互联网经济新闻采集与分类:一种基于神经网络软件代理的方法

E. M. Duarte, A. Braga, J. L. Braga
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引用次数: 3

摘要

互联网上信息量的爆炸性增长使得在我们有限的时间里选择值得阅读的内容成为一项艰巨的任务。本文描述的项目使用来自自主代理和人工神经网络领域的技术来解决这个问题。设计并实现了一个经济新闻采集与分类代理,并在Internet上的经济类网站上成功地进行了测试。系统的输入是由软件代理从选定的互联网经济网站上挑选的新闻文本,输出是按兴趣主题最多分为六个类的相同新闻。分类基于在分类代理内部运行的人工神经网络,特别是经过训练的模式允许执行所需的新闻分析和分类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Internet economic news gathering and classification: a neural network software agent based approach
The explosive growth on the amount of information available on the Internet makes it a hard task to select what is worth reading in our scarce available time. The project described in this paper tackles this problem using techniques taken from the areas of autonomous agents and artificial neural networks. An agent for economic news gathering and classification was designed implemented and successfully tested over sites about economy available on the Internet. Inputs to the system are news text picked up by software agents from selected Internet economic sites, and the outputs are those same news classified by topics of interest in at most six classes. The classification is based on an artificial neural network that runs inside the classification agent, especially trained with patterns that allow carrying out the desired news analysis and classifications.
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