IP Library Granted Patent US 12695556
Granted Patent B2
US 12695556 · App. 18/137,807 · Granted Jul 28, 2026

Communication information sending method, communication information receiving method, and communication device

Inventors: Ang Yang (Dongguan, CN); Peng Sun (Dongguan, CN)
Assignee: VIVO MOBILE COMMUNICATION CO., LTD.
H04L5/001H04L41/16H04W24/02
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Quick Facts
Patent No.
US 12695556
App. No.
18/137,807
Granted
Jul 28, 2026
Kind
B2
Abstract

A communication information sending method includes dividing, by a first communication device, first communication information into one or more pieces of sub-band information; and inputting broadband information of the first communication information and/or the one or more pieces of sub-band information to a first artificial intelligence network model, and sending second communication information output by the first artificial intelligence network model.

Claims (72)

1 . A communication information sending method, comprising:

dividing, by a first communication device, first communication information into one or more pieces of sub-band information; and

inputting broadband information of the first communication information and/or the one or more pieces of sub-band information to a first artificial intelligence network model, and sending second communication information output by the first artificial intelligence network model; wherein

the first artificial intelligence network model comprises at least one level of sub-modules, and each level comprises one or more sub-modules; some sub-modules use a same artificial intelligence network structure and/or use a same artificial intelligence network parameter;

wherein current input information of a target sub-module of the first artificial intelligence network model comprises at least one of:

current input information of another sub-module of a same level as the target sub-module;

input information at a previous moment of another sub-module of a same level as the target sub-module;

current intermediate information of another sub-module of a same level as the target sub-module;

intermediate information at a previous moment of another sub-module of a same level as the target sub-module;

current output information of another sub-module of a same level as the target sub-module; or

output information at a previous moment of another sub-module of a same level as the target sub-module;

wherein the first artificial intelligence network model comprises a first-level sub-module and a second-level sub-module, wherein the first-level sub-module comprises one or more first sub-modules, the second-level sub-module is located at a previous level of the first-level sub-module, and the second-level sub-module comprises N second sub-modules, wherein N is an amount of broadband information and/or a quantity of sub-bands that are input into the first artificial intelligence network model;

wherein the first artificial intelligence network model further comprises a third-level sub-module, and the third-level sub-module is located at a previous level of the second-level sub-module;

wherein the third-level sub-module comprises one third sub-module, and input information of the third sub-module is the broadband information of the first communication information and/or the one or more pieces of sub-band information;

wherein input information of one second sub-module is all output information of the third sub-module; or

input information of one second sub-module is some output information of the third sub-module, and different second sub-modules has different input information.

2 . The method according to claim 1 , wherein the dividing, by a first communication device, first communication information into one or more pieces of sub-band information comprises:

dividing the first communication information into one or more pieces of sub-band information according to a target resource of the first communication information, wherein the target resource comprises at least one of: a frequency domain resource, a time domain resource, a spatial domain resource, or a code domain resource.

3 . The method according to claim 2 , wherein the dividing, by a first communication device, first communication information into one or more pieces of sub-band information comprises at least one of:

dividing the first communication information into one or more pieces of sub-band information on the frequency domain resource by using a frequency domain unit resource as a unit, wherein the frequency domain unit resource comprises at least one of: a resource block (RB), a physical resource block (PRB), a sub-band, a precoding resource block group (PRG), or a bandwidth part (BWP);

dividing the first communication information into one or more pieces of sub-band information on the time domain resource by using a time domain unit resource as a unit, wherein the time domain unit resource comprises at least one of: a subcarrier, an orthogonal frequency division multiplexing (OFDM) symbol, a slot, or a half-slot;

dividing the first communication information into one or more pieces of sub-band information on the spatial domain resource by using a spatial domain unit resource as a unit, wherein the spatial domain unit resource comprises at least one of: an antenna, an antenna element, an antenna panel, a sending/receiving unit, a beam, a layer, a rank, or an antenna angle; or

dividing the first communication information into one or more pieces of sub-band information on the code domain resource by using a code domain unit resource as a unit, wherein the code domain unit resource comprises at least one of: an orthogonal code, a quasi-orthogonal code, or a semi-orthogonal code.

4 . The method according to claim 1 , wherein a sub-module of the one or more sub-modules comprises at least one of:

a fully-connected neural network module;

a convolutional neural network module;

a recurrent neural network module;

a residual neural network module; or

a preset algorithm module.

