基于多叶节点的新闻获取系统解析树

K. Sattar, Sohail Iqbal
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引用次数: 1

摘要

随着互联网的发展,人们正在从纸质新闻系统转向网络新闻系统。这些在线新闻网站对于那些有互联网接入的人来说非常有用,他们可以很容易地通过家庭/办公室的电脑或手机阅读和搜索他们所需的新闻,而不会浪费时间。要搜索特定的新闻,可以使用许多搜索算法和新闻抓取系统(NFS),它们可以在不到一秒的时间内返回结果。但是它们从海量数据中给出多少正确的信息仍然是一个关键领域,我们需要一些有效的算法来给我们提供更优化的结果。我们提出了一个基于多个叶子节点的NFS解析树,其中所有叶子节点都是一个特定单词的常用替代词。我们对随机选择的网页评估我们的结果,并与简单的解析树系统进行比较。分析表明,我们提出的算法可以提高任何NFS的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple leaf nodes based parse trees for News Fetching Systems
With the growth of internet people are shifting from their paper based news system to online news system. These online news websites are very useful for the people who have internet access and they can easily read and search their required news through home/office computer or cell phone without wasting their time. To search a particular news, many searching algorithms and News Fetching Systems (NFS) are available which return the results in less than a second. But how much correct information they are giving from a huge data is still a critical area, where we need some efficient algorithms to give us more optimized results. We propose a Multiple Leaf Nodes based Parse Trees for NFS where all the leaf nodes are commonly used alternative words for a specific word. We evaluate our results for a randomly selected webpage and compare with the simple parse tree system. Analysis shows that our proposed algorithm can enhance the performance of any NFS.
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