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Multi-machine based collaborative learning

机译:基于多机器的协作学习

摘要

Individual nodes (e.g., edge machines) in an overlay network each build local machine learning (ML) models associated with a particular behavior of interest. Through a communication mechanism, nodes exchange some portion of their ML models between or among each other. The portion of the local model that is exchanged with one or more other nodes encodes or encapsulates relevant knowledge (learned at the source node) for the particular behavior of interest; in this manner, relevant transfer learning is enabled such that individual node models become smarter. Sets of machines that collaborate converge their models toward a solution that is then used to facilitate another overlay network function or optimization. The local knowledge exchange among the nodes creates an emergent behavioral profile used to control the edge machine behavior. Example functions managed with this ML front-end include predictive pre-fetching, anomaly detection, image management, forecasting to allocate resources, and others.
机译:覆盖网络中的各个节点(例如,边缘机器)均构建与感兴趣的特定行为相关联的本地机器学习(ML)模型。通过通信机制,节点之间或彼此之间交换其ML模型的某些部分。与一个或多个其他节点交换的局部模型部分对感兴趣的特定行为进行编码或封装(在源节点处学习)相关知识;以这种方式,启用了相关的转移学习,使得各个节点模型变得更加智能。协作的机器集将其模型收敛到一个解决方案,然后该解决方案用于促进另一种覆盖网络功能或优化。节点之间的本地知识交换会创建用于控制边缘计算机行为的紧急行为配置文件。使用此ML前端管理的示例功能包括预测性预取,异常检测,图像管理,预测以分配资源等。

著录项

  • 公开/公告号US2020175419A1

    专利类型

  • 公开/公告日2020-06-04

    原文格式PDF

  • 申请/专利权人 AKAMAI TECHNOLOGIES INC.;

    申请/专利号US201916437055

  • 发明设计人 ROBERT B. BIRD;JAN GALKOWSKI;

    申请日2019-06-11

  • 分类号G06N20;H04L29/08;

  • 国家 US

  • 入库时间 2022-08-21 11:19:48

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