Cascade RSVM in Peer-to-Peer Network

The goal of distributed learning in P2P networks is to achieve results as close as possible to those from centralized approaches. Learning models of classification in a P2P network faces several challenges like scalability, peer dynamism, asynchronism and data privacy preservation. In this paper, we...

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Main Authors: ANG, Hock Hee, Gopalkrishnan, Vivekanand, HOI, Steven C. H., NG, Wee Keong
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Language:English
Published: Institutional Knowledge at Singapore Management University 2008
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Online Access:https://ink.library.smu.edu.sg/sis_research/2383
https://ink.library.smu.edu.sg/context/sis_research/article/3383/viewcontent/0046351c3db756001d000000.pdf
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spelling sg-smu-ink.sis_research-33832016-01-13T10:03:03Z Cascade RSVM in Peer-to-Peer Network ANG, Hock Hee Gopalkrishnan, Vivekanand HOI, Steven C. H. NG, Wee Keong The goal of distributed learning in P2P networks is to achieve results as close as possible to those from centralized approaches. Learning models of classification in a P2P network faces several challenges like scalability, peer dynamism, asynchronism and data privacy preservation. In this paper, we study the feasibility of building SVM classifiers in a P2P network. We show how cascading SVM can be mapped to a P2P network of data propagation. Our proposed P2P SVM provides a method for constructing classifiers in P2P networks with classification accuracy comparable to centralized classifiers and better than other distributed classifiers. The proposed algorithm also satisfies the characteristics of P2P computing and has an upper bound on the communication overhead. Extensive experimental results confirm the feasibility and attractiveness of this approach. 2008-09-01T07:00:00Z text application/pdf https://ink.library.smu.edu.sg/sis_research/2383 info:doi/10.1007/978-3-540-87479-9_22 https://ink.library.smu.edu.sg/context/sis_research/article/3383/viewcontent/0046351c3db756001d000000.pdf http://creativecommons.org/licenses/by-nc-nd/4.0/ Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Computer Sciences Databases and Information Systems OS and Networks
institution Singapore Management University
building SMU Libraries
continent Asia
country Singapore
Singapore
content_provider SMU Libraries
collection InK@SMU
language English
topic Computer Sciences
Databases and Information Systems
OS and Networks
spellingShingle Computer Sciences
Databases and Information Systems
OS and Networks
ANG, Hock Hee
Gopalkrishnan, Vivekanand
HOI, Steven C. H.
NG, Wee Keong
Cascade RSVM in Peer-to-Peer Network
description The goal of distributed learning in P2P networks is to achieve results as close as possible to those from centralized approaches. Learning models of classification in a P2P network faces several challenges like scalability, peer dynamism, asynchronism and data privacy preservation. In this paper, we study the feasibility of building SVM classifiers in a P2P network. We show how cascading SVM can be mapped to a P2P network of data propagation. Our proposed P2P SVM provides a method for constructing classifiers in P2P networks with classification accuracy comparable to centralized classifiers and better than other distributed classifiers. The proposed algorithm also satisfies the characteristics of P2P computing and has an upper bound on the communication overhead. Extensive experimental results confirm the feasibility and attractiveness of this approach.
format text
author ANG, Hock Hee
Gopalkrishnan, Vivekanand
HOI, Steven C. H.
NG, Wee Keong
author_facet ANG, Hock Hee
Gopalkrishnan, Vivekanand
HOI, Steven C. H.
NG, Wee Keong
author_sort ANG, Hock Hee
title Cascade RSVM in Peer-to-Peer Network
title_short Cascade RSVM in Peer-to-Peer Network
title_full Cascade RSVM in Peer-to-Peer Network
title_fullStr Cascade RSVM in Peer-to-Peer Network
title_full_unstemmed Cascade RSVM in Peer-to-Peer Network
title_sort cascade rsvm in peer-to-peer network
publisher Institutional Knowledge at Singapore Management University
publishDate 2008
url https://ink.library.smu.edu.sg/sis_research/2383
https://ink.library.smu.edu.sg/context/sis_research/article/3383/viewcontent/0046351c3db756001d000000.pdf
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