evolution - Advanced Channel Quality Indicator-Reference Signal" (LTE-A CQI-RS) 115,120.

In pperation, the CQI-RS of a layer is transmitted in last OFDM symbol (i.e. OFDM symbol number 6 in the second slot 135), in order to avoid collision with Rel-8 cell-specific reference signals (CRS), Rel-8 Dedicated Reference Signal (DRS), and Physical Broadcast CHannel (PBCH) and synchronisation signals. Preferably, there are two CQI-RS REs within a resource block 105,110 and the CQI-RSs are uniformly distributed over the 12 subcarriers of the resource block. Providing two CQI-RS REs for each layer is advantageous since it has been found to provide a good balance between CQI-RS overhead and CQI measurement performance.

Also shown in Figure 1A, is a first cell-specific subcarrier offset foffset for higher-layer configurations. First foffset determines the Resource Element (RE) location offset of the CQI-RS from the lowest subcarrier index in a resource block. This is shown in Figufe 1A for First foffset - 2. In the preferred case of two CQI-RS REs per resource block, First foffset can take value from 0-5.

Figure IB is identical to Figure 1A but illustrates a subframe 100 which includes two
extended Cyclic Prefix (CP) resource blocks 105, 110. The subframe 100 is shown with a frequency (i) axis and a time (t) axis. The resource blocks 105,110 are transmission units which are one slot 130,135 wide in time (t) and twelve subcarriers wide in frequency (f). Each of the slots 130,135 are six symbols along the time axis for an extended Cyclic Prefix resource block 105,110. In operation, the CQI-RS of a layer is transmitted in last OFDM symbol (i.e. OFDM symbol number 5 in the second slot 135).

Advantageously, by designing CQI-RS for all layers applicable to LTE-A operation to be - placed in only one particular OFDM symbol within a subframe provides a simple way to avoid interference to/from Rel-8 CRS, Rel-8 DRS, and PBCH and synchronisation signals.

Figure 2 is shows a subframe 200 having two normal Cyclic Prefix (CP) resource blocks 205, 210 arid further shows the preferred location of the CQI-RS for multiple layers for multiplexing via Frequency Division Multiplexing. Like Figures 1A and IB, the subframe 200 is shown with a frequency (f) axis and a time (t) axis. The resource blocks 205, 210 are transmission units which are one slot 230, 235 wide in time (t) and twelve subcarriers wide in frequency (f). Each of the slots 230,235 include seven symbols along the time axis for a normal Cyclic Prefix resource block 205, 210. A number of resource elements make up the resource block 205, 210 including cell-specific reference signals (CRS) 225 together with first LTE-A CQI-RS 240 (layer 1), second LTE-A CQI-RS 245 (layer 1), first LTE-A CQI-RS 250 layer 2), second LTE-A CQI-RS 255 (for layer 2), first LTE-A CQI-RS 260 (layer 3), second LTE-A • CQI-RS 265 (layer 3), first LTE-A CQI-RS 270 (layer 4) and second LTE-A CQI-RS 275 (layer 4).

In Figure.2, CQI-RS of all layers for LTE-A operation are transmitted in the same OFDM symbol (Le. symbol number 6) for the case that the layers are multiplexed via FDM. The particular arrangement within the FDM framework is illustrative, other arrangements are possible.

Figure 3 shows a subframe 300 having two normal Cyclic Prefix (CP) resource blocks 305, 310 and further shows the preferred location of the CQI-RS for multiple layers for multiplexing via hybrid Frequency Division Multiplexing (FDM) and Code Division Multiplexing (CDM). A number of resource elements make up the resource block 305, 310 including cell-specific reference signals (CRS) 325 together with first LTE-A CQI-RS 315 (layer 1 and layer 2), second LTE-A CQI-RS 320 Gayer 1 and layer 2), first LTE-A CQI-RS 340 Gayer 3 and |ayer 4) and second LTE-A CQI-RS 345 Gayer 3 and layer 4).

In Figure 3, CQI-RS of all layers for LTE-A operation are transmitted in the same OFDM symbol G-e. symbol number 6) for the case that the layers are multiplexed hybrid via FDM and CDM. The particular arrangement within the hybrid FDM and CDM framework is illustrative, other arrangements are possible.