5 . The method according to claim 4 , wherein an artificial intelligence network structure used by a sub-module of the one or more sub-modules is determined by at least one of:

an artificial intelligence network type;

a combination manner of multiple comprised sub-networks;

a quantity of hidden layers;

a connection manner between an input layer and a hidden layer;

a connection manner between multiple hidden layers;

a connection manner between a hidden layer and an input layer; or

a quantity of neurons at each layer.

6 . The method according to claim 4 , wherein the second communication information comprises output information of a last-level sub-module of the first artificial intelligence network model, or a combination of output information of multiple last-level sub-modules of the first artificial intelligence network model.

7 . The method according to claim 1 , wherein the first-level sub-module comprises multiple first sub-modules, at least one first sub-module in the multiple first sub-modules represents bandwidth information, and another first sub-module in the multiple first sub-modules represents sub-band information, wherein the another first sub-module is some or all of the multiple first sub-modules except the at least one first sub-module.

8 . The method according to claim 7 , wherein input information of the at least one first sub-module is output information of some or all of the second sub-modules, and input information of the another first sub-module is output information of some or all of the second sub-modules.

9 . A communication device, being a first communication device, and comprising a processor, a memory, and a program or an instruction that is stored in the memory and that is executable on the processor, wherein the program or the instruction, when executed by the processor, causes the communication device to perform:

dividing first communication information into one or more pieces of sub-band information; and

inputting broadband information of the first communication information and/or the one or more pieces of sub-band information to a first artificial intelligence network model, and sending second communication information output by the first artificial intelligence network model;

wherein the first artificial intelligence network model comprises at least one level of sub-modules, and each level comprises one or more sub-modules; some sub-modules use a same artificial intelligence network structure and/or use a same artificial intelligence network parameter;

wherein current input information of a target sub-module of the first artificial intelligence network model comprises at least one of:

current input information of another sub-module of a same level as the target sub-module;

input information at a previous moment of another sub-module of a same level as the target sub-module;

current intermediate information of another sub-module of a same level as the target sub-module;

intermediate information at a previous moment of another sub-module of a same level as the target sub-module;

current output information of another sub-module of a same level as the target sub-module; or

output information at a previous moment of another sub-module of a same level as the target sub-module;

wherein the first artificial intelligence network model comprises a first-level sub-module and a second-level sub-module, wherein the first-level sub-module comprises one or more first sub-modules, the second-level sub-module is located at a previous level of the first-level sub-module, and the second-level sub-module comprises N second sub-modules, wherein N is an amount of broadband information and/or a quantity of sub-bands that are input into the first artificial intelligence network model;

wherein the first artificial intelligence network model further comprises a third-level sub-module, and the third-level sub-module is located at a previous level of the second-level sub-module;

wherein the third-level sub-module comprises one third sub-module, and input information of the third sub-module is the broadband information of the first communication information and/or the one or more pieces of sub-band information;

wherein input information of one second sub-module is all output information of the third sub-module; or

input information of one second sub-module is some output information of the third sub-module, and different second sub-modules has different input information.

10 . The communication device according to claim 9 , wherein a sub-module of the one or more sub-modules comprises at least one of:

a fully-connected neural network module;

a convolutional neural network module;

a recurrent neural network module;

a residual neural network module; or

a preset algorithm module.

11 . The communication device according to claim 10 , wherein an artificial intelligence network structure used by a sub-module of the one or more sub-modules is determined by at least one of:

an artificial intelligence network type;

a combination manner of multiple comprised sub-networks;

a quantity of hidden layers;

a connection manner between an input layer and a hidden layer;

a connection manner between multiple hidden layers;

a connection manner between a hidden layer and an input layer; or

a quantity of neurons at each layer.

12 . The communication device according to claim 10 , wherein the second communication information comprises output information of a last-level sub-module of the first artificial intelligence network model, or a combination of output information of multiple last-level sub-modules of the first artificial intelligence network model.

13 . The communication device according to claim 9 , wherein the first-level sub-module comprises multiple first sub-modules, at least one first sub-module in the multiple first sub-modules represents bandwidth information, and another first sub-module in the multiple first sub-modules represents sub-band information, wherein the another first sub-module is some or all of the multiple first sub-modules except the at least one first sub-module.