Semantic-based intelligent data clean framework for big data

Jia Wang, Zhijun Song, Qian Li, Jun Yu, Fei Chen
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引用次数: 5

Abstract

In order to overcome the limitation of existing data cleansing methods working on massive data, in this paper, we propose a generic semantic-based framework using parallelized processing model for effective big data cleansing. We also use an improved Semantic-Based Keyword Matching Algorithm to deal with duplicate data. Experimental results show that this parallelized framework with improved Semantic-Based Keyword Matching Algorithm can identify duplicates with high recall and precision and have a good performance for big data cleansing.
基于语义的大数据智能数据清理框架
为了克服现有数据清理方法在海量数据上的局限性,本文提出了一种基于语义的通用框架,利用并行处理模型进行有效的大数据清理。我们还使用改进的基于语义的关键字匹配算法来处理重复数据。实验结果表明,该并行化框架结合改进的基于语义的关键字匹配算法,能够以较高的查全率和查准率识别重复项,具有良好的大数据清理性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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