Knowledge constrained evolutionary algorithms: a case study for financial investing

Jie Du, H. Wimmer, R. Rada
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引用次数: 1

Abstract

The purpose of this paper is to examine the role of domain knowledge in guiding evolution. The hypothesis examined in this paper is that the use of knowledge represented as a semantic network will bias mutation so that changes in structure measured by the semantic net correspond to changes in function. This hypothesis is tested utilising information and data from the finance domain. In this paper relevant literature is reviewed and an experimental framework is proposed which incorporates knowledge in evolution. An empirical investigation is presented to demonstrate the role of knowledge and gradualness in evolution. Future work will involve investigating methods to identify or construct a semantic network which is 'meaningful' to humans as well as machines.
知识约束的进化算法:金融投资的案例研究
本文的目的是研究领域知识在指导进化中的作用。本文中检验的假设是,使用表示为语义网络的知识将偏向突变,因此由语义网络测量的结构变化对应于功能的变化。利用金融领域的信息和数据对这一假设进行了检验。本文对相关文献进行了回顾,并提出了一个结合进化论知识的实验框架。一项实证研究提出了知识和渐进性在进化中的作用。未来的工作将包括研究识别或构建对人类和机器都“有意义”的语义网络的方法。
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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