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題名 An Explanation of Reasoning Neural Networks
作者 蔡瑞煌
Tsaih,Rua-Huan
關鍵詞 Reasoning neural networks; Activation field; Properly placed; Level-adjacent mapping
日期 1998-07
上傳時間 17-Jan-2009 16:08:13 (UTC+8)
摘要 Reasoning Neural Networks (RN) adopts the layered feedforward network structure, and its learning algorithm belongs to the weight-and-structure-change category of learning algorithm. In this paper, we firstly explain that, in the layered feedforward network, the essential characteristic of the mapping between two consecutive layers is the level-adjacent mapping, in which level-adjacent patterns in the previous-layer space are mapped to similar patterns in the latter-layer space. Then, we explain how RN`s learning algorithm handles the undesired predicaments associated with the back propagation learning algorithm.
關聯 Mathematical and Computer Modelling, 28(2), 37-44
資料類型 article
dc.creator (作者) 蔡瑞煌zh_TW
dc.creator (作者) Tsaih,Rua-Huan-
dc.date (日期) 1998-07en_US
dc.date.accessioned 17-Jan-2009 16:08:13 (UTC+8)-
dc.date.available 17-Jan-2009 16:08:13 (UTC+8)-
dc.date.issued (上傳時間) 17-Jan-2009 16:08:13 (UTC+8)-
dc.identifier.uri (URI) https://nccur.lib.nccu.edu.tw/handle/140.119/27076-
dc.description.abstract (摘要) Reasoning Neural Networks (RN) adopts the layered feedforward network structure, and its learning algorithm belongs to the weight-and-structure-change category of learning algorithm. In this paper, we firstly explain that, in the layered feedforward network, the essential characteristic of the mapping between two consecutive layers is the level-adjacent mapping, in which level-adjacent patterns in the previous-layer space are mapped to similar patterns in the latter-layer space. Then, we explain how RN`s learning algorithm handles the undesired predicaments associated with the back propagation learning algorithm.-
dc.format application/en_US
dc.language enen_US
dc.language en-USen_US
dc.language.iso en_US-
dc.relation (關聯) Mathematical and Computer Modelling, 28(2), 37-44en_US
dc.subject (關鍵詞) Reasoning neural networks; Activation field; Properly placed; Level-adjacent mapping-
dc.title (題名) An Explanation of Reasoning Neural Networksen_US
dc.type (資料類型) articleen