IP Library Granted Patent US 12,004,107
Granted Patent B2
US 12,004,107 · App. 18/131,823 · Granted Jun 4, 2024

Time and frequency synchronization

Inventors: Havish Koorapaty (Saratoga, CA); Mattias Frenne (Uppsala, SE); Daniel Larsson (Lund, SE); Jiann-Ching Guey (Hsinchu, TW); Jung-Fu Cheng (Fremont, CA)
Assignee: TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
H04W56/002H04J11/00H04L5/0057H04L5/0094H04W56/001H04W56/0035H04W72/044H04J2011/0096H04L5/0023H04L27/2662
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Quick Facts
Patent No.
US 12,004,107
App. No.
18/131,823
Granted
Jun 4, 2024
Kind
B2
Abstract

The scheduling flexibility of CSI reference signals enables time and frequency synchronization using multiple non-zero CSI-RSs transmitted in the same subframe, or using CSI-RSs transmitted in the same subframe with other synchronization signals. Also, multiple synchronization signals may be scheduled in the same subframe to enable fine time and frequency synchronization without cell-specific reference signals.

Claims (57)

1. A method of transmitting reference signals for synchronization in an Orthogonal Frequency Division Multiplexing (OFDM) system, said method comprising:

transmitting a first channel state information (CSI) reference signal in a first of a plurality of subframes in accordance with a first configuration of transmission resources, wherein the first configuration of transmission resources defines a first allocation of time and frequency resources for the first CSI reference signal;

transmitting a second CSI reference signal in a second slot of one or more of the plurality of subframes in accordance with a second configuration of transmission resources, wherein the second configuration of transmission resources defines a second allocation of time and frequency resources for the second CSI reference signal, and

wherein transmitting the first CSI reference signal in accordance with the first configuration and transmitting the second CSI reference signals in accordance with the second configuration comprises transmitting the first and second CSI reference signals from the same antenna port in both the first slot and the second slot of at least a first subframe of the plurality of subframes, and

wherein the same antenna port is used for transmission of the first and second CSI reference signals to ensure a user terminal in the OFDM system can utilize the first and second CSI reference signals for synchronization assistance.

2. The method of claim 1 wherein:

transmitting the first CSI reference signal in accordance with the first configuration comprises periodically transmitting the first CSI reference signal in the first slot of two or more subframes with a first repetition frequency; and

transmitting the second CSI reference signal in accordance with the second configuration comprises periodically transmitting the second CSI reference signal in the second slot of two or more of the subframes with a second repetition frequency different from the first repetition frequency.

3. The method of claim 1 wherein:

the first configuration of transmission resources supports transmission of CSI reference signals from a first set of antenna ports;

the second configuration of transmission resources supports transmission of CSI reference signals from a second set of antenna ports; and

the first and second sets of antenna ports include at least one common antenna port for transmission of the first and second CSI reference signals.

4. The method of claim 1 further comprising transmitting configuration information for the first and second CSI reference signals to the user terminal on a downlink broadcast channel.

5. The method of claim 1 , wherein each of the plurality of subframes comprises at least 14 OFDM symbols.

6. The method of claim 1 , wherein each of the plurality of subframes has a duration of 1 millisecond.

7. A base station in an Orthogonal Frequency Division Multiplexing (OFDM) system, said base station comprising:

a transceiver circuit configured to communicate with a user terminal over a wireless communicate channel; and

a control circuit providing reference signals for transmission to the user terminal via the transceiver circuit, said control circuit being configured to:

transmit a first channel state information (CSI) reference signal in a first slot of one or more subframes;

transmit a second CSI reference signal in a second slot of one or more of the same subframes; and

transmit the first and second CSI reference signals from the same antenna port to ensure the user terminal in the OFDM system can utilize the first and second CSI reference signals for synchronization assistance.

8. The base station of claim 7 wherein the control circuit is further configured to:

periodically transmit the first CSI reference signal in the first slot of the two or more subframes with a first repetition frequency; and

periodically transmit the second CSI reference signal in the second slot of two or more of the subframes with a second repetition frequency different from the first repetition frequency.

