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Modular neural network integrator for human recognition from ear images

机译:模块化神经网络集成器,可从人耳图像中识别人类

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摘要

We propose a modular neural network architecture in order to make easy and fast the recognition process of the ear as a biometric. Comparing with other biometrics, ear recognition has one of the best performances, even when it has not received much attention. To improve the performance for ear recognition and make a comparison with other existing methods, we used the 2D wavelet analysis with Global Thresholding method, and Sugeno Measure and Winner-Takes-All (WTA) as modular neural network integrator. Recognition results achieved was up to 97%.
机译:我们提出了一种模块化的神经网络体系结构,以方便快捷地将耳朵识别为生物特征识别过程。与其他生物识别技术相比,即使没有引起足够重视,人耳识别仍是最佳性能之一。为了提高耳朵识别的性能并与其他现有方法进行比较,我们使用了具有全局阈值方法的二维小波分析,并使用Sugeno Measure和Winner-Takes-All(WTA)作为模块化神经网络集成器。获得的识别结果高达97%。

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