Figure 4 shows a subfiame 400 having two normal Cyclic Prefix (CP) resource blocks 405, 410 illustrating the location of the CQI-RS for multiple layers for CoMP cells multiplexed via hybrid FDM and CDM. In operation, the CQI-RS of a layer is transmitted in last OFDM symbol (i.e. OFDM symbol number 6 in the second slot 435), in order to mitigate CQI-RS intercell interference. The intercell interference is farmer reduced by including a first cell-specific subcarrier offset First foffset and a second cell-specific subcarrier offset Second foffset. First foffset determines the Resource Element (RE) location offset of the CQI-RS from the lowest subcarrier index of a resource block for Cell-1. This is shown in Figure 4 for First foffset = 2. Second foffset determines the Resource Element (RE) location offset of the CQI-RS from the lowest subcarrier index of a resource block for Cell-2. This is shown in Figure 4 for Second foffset= 4. Therefore, LTE-A CQI-RS are as follows: first LTE-A CQI-RS 440 (layer 1 and 2 for cell 1), second LTE-A CQI-RS 445 (layer 1 and 2 for cell 1), first LTE-A CQI-RS 450 layer 3 and 4 for cell 1), second LTE-A CQI-RS 455 (layer 3 and 4 for cell 1), first LTE-A CQI-RS 460 (layer 1 and 2 for cell 2), second LTE-A CQI-RS 465 (layer 1 and 2 for cell 2), first LTE-A CQI-RS 470 (layer 3 and 4 for cell 2) and second LTE-A CQI-RS 475 (layer 3 and 4 for cell 2).

Advantageously, foffset allows for robust intercell interference management for CoMP CQI-RS transmission.

Transmission period configuration of LTE-A only CQI-RS

Figure 5 is a schematic diagram of a series of subframes 500 illustrating use of a cell-specific subframe offset SFoffset 510 and the CQI-RS transmission period, TOQI-RS.505. TCQI. RS.505 is the same as the CQI/PMI reporting period for LTE ReI-8, i.e. 2ms, 5ms, 10ms, 20ms, 40ms, 80ms and 160ms for Frequency Division Duplex (FDD), and 1ms, 5ms, l0ms, 20ms, 40ms, 80ms and 160ms for Time Division Duplex (TDD). However, TCQI-RS.505 is cell-specific while the CQIZPMI reporting period is UE-specific, hence the configuration of TCQI-RS.505 and CQI/PMI reporting period are independent In practice, the CQI/PMI reporting period is generally not shorter than TCQI-Rs.505.

Higher-layer configured cell-specific subframe offset SFoffset 510 determines the
subframe offset for CQI-RS transmission relative to subframe 0 within a frame. SFoffset takes the value from 0ms to (TCQI-RS -1) ms. Figure 5 shows a TCQI-RS.505 of 2ms and SFoffset of lms.

Advantageously, TCQI.RS.505 is useful in controlling the CQI-RS overhead whereas
SFoffset 510 is useful for mitigating CQI-RS intercell interference among CoMP cells.

Figure 6 shows a series of subframes 600 and illustrates an example of how SFoffset can be used to avoid CQI-RS of different CoMP cells being transmitted in the same subframe. In this case Cell-1 SFoffset 625 has a value of 1ms and Cell-2 SFoffset 610 has a value of 0ms and a TCQI-RS.605 of 2ms.

Resource block allocation for LTE-A only CQI-RS

The CQI-RS subband which may be denoted k is defined in the similar way as the CQI-reporting subband for LTE Rel-8. The CQI-RS subband size or equivalently the total number of resource blocks that contain CQI-RS is determined based on the system bandwidth for a single component carrier, similar to the CQI-reporting subband size determination for LTE Rel-8. Specifically, the CQI-RS subband size is determined as shown in Table 1.

System Bandwidth of I CQI-RS Subband a single component Size, k carrier
Entire system 6-7 bandwidth 8-10 ~4 11-26 1 64-110 1

Table 1: CQI-RS Subband Size k vs. System Bandwidth of a single component carrier
There is only one resource block in a CQI-RS subband that contains CQI-RS. With this in mind, Figure 7 shows a schematic diagram of bandwidth (20Mhz) of subframes 700 (having eight resource blocks in each subband 715) illustrating the use of the resource block offset parameter RBoffset710. Each subband 715 includes a resource block 705 which contains CQI-RS (the subband size = 8 resource blocks). The exact location of the resource block that contains CQI-RS is determined by the parameter RBoffset 710. RBoffset ranges from 0 to k-1.

