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案件記録

Configuring Radio Resource Control Timers

発明審査中
3閲覧数
20請求項 · 3 独立
§ Ⅰ

案件概要

発明者

Yasser AlEryani; Satish Venkob; Mostafa Mouawad

IPC分類

H4L 41/16G6N 3/92H4W 28/18

CPC分類

H4L41/16G6N3/92H4W28/18

A system can train and maintain a first deep reinforcement learning model, wherein the first deep reinforcement learning model was generated according to a first objective to improve timing of transitions from a radio resource control active state. The system can train and maintain a second deep reinforcement learning model, wherein the second deep reinforcement learning model was generated according to a second objective to improve timing of transitions from a radio resource control inactive state or a radio resource control idle state, and wherein the first deep reinforcement learning model and the second deep reinforcement learning model share an objective function. The system can determine respective timers for respective radio resource control states based on a first result of the training of the first deep reinforcement learning model and a second result of the training of the second deep reinforcement learning model.

原文(中国語)

A system can train and maintain a first deep reinforcement learning model, wherein the first deep reinforcement learning model was generated according to a first objective to improve timing of transitions from a radio resource control active state. The system can train and maintain a second deep reinforcement learning model, wherein the second deep reinforcement learning model was generated according to a second objective to improve timing of transitions from a radio resource control inactive state or a radio resource control idle state, and wherein the first deep reinforcement learning model and the second deep reinforcement learning model share an objective function. The system can determine respective timers for respective radio resource control states based on a first result of the training of the first deep reinforcement learning model and a second result of the training of the second deep reinforcement learning model.

外部リソース