A problem solving environment that assists model development for reinforcement learning algorithms

Taiyo Maeda, Y. Aoki, T. Murata
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引用次数: 0

Abstract

This paper reports a problem solving environments (PSE) to assist researchers who study stochastic simulations such as reinforcement learning algorithms. They have to run their programs many times to compare their algorithms and find better sets of parameters for their programs. In order to reduce the working time, this system has three sub-systems: a distributed computing system, a data management system and a graph generation system. Using this system, we conduct experiments with human subjects. They register their programs, run them on a distributed computing system, obtain results automatically, and compare them graphically. As a result, a user obtained five times speedup for the work time. We present a relationship between development of algorithms and the three sub-systems.
一个解决问题的环境,帮助模型开发的强化学习算法
本文报告了一个问题解决环境(PSE),以帮助研究随机模拟的研究人员,如强化学习算法。他们必须多次运行他们的程序来比较他们的算法,并为他们的程序找到更好的参数集。为了减少工作时间,本系统分为三个子系统:分布式计算系统、数据管理系统和图形生成系统。利用这个系统,我们进行了人体实验。它们注册程序,在分布式计算系统上运行,自动获得结果,并以图形方式对它们进行比较。结果,用户在工作时间内获得了5倍的加速。我们提出了算法的发展与这三个子系统之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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