IP Library Granted Patent US 12,308,909
Granted Patent B2
US 12,308,909 · App. 18/347,405 · Granted May 20, 2025

Communication apparatus and communication method

Inventor: Yutaka Murakami (Kanagawa, JP)
Assignee: Panasonic Intellectual Property Corporation of America
H04B7/0452H04B7/04H04B7/0617H04B7/086H04J3/00H04J11/00H04J11/003H04L27/262H04L27/2662H04L27/2675H04L27/2692H04L27/2626H04W72/0446
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Quick Facts
Patent No.
US 12,308,909
App. No.
18/347,405
Granted
May 20, 2025
Kind
B2
Abstract

A communication apparatus includes a receiver and a decoder. The receiver includes a plurality of antenna elements and, in operation, receives from a base station apparatus a modulated signal mapped to one of a plurality of subframes defined in a frame corresponding to a communicable range to which the communication apparatus belongs. The plurality of subframes are defined by time-division, frequency-division, or time-and-frequency division of the frame. A maximum number of modulated signals that can be simultaneously transmitted in a subframe from the base station apparatus varies depending on the communicable range. The decoder, in operation, decodes the received modulated signal.

Claims (44)

1. A communication apparatus comprising:

a signal processor which, in operation, generates at least one downlink signal; and

a transmitter which, in operation, transmits the at least one downlink signal to a communication partner apparatus in one of a plurality of resources, wherein the plurality of resources are defined by time-division, frequency-division, or time-and-frequency division of a frame, and wherein a maximum number of downlink signals that can be simultaneously transmitted in a single resource varies depending on a communicable range to which the communication partner apparatus belongs.

2. The communication apparatus according to claim 1 , wherein

the transmitter transmits the at least one downlink signal using directive transmission.

3. The communication apparatus according to claim 1 , wherein

as the communicable range becomes smaller, the maximum number of downlink signals that can be simultaneously transmitted from the communication apparatus in the frame becomes larger.

4. The communication apparatus according to claim 1 , wherein

as the communicable range becomes smaller, the maximum number of downlink signals that can be simultaneously transmitted from the communication apparatus in the single resource becomes larger.

5. The communication apparatus according to claim 1 , wherein

an outer edge of the communicable range is defined by a distance from the communication apparatus.

6. The communication apparatus according to claim 1 , wherein

when a plurality of downlink signals are simultaneously transmitted from the communication apparatus, each of the plurality of downlink signals is mapped to a corresponding one of the plurality of resources defined in a frame.

7. The communication apparatus according to claim 1 , wherein

a plurality of downlink signals are simultaneously transmitted from the communication apparatus in a same time period and in a same frequency band.

8. The communication apparatus according to claim 1 , wherein

a first number of downlink signals is a maximum number of transmission beams that can be simultaneously transmitted in a same time period and in a same frequency band within a first communicable range;

a second number of downlink signals is a maximum number of transmission beams that can be simultaneously transmitted in the same period of time and in the same frequency band within a second communicable range that is exclusive of the first communicable range; and

the first number of downlink signals is larger than the second number of downlink signals.

9. The communication apparatus according to claim 8 , wherein

a third number of downlink signals is a maximum number of downlink signals that can be simultaneously transmitted in the same period of time and in the same frequency band within a third communicable range that is exclusive of the second communicable range, and

the second number of downlink signals is larger than the third number of downlink signals.

10. A communication method for a communication apparatus, the communication method comprising:

generating at least one downlink signals; and

transmitting the at least one downlink signal to a communication partner apparatus in one of a plurality of resources, wherein the plurality of resources are defined by time-division, frequency-division, or time-and-frequency division of a frame, and wherein a maximum number of downlink signals that can be simultaneously transmitted in a single resource varies depending on a communicable range to which the communication partner apparatus belongs.

11. The communication method according to claim 10 , wherein

the at least one downlink signals are transmitted using directive transmission.

12. The communication method according to claim 10 , wherein

as the communicable range becomes smaller, the maximum number of downlink signals that can be simultaneously transmitted from the communication apparatus in a frame becomes larger.

13. The communication method according to claim 10 , wherein

as the communicable range becomes smaller, the maximum number of downlink signals that can be simultaneously transmitted from the communication apparatus in the single resource becomes larger.

14. The communication method according to claim 10 , wherein

an outer edge of the communicable range is defined by a distance from the communication apparatus.

15. The communication method according to claim 10 , wherein

when a plurality of downlink signals are simultaneously transmitted from the communication apparatus, each of the plurality of downlink signals is mapped to a corresponding one of the plurality of resources defined in a frame.

16. The communication method according to claim 10 , wherein

a plurality of downlink signals are simultaneously transmitted from the communication apparatus in a same time period and in a same frequency band.

17. The communication method according to claim 10 , wherein

a first number of downlink signals is a maximum number of downlink signals that can be simultaneously transmitted in a same time period and in a same frequency band within a first communicable range;

a second number of downlink signals is a maximum number of downlink signals that can be simultaneously transmitted in the same period of time and in the same frequency band within a second communicable range that is exclusive of the first communicable range; and

the first number of downlink signals is larger than the second number of downlink signals.

18. The communication method according to claim 17 , wherein

a third number of downlink signals is a maximum number of downlink signals that can be simultaneously transmitted in the same period of time and in the same frequency band within a third communicable range that is exclusive of the second communicable range, and

the second number of downlink signals is larger than the third number of downlink signals.

Priority Claims (1)
JP 2015-206449 · Oct 20, 2015 · national
Continuity (7)
Continuation 17559923 · Dec 22, 2021
Continuation 17101565 · Nov 23, 2020
Continuation 16676909 · Nov 7, 2019
Continuation 16180525 · Nov 5, 2018
Continuation 15925438 · Mar 19, 2018
Continuation PCTJP2016004129 · Sep 12, 2016
Related Publication 20230353200A1 · Nov 2, 2023
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