Rotation-invariant neural pattern recognition system withapplication to coin recognition |
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Authors: | Fukumi M. Omatu S. Takeda F. Kosaka T. |
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Affiliation: | Fac. of Eng., Tokushima Univ. |
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Abstract: | In pattern recognition, it is often necessary to deal with problems to classify a transformed pattern. A neural pattern recognition system which is insensitive to rotation of input pattern by various degrees is proposed. The system consists of a fixed invariance network with many slabs and a trainable multilayered network. The system was used in a rotation-invariant coin recognition problem to distinguish between a 500 yen coin and a 500 won coin. The results show that the approach works well for variable rotation pattern recognition. |
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