A Pattern Classification Method using Kernel Adaptive-Subspace Self-Organizing Map
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概要
- 論文の詳細を見る
Adaptive-Subspace Self-Organizing Map (ASSOM) is a variant of Self-Organizing Map, where each computational unit defines a linear subspace. The subspace in a unit is represented by a set of basis vectors. After training, these units result in a set of subspace detectors. In numerous cases, however, these are not enough to describe a class of patterns because of a linearity. In this letter, the ASSOM on the high-dimensional space with kernel method is proposed in order to achieve efficient classification. By using the kernel method, linear subspaces in the ASSOM can be extended to non-linear subspaces easily. This improves the representation of subspace. The effectiveness of the proposed method is verified by applying it to a well-known problem, or two spirals classification.
- 社団法人 電気学会の論文
- 2005-01-01
著者
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Kawano Hideaki
Kyushu Institute Of Technology
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Yamakawa T
Graduate School Of Life Science And Systems Engineering Kyushu Institute Of Technology
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Yamakawa Takeshi
Kyushu Inst. Technol. Kitakyushu Jpn
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Horio Keiichi
Graduate School Of Life Science And Systems Engineering Kyushu Institute Of Technology
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Horio Keiichi
Kyushu Institute Of Technology
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