RBoffset 710 can be either configured by a higher-layer or can cycle from the first resource block to the last resource block within the subband as subframe number increments (i.e. •'found-robin allocation of the CQI-RS to the resource blocks within the subband).

Advantageously, the parameter RBoffset can also be used to mitigate CQI-RS intercell
interference among CoMP cells as shown, in Figure 8. In Figure 8 there shown a Cell-1 RBoffset 820 and a Cell-2 RBoffset 825 within a subband 81S. The two offsets are used to avoid CQI-RS of different CoMP cells being transmitted in the same resource block. In case of the round-robin assignment, collision can be avoided by configuring different starting position for different CoMP cell for the round-robin operation.

Advantageously, there is only one resource block in a CQI-RS subband that contains CQI-RS. The total number of resource blocks that contain CQI-RS is determined based on the system bandwidth for a single component carrier. Advantageously, the resource blocks containing CQI-RS are uniformly distributed over the system bandwidth which means it is able to cover the entire system bandwidth (within a component carrier). This is known as the . "wideband" requirement in LTE-A. In a further advantage, the arrangement minimises the impact on legacy User Equipment (e.g: LTE Rel-8) by minimising the number of resource blocks that contains CQI-RS within a subband.

Although the exemplary embodiments of the invention have been disclosed for illustrative purposes, those skilled in the art will appreciate mat various modifications, additions and substitutions are possible without departing from the scope of the present invention. Therefore, the present invention is not limited to the above-described embodiments but is defined by the following claims.

This application is based upon and claims the benefit of priority from Australian provisional patent application No. 2009901196 filed on March 19,2009 the disclosure of which is incorporated herein in its entirety by reference.

WE CLAIM:

1. A method implemented in a wireless communications system, the method comprising:

transmitting from a base station to a user equipment (UE) one or more channel quality indicator (CQI) reference signals in a subframe; and

transmitting from the user equipment to the base station a report determined according to said one or more CQI reference signals,

wherein the CQI reference signal transmission is repeated at a CQI reference signal transmission period, and

wherein a subframe offset is provided within a frame for the CQI reference signal transmission.

2. The method according to claim 1, wherein the report comprises at least one of a rank indicator (RI), a CQI, and a precoding matrix indicator (PMI).

3. The method according to claim 1, wherein the CQI reference signal transmission avoids collision with a Cell-specific Reference Signal (CRS), a Dedicated Reference Signal (DRS), a Physical Broadcast Channel (PBCH), or a synchronization signal.

4. The method according to claim 1, wherein the CQI reference signal transmission period comprises any of 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms.

5. The method according to claim 1, wherein the CQI reference signal transmission period comprises any of 2 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Frequency Division Duplex (FDD) transmission.

6. The method according to claim 1 wherein the CQI reference signal transmission period comprises any of 1 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Time Division Duplex (TDD) transmission.

7. The method according to claim 1, wherein the CQI reference signal transmission period is cell-specific and a CQI or PMI reporting period is UE-specific.

8. The method according to claim 1, wherein a CQI or PMI reporting period is equal to or longer than the CQI reference signal transmission period.

9. The method according to claim 1, wherein the subframe offset is relative to subframe 0 within the frame and takes a value from 0 ms to (TCQI.RS - 1 ms) where TCQI-RS denotes the CQI reference signal transmission period.

10. The method according to claim 1, wherein the subframe offset is cell-specific.

11. The method according to claim 1, wherein said one or more CQI reference signals are used for one or more antenna ports for spatial multiplexing, the number of said one or more antenna ports being equal to or less than 8, or for one or more transmission layers, the number of said one or more transmission layers being equal to or less than 8.

12. The method according to claim 1, wherein a CQI reference signal position depends on a cyclic prefix (CP) length.

13. The method according to claim 1, wherein the base station is configured to be used in a Coordinated Multi-Point (CoMP) transmission.

