A Parallel Implementation of the Gustafson-Kessel Clustering Algorithm with CUDA

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초록

Despite the benefits of the Gustafson-Kessel (GK) clustering algorithm, it becomes computationally inefficient when applied to high-dimensional data. In this letter, a parallel implementation of the GK algorithm on the GPU with CUDA is proposed. Using an optimized matrix multiplication algorithm with fast access to shared memory, the CUDA version achieved a maximum 240-fold speedup over the single-CPU version.

키워드

clustering; Gustafson-Kessel; CUDA; GPU
제목
A Parallel Implementation of the Gustafson-Kessel Clustering Algorithm with CUDA
저자
Seo, Jeong Bong; Kim, Dae-Won
DOI
10.1587/transinf.E95.D.1162
발행일
2012-04
유형
Article
저널명
IEICE Transactions on Information and Systems
권
E95D
호
4
페이지
1162 ~ 1165