多语言Web文档的神经网络框架

K. Prakash, T. V. Ananthan, V. Rajavarman
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引用次数: 4

摘要

万维网的快速发展导致了可访问信息的急剧增加。今天,人们使用网络进行各种各样的活动,包括旅行计划、娱乐和研究。然而,用于收集、组织和共享web内容的工具并没有跟上信息快速增长的步伐。但是,主要的复杂性出现在显示区域语言的web文档时。理解文件的内容以及后来通过口头或文字交流变得困难。这是当前论文所涉及的领域。为了克服这一困难,提出了一种新的基于概念的挖掘模型,并说明了知识是如何在文盲用户的头脑中创造出来的。本文首先介绍了构成文本交流基础的字母和单词如何用于内容。人工神经网络训练有助于我们与之前研究的统计解释进行比较研究。
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Neural network framework for multilingual Web documents
The rapid growth of World Wide Web has led to a dramatic increase in accessible information. Today, people use Web for a large variety of activities including travel planning, entertainment and research. However, the tools available for collecting, organizing, and sharing web content have not kept pace with the rapid growth in information. But the major complexity arises when web documents in regional languages are displayed. Understanding the content of the document and later communication through oral or text becomes difficult. This is the area the current paper addresses. To overcome the difficulty a novel concept-based mining model is proposed and states how the knowledge is created in the minds of illiterate user. The paper first presents how letters and words which form the basis of text-based communication can be used for content. Artificial neural network training helps us to give a comparative study with statistical interpretation which was studied earlier.
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