書誌事項
- タイトル別名
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- Neural Networks with Node Gates which Divide and Conquer Problems Based on Local Difficulties
説明
A neural network is proposed based on a divide-and-conquer scheme. The network has gates which control firing of its hidden nodes. By opening and closing the gates depending on input values, the network divides the input space into sub-regions and assigns its nodes to each of them to produce the desired output in that region. The division mechanism is constructed by learning. A new learning method is proposed which divides the space in accordance to the difficulties; areas with larger errors are divided into smaller sub-regions. Thus, the nodes in the network are more densely assigned to areas with higher difficulties to ‘conquer’ the areas appropriately. Function approximation examples are provided to illustrate the validity of the proposed network.
収録刊行物
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- 計測自動制御学会論文集
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計測自動制御学会論文集 39 (9), 841-847, 2003
公益社団法人 計測自動制御学会
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詳細情報 詳細情報について
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- CRID
- 1390001204502645888
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- NII論文ID
- 130003971241
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- ISSN
- 18838189
- 04534654
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- データソース種別
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- JaLC
- Crossref
- CiNii Articles
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- 抄録ライセンスフラグ
- 使用不可