書誌事項
- タイトル別名
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- A Compact Structuring Method for Hierarchical Neural Networks by Eliminating Extra Hidden Layers and Units
- ジョウチョウ ナ カクレソウ カクレ ユニット ノ サクジョ ニ ヨル カイソ
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説明
When we apply a hierarchical neural network based on the back-propagation algorithm to a particular problem, we must determine beforehand the suitable size of network for the problem. But it is a very difficult problem. Too small a network will not learn at all, while too large a network will be inefficient and worsen its generalization ability due to overfitting.<br>In order to solve this problem, in this paper we propose a compact structuring method based on learning with a large size network and then compacting gradually the network by eliminating extra hidden layers and units. The result is a small and efficient network that performs better than the original. Also we demonstrate the effectiveness of this method by appling it to an identification problem of logic function.
収録刊行物
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- 電気学会論文誌C(電子・情報・システム部門誌)
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電気学会論文誌C(電子・情報・システム部門誌) 114 (11), 1194-1200, 1994
一般社団法人 電気学会
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詳細情報 詳細情報について
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- CRID
- 1390001204609152000
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- NII論文ID
- 130006844722
- 40002525088
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- NII書誌ID
- AN10065950
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- ISSN
- 13488155
- 03854221
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- NDL書誌ID
- 3899815
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