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Search Bot: Search Intention Based Filtering Using Decision Tree Based Technique

机译:搜索机器人:使用基于决策树的技术进行基于搜索意图的过滤

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Most web search engines use only the search keywords for searching. Due to the ambiguity of semantics and usages of the search keywords, the results are noisy and many of them do not match the user's search goals. This paper presents the design of an intelligent Search Bot, which operates as an agent for a user by simulating the user activity of filtering only the relevant search results. It learns from experience and improves its performance with time. The focus is to obtain a user's search intention or requirement from the search query, and then to deliver results accordingly. The user first trains the system according to his search intention, by doing binary classification of the search results. Training is followed by knowledge representation and extraction, and then reasoning and analyzing the new search results to determine their relevance classification. The technique is based on the construction of decision trees. It also finds application in news searching, information retrieval from databases and spam mail detection.
机译:大多数网络搜索引擎仅使用搜索关键字进行搜索。由于语义和搜索关键字用法的含糊不清,结果很嘈杂,其中许多不符合用户的搜索目标。本文介绍了智能搜索机器人的设计,该智能机器人通过模拟仅过滤相关搜索结果的用户活动来充当用户的代理。它可以从经验中学习,并随着时间的推移提高其性能。重点是从搜索查询中获取用户的搜索意图或要求,然后相应地交付结果。用户首先通过对搜索结果进行二进制分类,根据他的搜索意图来训练系统。培训后是知识表示和提取,然后是推理和分析新搜索结果以确定它们的相关性分类。该技术基于决策树的构建。它还可用于新闻搜索,数据库信息检索和垃圾邮件检测。

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