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引用次数: 0

摘要

本文介绍了一种利用多智能体系统实现智能经济的信息网络方法。常规的智能经济结构试图为一个学习任务归纳一个通用的决策函数,而多智能体则考虑一个特定的测试集,并试图模拟那些特定的例子。本文分析了多智能体适合智能经济信息管理的原因。这些理论发现得到了真实世界数据收集实验的支持。案例研究表明,归纳方法有了实质性的改进,特别是对于基于多智能体的小型计算机信息系统训练集,提高了研究活动以及与此类智能经济资产相关的经济价值。这项工作还提出了一个模型来有效地评估y,处理1909个例子和更多。
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A multi-agent simulation for intelligence economy
This paper introduces an intelligence economy and information network approach for intelligence economic using a Multi-agent system. While regular intelligent economy structure try to induce a general decision function for a learning task, multi-agent take into account a particular test set and try to simulate those particular example. The paper presents an analysis of why multi-agent is well suited for intelligence economy information management. These theoretical findings are supported by experiments on real-world data collections. The case studies show substantial improvements over inductive methods, especially for small Multi-agent-based computer information system training sets, improving the research activities as well as the economic value associated with such intelligence economy assets. This work also proposes a model for evaluate y efficiently, handling 1,909 examples and more.
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