14. A wireless communications system, comprising:

a user equipment (UE);

a base station to transmit to the user equipment a channel quality indicator (CQI) reference signals in a subframe,

wherein the user equipment transmits to the base station a report determined according to the CQI reference signals, and

wherein the subframe comprises a resource block and a last OFDM (orthogonal frequency-division multiplexing) symbol in the resource block conveys the CQI reference signal.

15. The wireless communications system according to claim 14, wherein the report comprises at least one of a rank indicator (RI), a CQI, and a precoding matrix indicator (PMI).

16. The wireless communications system according to claim 14, wherein the CQI reference signal transmission avoids collision with a Cell-specific Reference Signal (CRS), a Dedicated Reference Signal (DRS), a Physical Broadcast Channel (PBCH), or a synchronization signal.

17. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period comprises any of 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms.

18. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period comprises any of 2 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Frequency Division Duplex (FDD) transmission.

19. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period comprises any of 1 ms, 5 ms, 10 ms, 20 ms, 40 ms, 80 ms, and 160 ms for Time Division Duplex (TDD) transmission.

20. The wireless communications system according to claim 14, wherein the CQI reference signal transmission period is cell-specific and a CQI or PMI reporting period is UE-specific.

21. The wireless communications system according to claim 14, wherein a CQI or PMI reporting period is equal to or longer than the CQI reference signal transmission period.

22. The wireless communications system according to claim 14, wherein the subframe offset is relative to subframe 0 within the frame and takes a value from 0 ms to (TCQI-RS - 1 ms) where TCQI-RS denotes the CQI reference signal transmission period.

23. The wireless communications system according to claim 14, wherein the subframe offset is cell-specific.

24. The wireless communications system according to claim 14, wherein said one or more CQI reference signals are used for one or more antenna ports for spatial multiplexing, the number of said one or more antenna ports being equal to or less than 8, or for one or more transmission layers, the number of said one or more transmission layers being equal to or less than 8.

25. The wireless communications system according to claim 14, wherein a CQI reference signal position depends on a cyclic prefix (CP) length.

26. The wireless communications system according to claim 14, wherein the base station is configured to be used in a Coordinated Multi-Point (CoMP) transmission.

