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A Customizable Multi-Agent System for Distributed Data Mining
Conference proceeding   Peer reviewed

A Customizable Multi-Agent System for Distributed Data Mining

Giuseppe Di Fatta and G Fortino
Proceedings of the ACM Symposium on Applied Computing: 22nd Annual ACM Symposium on Applied Computing, SAC 2007 11 March 2007 - 15 March 2007, pp.42-47
2007
Handle:
https://hdl.handle.net/10863/53025

Abstract

We present a general Multi-Agent System framework for distributed data mining based on a Peer-to-Peer model. Agent protocols are implemented through message-based asynchronous communication. The framework adopts a dynamic load balancing policy that is particularly suitable for irregular search algorithms. A modular design allows a separation of the general-purpose system protocols and software components from the specific data mining algorithm. The experimental evaluation has been carried out on a parallel frequent subgraph mining algorithm, which has shown good scalability performances.
url
https://doi.org/10.1145/1244002.1244012View

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