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Open Access

Similarity Search Algorithm over Data Supply Chain Based on Key Points

Peng LiHong Luo( )Yan Sun
School of Computer Science, Beijing University of Posts and Telecommunication, Beijing 100876, China.
Beijing Key Lab of Intelligent Telecommunication Software and Multimedia, Beijing 100876, China.
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Abstract

In this paper, we target a similarity search among data supply chains, which plays an essential role in optimizing the supply chain and extending its value. This problem is very challenging for application-oriented data supply chains because the high complexity of the data supply chain makes the computation of similarity extremely complex and inefficient. In this paper, we propose a feature space representation model based on key points, which can extract the key features from the subsequences of the original data supply chain and simplify it into a feature vector form. Then, we formulate the similarity computation of the subsequences based on the multiscale features. Further, we propose an improved hierarchical clustering algorithm for a similarity search over the data supply chains. The main idea is to separate the subsequences into disjoint groups such that each group meets one specific clustering criteria; thus, the cluster containing the query object is the similarity search result. The experimental results show that the proposed approach is both effective and efficient for data supply chain retrieval.

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Tsinghua Science and Technology
Pages 174-184

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Cite this article:
Li P, Luo H, Sun Y. Similarity Search Algorithm over Data Supply Chain Based on Key Points. Tsinghua Science and Technology, 2017, 22(2): 174-184. https://doi.org/10.23919/TST.2017.7889639

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Received: 25 November 2016
Revised: 21 December 2016
Accepted: 03 January 2017
Published: 06 April 2017
© The author(s) 2017