A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments

碩士 === 國立高雄應用科技大學 === 資訊工程系 === 104 === Frequent pattern mining is important field in data mining researches, through this technique can mine the hidden useful information from transaction databases. For example, a company can apply data mining to the discovery of association rule from transaction...

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Main Authors: CHEN, YUNG-LIN, 陳永霖
Other Authors: CHANG, WENG-LONG
Format: Others
Language:zh-TW
Published: 2016
Online Access:http://ndltd.ncl.edu.tw/handle/uasdw3
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spelling ndltd-TW-104KUAS03920202019-05-30T03:50:24Z http://ndltd.ncl.edu.tw/handle/uasdw3 A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments 於分散式環境下探勘巨大資料庫之高效性頻繁樣式演算法 CHEN, YUNG-LIN 陳永霖 碩士 國立高雄應用科技大學 資訊工程系 104 Frequent pattern mining is important field in data mining researches, through this technique can mine the hidden useful information from transaction databases. For example, a company can apply data mining to the discovery of association rule from transaction databases to greatly increase the profits of enterprises by understanding the customer behavior. Unfortunately, as the volume of database gets larger day by day, most of the frequent pattern mining algorithms in literature become ineffective due to too huge low computing performance, out of memory or too much communication. In this thesis, we propose a distributed method that is able to mine the frequent patterns for big data under limited memory. Through various simulation conditions, our proposed method is shown to deliver excellent performance in terms of execution efficiency and scalability. CHANG, WENG-LONG LIN, WEI-CHENG 張雲龍 林威成 2016 學位論文 ; thesis 117 zh-TW
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language zh-TW
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description 碩士 === 國立高雄應用科技大學 === 資訊工程系 === 104 === Frequent pattern mining is important field in data mining researches, through this technique can mine the hidden useful information from transaction databases. For example, a company can apply data mining to the discovery of association rule from transaction databases to greatly increase the profits of enterprises by understanding the customer behavior. Unfortunately, as the volume of database gets larger day by day, most of the frequent pattern mining algorithms in literature become ineffective due to too huge low computing performance, out of memory or too much communication. In this thesis, we propose a distributed method that is able to mine the frequent patterns for big data under limited memory. Through various simulation conditions, our proposed method is shown to deliver excellent performance in terms of execution efficiency and scalability.
author2 CHANG, WENG-LONG
author_facet CHANG, WENG-LONG
CHEN, YUNG-LIN
陳永霖
author CHEN, YUNG-LIN
陳永霖
spellingShingle CHEN, YUNG-LIN
陳永霖
A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments
author_sort CHEN, YUNG-LIN
title A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments
title_short A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments
title_full A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments
title_fullStr A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments
title_full_unstemmed A Fast Method for Mining Frequent Patterns from Big Data in Distributed Computing Environments
title_sort fast method for mining frequent patterns from big data in distributed computing environments
publishDate 2016
url http://ndltd.ncl.edu.tw/handle/uasdw3
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