9. The base station of claim 7 wherein the control circuit is further configured to:

transmit a first set of CSI reference signals in the first slot from a first set of antenna ports;

transmit a second set of CSI reference signals in the second slot from a second set of antenna ports; and

wherein the first and second sets of antenna ports include at least one common antenna port for transmission of the first and second CSI reference signals.

10. The base station of claim 7 wherein the control circuit is further configured to transmit configuration information for the first and second CSI reference signals to the user terminal on a downlink broadcast channel.

11. A method of synchronization in an Orthogonal Frequency Division Multiplexing (OFDM) system, said method comprising:

receiving a first channel state information (CSI) reference signal in a first slot of a plurality of subframes in accordance with a first configuration of transmission resources, wherein the first configuration of transmission resources defines a first allocation of time and frequency resources for the first CSI reference signal;

receiving a second CSI reference signal in a second slot of one or more of the plurality of subframes in accordance with a second configuration of transmission resources difference from the first configuration, wherein the second configuration of transmission resources defines a second allocation of time and frequency resources for the second CSI reference signal;

wherein receiving the first CSI reference signal in accordance with the first configuration and receiving the second CSI reference signal in accordance with the second configuration comprises receiving CSI reference signals transmitted on the same antenna port during both the first slot and the second slot of at least a first subframe of the plurality of subframes; and

synchronizing with the OFDM system using the first and second CSI reference signals received during the first subframe.

12. The method of claim 11 wherein:

receiving the first CSI reference signal in accordance with the first configuration of transmission resources comprises periodically receiving the first CSI reference signal in the first slot of the two or more subframes with a first repetition frequency; and

receiving the second CSI reference signal in accordance with the second configuration of transmission resources comprises periodically receiving the second CSI reference signal in the second slot of two or more of the subframes with a second repetition frequency different from the first repetition frequency.

13. The method of claim 11 wherein:

the first configuration of transmission resources supports transmission of CSI reference signals from a first set of antenna ports;

the second configuration of transmission resources supports transmission of CSI reference signals from a second set of antenna ports; and

the first and second sets of antenna ports include at least one common antenna port for receiving of the first and second CSI reference signals.

14. The method of claim 11 further comprising receiving configuration information for the first and second CSI reference signals on a downlink broadcast channel.

15. A user terminal in an Orthogonal Frequency Division Multiplexing (OFDM) system, said user terminal comprising:

a transceiver circuit configured to communicate with a base station over a wireless communicate channel; and

a control circuit for synchronizing with the OFDM system, said control circuit being configured to:

receive a first channel state information (CSI) reference signal in a first slot of a plurality of subframes in accordance with a first configuration of transmission resources, wherein the first configuration of transmission resources defines a first allocation of time and frequency resources for the first CSI reference signal;

receive a second CSI reference signal in a second slot of one or more of the plurality of subframes in accordance with a second configuration of transmission resources difference from the first configuration, wherein the second configuration of transmission resources defines a second allocation of time and frequency resources for the second CSI reference signal;

receive the first and second CSI reference signals on the same antenna port in at least one of the plurality of subframes; and

synchronize with the OFDM system using the first and second CSI reference signals received on the same antenna port in the at least one subframe.

16. The user terminal of claim 15 wherein:

the first configuration of transmission resources supports transmission of CSI reference signals from a first set of antenna ports;

the second configuration of transmission resources supports transmission of CSI reference signals from a second set of antenna ports; and

the first and second sets of antenna ports include at least one common antenna port for receiving of the first and second CSI reference signals.

17. The user terminal of claim 15 wherein the first set of antenna ports has a larger number of antenna ports than the second set.

18. The user terminal of claim 15 wherein the control circuit is further configured to receive configuration information for the first and second CSI reference signals on a downlink broadcast channel.

19. The user terminal of claim 15 , wherein each of the plurality of subframes comprises at least 14 OFDM symbols.

20. The user terminal of claim 15 , wherein each of the plurality of subframes has a duration of 1 millisecond.

Continuity (6)
Continuation 17159278 · Jan 27, 2021
Continuation 16450190 · Jun 24, 2019
Continuation 14827939 · Aug 17, 2015
Continuation 13470445 · May 14, 2012
Provisional Application 61544190 · Oct 6, 2011
Related Publication 20230300765A1 · Sep 21, 2023