ENERGY EFFICIENCY CONTROL MECHANISM
    1.
    发明公开

    公开(公告)号:US20240283712A1

    公开(公告)日:2024-08-22

    申请号:US18522999

    申请日:2023-11-29

    CPC classification number: H04L41/50 G06N20/00 H04L41/16

    Abstract: An apparatus for use by a communication network element or communication network function acting as an artificial intelligence, AI, machine learning, ML, management service consumer, the apparatus comprising at least one processing circuitry, and at least one memory for storing instructions that, when executed by the at least one processor, cause the apparatus at least to request an AI/ML energy consumption related parameter from an AI/ML management service producer offering services related to at least one AI/ML entity, to receive, from the AI/ML management service producer, the requested AI/ML energy consumption related parameter, and to process the AI/ML energy consumption related parameter for deriving an energy saving strategy considering the AI/ML energy consumption related parameter.

    METHOD AND APPARATUS FOR FEDERATED TRAINING
    2.
    发明公开

    公开(公告)号:US20240249203A1

    公开(公告)日:2024-07-25

    申请号:US18408775

    申请日:2024-01-10

    CPC classification number: G06N20/20 G06N3/0455 H04L9/008

    Abstract: An apparatus for federated training, the apparatus comprising means for:



    Transmitting a first implementation (22) of a data-processing model to a first distributed trainer, wherein the first implementation of the data-processing model comprises a first hidden part (221) and a first open part (222),
    Transmitting a second implementation (23) of the data-processing model to a second distributed trainer, wherein the second implementation of the data-processing model comprises a second hidden part (231) and a second open part (232),
    Receiving a first training gradient from the first distributed trainer and a second training gradient from the second distributed trainer, wherein the first gradient relates to the first open part of the first implementation of the data-processing model, wherein the second gradient relates to the second open part of the second implementation of the data-processing model,
    Updating the data-processing model using the first gradient and the second gradient.

    APPARATUS, METHOD, AND COMPUTER PROGRAM
    3.
    发明公开

    公开(公告)号:US20240152812A1

    公开(公告)日:2024-05-09

    申请号:US18470121

    申请日:2023-09-19

    CPC classification number: G06N20/00

    Abstract: Disclosed are various example embodiments which may be configured to: receive, from a distributed node, local dataset information comprising characteristics of a local dataset of the distributed node, assign a score to the distributed node and/or determine whether the distributed node is a potential malicious distributed node based on the local dataset information, determine whether to select the distributed node for training a local model for managing a network in a federated learning mechanism based on the score assigned to the distributed node and/or whether the distributed node is a potential malicious distributed node, and send, to the distributed node, an indication as to whether the distributed node has been selected for training a model for managing a network in a federated learning mechanism.

    METHODS AND ENTITIES FOR A NETWORK

    公开(公告)号:US20250048418A1

    公开(公告)日:2025-02-06

    申请号:US18785195

    申请日:2024-07-26

    Abstract: A first apparatus and a second apparatus (128) that are configured to manage or orchestrate network resources, or network services, or a machine learning model, or a composition of a machine learning model for a first stakeholder and a second stakeholder respectively, and first method comprising receiving, at the first apparatus (120), a requirement regarding a network intent, or for a network resource, or a network service, or a machine learning model, or a composition of a machine learning model, determining, at the first apparatus (120), a message regarding the requirement, sending the message to the second apparatus (128), and a second method comprising receiving, from the first apparatus (120) a first message regarding a requirement, and sending a second message regarding the requirement, to the first apparatus (120) or a first message regarding a network intent, and sending a second message regarding the network intent to the first apparatus (120).

    AI/ML-RELATED OPERATIONAL STATISTICS/KPIS

    公开(公告)号:US20240422594A1

    公开(公告)日:2024-12-19

    申请号:US18633229

    申请日:2024-04-11

    Abstract: Described herein is a first network element configured for supporting collection and/or evaluation of artificial intelligence/machine learning (AI/ML)-related operational statistics in a communications network, the first network element comprising: at least one processor; and at least one memory storing instructions that, when executed by the at least one processor, cause the first network element at least to: determine one or more AI/ML-related operational statistics associated with the first network element; and report the determined one or more AI/ML-related operational statistics to a second network element of the communications network.

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