Documents

Orders

Section Controller Decision Date

Application Documents

# Name Date
1 7381-CHENP-2012 FORM-5 24-08-2012.pdf 2012-08-24
2 7381-CHENP-2012 FORM-3 24-08-2012.pdf 2012-08-24
3 7381-CHENP-2012 FORM-2 24-08-2012.pdf 2012-08-24
4 7381-CHENP-2012 FORM-18 24-08-2012.pdf 2012-08-24
5 7381-CHENP-2012 FORM-1 24-08-2012.pdf 2012-08-24
6 7381-CHENP-2012 DRAWINGS 24-08-2012.pdf 2012-08-24
7 7381-CHENP-2012 DESCRIPTION (COMPLETE) 24-08-2012.pdf 2012-08-24
8 7381-CHENP-2012 CORRESPONDENCE OTHERS 24-08-2012.pdf 2012-08-24
9 7381-CHENP-2012 CLAIMS 24-08-2012.pdf 2012-08-24
10 7381-CHENP-2012 ABSTRACT 24-08-2012.pdf 2012-08-24
11 7381-CHENP-2012 FORM - 13 23-04-2013.pdf 2013-04-23
12 7381-CHENP-2012 AMENDED CLAIMS 23-04-2013.pdf 2013-04-23
13 7381-CHENP-2012 CORRESPONDENCE OTHERS 23-04-2013.pdf 2013-04-23
14 abstract7381-CHENP-2012.jpg 2013-10-23
15 7381-CHENP-2012 POWER OF ATTORNEY 11-12-2014.pdf 2014-12-11
16 7381-CHENP-2012 CORRESPONDENCE OTHERS 11-12-2014.pdf 2014-12-11
17 7381-CHENP-2012 ASSIGNMENT 11-12-2014.pdf 2014-12-11
18 lenovo gpa.pdf 2014-12-16
19 LENOVO COPY OF ASSIGNMENT.pdf 2014-12-16
20 7381 Form 6.pdf 2014-12-16
21 7381-CHENP-2012-FER.pdf 2018-10-04
22 7381-CHENP-2012-Proof of Right (MANDATORY) [04-04-2019(online)].pdf 2019-04-04
23 7381-CHENP-2012-PETITION UNDER RULE 137 [04-04-2019(online)].pdf 2019-04-04
24 7381-CHENP-2012-PETITION UNDER RULE 137 [04-04-2019(online)]-1.pdf 2019-04-04
25 7381-CHENP-2012-OTHERS [04-04-2019(online)].pdf 2019-04-04
26 7381-CHENP-2012-Information under section 8(2) (MANDATORY) [04-04-2019(online)].pdf 2019-04-04
27 7381-CHENP-2012-FORM-26 [04-04-2019(online)].pdf 2019-04-04
28 7381-CHENP-2012-FORM 3 [04-04-2019(online)].pdf 2019-04-04
29 7381-CHENP-2012-FER_SER_REPLY [04-04-2019(online)].pdf 2019-04-04
30 7381-CHENP-2012-DRAWING [04-04-2019(online)].pdf 2019-04-04
31 7381-CHENP-2012-CLAIMS [04-04-2019(online)].pdf 2019-04-04
32 7381-CHENP-2012-ABSTRACT [04-04-2019(online)].pdf 2019-04-04
33 7381-CHENP-2012-HearingNoticeLetter01-10-2019.pdf 2019-10-01
34 7381-CHENP-2012-FORM-26 [01-10-2019(online)].pdf 2019-10-01
35 7381-CHENP-2012-Correspondence to notify the Controller (Mandatory) [01-10-2019(online)].pdf 2019-10-01
36 7381-CHENP-2012-Written submissions and relevant documents (MANDATORY) [16-10-2019(online)].pdf 2019-10-16
37 7381-CHENP-2012-PatentCertificate01-05-2020.pdf 2020-05-01
38 7381-CHENP-2012-Marked up Claims_Granted 336375_01-05-2020.pdf 2020-05-01
39 7381-CHENP-2012-IntimationOfGrant01-05-2020.pdf 2020-05-01
40 7381-CHENP-2012-Drawings_Granted 336375_01-05-2020.pdf 2020-05-01
41 7381-CHENP-2012-Description_Granted 336375_01-05-2020.pdf 2020-05-01
42 7381-CHENP-2012-Claims_Granted 336375_01-05-2020.pdf 2020-05-01
43 7381-CHENP-2012-Abstract_Granted 336375_01-05-2020.pdf 2020-05-01
44 7381-CHENP-2012-RELEVANT DOCUMENTS [05-05-2022(online)].pdf 2022-05-05
45 7381-CHENP-2012-RELEVANT DOCUMENTS [28-09-2022(online)].pdf 2022-09-28
46 7381-CHENP-2012-RELEVANT DOCUMENTS [18-09-2023(online)].pdf 2023-09-18

Search Strategy

1 search_03-10-2018.pdf

ERegister / Renewals

3rd: 31 Jul 2020

From 17/03/2012 - To 17/03/2013

4th: 31 Jul 2020

From 17/03/2013 - To 17/03/2014

5th: 31 Jul 2020

From 17/03/2014 - To 17/03/2015

6th: 31 Jul 2020

From 17/03/2015 - To 17/03/2016

7th: 31 Jul 2020

From 17/03/2016 - To 17/03/2017

8th: 31 Jul 2020

From 17/03/2017 - To 17/03/2018

9th: 31 Jul 2020

From 17/03/2018 - To 17/03/2019

10th: 31 Jul 2020

From 17/03/2019 - To 17/03/2020

11th: 31 Jul 2020

From 17/03/2020 - To 17/03/2021

12th: 25 Feb 2021

From 17/03/2021 - To 17/03/2022

13th: 22 Feb 2022

From 17/03/2022 - To 17/03/2023

14th: 24 Feb 2023

From 17/03/2023 - To 17/03/2024

15th: 27 Feb 2024

From 17/03/2024 - To 17/03/2025

16th: 25 Feb 2025

From 17/03/2025 - To 17/03/2026

17th: 20 Feb 2026

From 17/03/2026 - To 17/03/2027