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    Active training of backpropagation neural networks using the learning by experimentation methodology

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    [[abstract]]This paper proposes the Learning by Experimentation Methodology (LEM) to facilitate the active training of neural networks. In an active learning paradigm, a learning mechanism can actively interact with its environment to acquire new knowledge and revise itself. The learning by experimentation is an active learning strategy. Experiments are conducted to form hypotheses, and the evaluation of those hypotheses feeds back to the learning mechanism to revise knowledge. We use a backpropagation neural network as the learning mechanism. We also adopt a weight space analysis method and a heuristic to select salient attributes to perform new experiments in order to revise the network. Finally we illustrate performance by solving the sonar signal classification problem.[[fileno]]2070502010003[[department]]服務科學研究

    封面、目錄及封底

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    [[fileno]]202_JA01_2001_n4_p

    研究專訪

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    [[fileno]]202_JA01_2001_n4_p2

    掃描探針顯微術於材料表面分析的應用

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    [[abstract]]受訪教授:林鶴男教授[[fileno]]202_JA01_2001_n4_p4

    電漿活化法製備高分子酵素膜-葡萄糖檢測器

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    [[fileno]]202_JA01_2002_n7_p3

    封面、目錄及封底

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    [[fileno]]202_JA01_2003_n9_p

    國科會九十二年度傑出研究獎

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    [[fileno]]202_JA01_2004_n13_p3

    自行車後變速系統之鏈輪組構形

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    [[fileno]]202_JA01_2006_n18_p7

    生物組織材料天然交聯劑與滅菌劑的研發

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    [[abstract]]受訪教授:宋信文教授[[fileno]]202_JA01_2001_n5_p3

    微機電系統之研發

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    [[abstract]]受訪教授:劉承賢教授[[fileno]]202_JA01_2001_n5_p4

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