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基于贝叶斯的N-Gram统计信息检索模型
引用本文:任照富,常友渠,樊爱宛.基于贝叶斯的N-Gram统计信息检索模型[J].郑州大学学报(理学版),2010,42(1).
作者姓名:任照富  常友渠  樊爱宛
作者单位:1. 重庆电力高等专科学校,计算机科学系,重庆,400053
2. 平顶山学院,计算机科学与技术学院,河南,平顶山,467000
摘    要:为了对频繁更新的文档信息进行有效检索,提出了一种基于贝叶斯的N-Gram统计信息检索模型(Bayesian-based N-Gram,BNG).BNG模型无需对所有文档信息进行重新学习,只需根据新增的文档信息自适应地调整BNG模型的权值,以突出各个词语、文档对语义空间不同的贡献程度.实验结果表明,与现有的统计信息模型相比,提出的BNG模型显著地提高了检索的准确率与召回率.

关 键 词:信息检索  贝叶斯  N-Gram

N-Gram Statistical Information Retrieval Model Based on Bayesian Theory
REN Zhao-fu , CHANG You-qu , FAN Ai-wan.N-Gram Statistical Information Retrieval Model Based on Bayesian Theory[J].Journal of Zhengzhou University:Natural Science Edition,2010,42(1).
Authors:REN Zhao-fu  CHANG You-qu  FAN Ai-wan
Institution:REN Zhao-fu1,CHANG You-qu1,FAN Ai-wan2(1.Department of Computer Science,Chongqing Electric Power College,Chongqing 400053,China,2.College of Computer Science , Technology,Pingdingshan University,Pingdingshan 467000,China)
Abstract:To efficiently retrieve frequently updating document information,a N-Gram statistical information retriveal model based on Bayesian theory is proposed(BNG).Without re-learning all the documents,BNG can adaptively adjust the weight parameters by the incremental documents to distinguish the contribution degrees of each term and document to semantic space.According to the current observation samples,the proposed BNG adjusts the parameters of baseline model which are obtained by maximum likelihood,and then BNG ...
Keywords:information retrieval  Bayesian  N-Gram model  
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