Effect of noise in moment invariant neural network aircraft classification

A. McAuley, A. Coker, K. Saruhan
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引用次数: 9

Abstract

An image may be reduced to a small number of moment invariants such that these are independent of the shift, scale, and rotation of an object in the image. However, noise interferes with the ability to provide invariance. The authors examine the effects of noise on the invariance provided by the moment invariants. They then show that rotation invariance is maintained in low levels of noise. They then show that a neural network may be used to provide robustness against noise. The moment invariants, computed for different levels of noise, are used to train a neural network to identify two aircraft. A split inversion algorithm is used because it is much faster than back propagation. The resulting network provides accurate classification in high levels of noise.<>
噪声对矩不变神经网络飞机分类的影响
图像可以简化为少量的矩不变量,使得这些矩不变量与图像中对象的移位、缩放和旋转无关。但是,噪声会干扰提供不变性的能力。作者研究了噪声对矩不变量所提供的不变性的影响。然后,他们证明了旋转不变性在低噪声水平下是保持的。然后,他们展示了神经网络可以用来提供抗噪声的鲁棒性。对不同噪声水平计算的矩不变量用于训练神经网络来识别两架飞机。使用分割反转算法,因为它比反向传播快得多。由此产生的网络在高噪声水平下提供了准确的分类
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