Knowledge acquisition and revision via neural networks
We investigate how knowledge acquired by a neural network from one input environment can be transferred and revised for similar application in a new environment. Knowledge revision is achieved by re-training the neural network. Knowledge common to both environments are retained, while localized know...
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oai:animorepository.dlsu.edu.ph:faculty_research-46342022-11-16T02:50:45Z Knowledge acquisition and revision via neural networks Azcarraga, Arnulfo P. Hsieh, Ming Huei Pan, Shan Ling Setiono, Rudy We investigate how knowledge acquired by a neural network from one input environment can be transferred and revised for similar application in a new environment. Knowledge revision is achieved by re-training the neural network. Knowledge common to both environments are retained, while localized knowledge components are introduced during network retraining. Various network performance measures are computed to measure how much knowledge is transferred and revised. Furthermore, because the knowledge acquired by a neural network can be expressed as an accurate set of simple rules, we are able to compare knowledge extracted from one network with that from another. In a cross-national study of car image perceptions, a comparison of the original and revised knowledge gives us insights into the commonalities and differences in brand perceptions across countries. 2004-12-01T08:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/3632 info:doi/10.1109/IJCNN.2004.1380147 Faculty Research Work Animo Repository Neural networks (Computer science) Self-organizing systems Computer Sciences Software Engineering |
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Neural networks (Computer science) Self-organizing systems Computer Sciences Software Engineering Azcarraga, Arnulfo P. Hsieh, Ming Huei Pan, Shan Ling Setiono, Rudy Knowledge acquisition and revision via neural networks |
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We investigate how knowledge acquired by a neural network from one input environment can be transferred and revised for similar application in a new environment. Knowledge revision is achieved by re-training the neural network. Knowledge common to both environments are retained, while localized knowledge components are introduced during network retraining. Various network performance measures are computed to measure how much knowledge is transferred and revised. Furthermore, because the knowledge acquired by a neural network can be expressed as an accurate set of simple rules, we are able to compare knowledge extracted from one network with that from another. In a cross-national study of car image perceptions, a comparison of the original and revised knowledge gives us insights into the commonalities and differences in brand perceptions across countries. |
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Azcarraga, Arnulfo P. Hsieh, Ming Huei Pan, Shan Ling Setiono, Rudy |
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Azcarraga, Arnulfo P. Hsieh, Ming Huei Pan, Shan Ling Setiono, Rudy |
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Azcarraga, Arnulfo P. |
title |
Knowledge acquisition and revision via neural networks |
title_short |
Knowledge acquisition and revision via neural networks |
title_full |
Knowledge acquisition and revision via neural networks |
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Knowledge acquisition and revision via neural networks |
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Knowledge acquisition and revision via neural networks |
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knowledge acquisition and revision via neural networks |
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Animo Repository |
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2004 |
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https://animorepository.dlsu.edu.ph/faculty_research/3632 |
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