Puttakul Sakul-Ung, H. Ketmaneechairat, Maleerat Maliyaem
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引用次数: 0
摘要
本文是最初在Overmind: A Collaborative Decentralized Machine Learning Framework中提出的工作的扩展,该框架侧重于Overmind框架的呈现。Overmind是分布式机器学习网络的概念设计框架,该网络包含多个协作执行其任务和目标的代理。当发现新特性并将其引入Overmind时,可以动态更改代理网络,从而对系统性能产生重大影响。Overmind的网络行为,在之前的一篇论文中有粗略的描述,现在有了详细的介绍和解释。本文将Overmind部署并应用于多个数据集,生成和创建不同的结果和网络模式,然后通过向网络添加特征来测试其功能。结果表明,该系统可能处于初始阶段、连接阶段、完全连接阶段和孤立节点阶段。本文还提出了未来的工作作为改进Overmind框架的机会。
Overmind, A Collaborative Decentralized Machine Learning Framework, the Interpretation of Network Behaviour
This paper is an extension of work originally presented in Overmind: A Collaborative Decentralized Machine Learning Framework, which focused on the presentation of the Overmind framework. Overmind is the conceptual design framework for a decentralized machine learning network containing the multiple agents which are collaboratively performing their tasks and objectives. This network of agents can be dynamically changed when the new features are discovered and introduced to the Overmind with significant changes to a system performance. The network behaviour of Overmind, as loosely described in a previous paper, is now presented with detail and interpretation. In this paper, Overmind has been deployed and applied to the multiple dataset which generates and creates the different outcomes and network pattern, then, its capabilities are tested by adding features to the network. The result shows four possible stages: 1) initial stage, 2) connected stage, 3) fully connected stage, and 3) isolated node. This paper also presents the future works as opportunities for improvement of the Overmind framework.