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Named entity recognition and tweet sentiment derived from tweet segmentation using hadoop

机译:命名实体识别和推文的授权情绪使用Hadoop派生的推文分段

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Twitter is well known website famous for micro blogging where millions of users exchanging their opinions and thoughts. The tweets users are sharing has a error sum nature. The information available in tweets is insufficient. Because of character limitation tweets are short in nature many applications like Information Retrieval has problems in information retrieval. Here we are proposing a batch processing framework for tweet fragmentation called TweetSeg. TweetSeg combines information from Confined context with information from Universal context for achieving better results for Named Entity identification. Tweeter is used largely so we want to find public sentiment of tweet by segmenting the tweet into fragments where each fragment can be a named entity, we can find meaningful information from the part and analyzing the sentiments expressed in the tweets by using these fragments in Hadoop framework.
机译:Twitter是众所周知的网站,以便为Micro Blogging而闻名,其中数百万用户交换了他们的意见和思想。推文用户正在共享具有错误和性质。推文中提供的信息不足。由于字符限制推文在性质中很短,因此信息检索等应用程序在信息检索中存在问题。在这里,我们为称为Tweetseg的推文碎片提出了一个批处理框架。 TweetSeg将信息与来自通用上下文的信息组合,以实现命名实体识别的更好结果。高音扬声器主要用于通过将各个片段分割为命名实体的片段将推文进行分割,从零件中找到有意义的信息,并通过在Hadoop中使用这些碎片来找到有意义的信息,并通过在Hadoop中使用这些碎片来找到有意义的信息框架。

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