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Rotated Coin Recognition Using Neural Networks

机译:使用神经网络的旋转硬币识别

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Neural networks have been used in the development of intelligent recognition systems that simulate our ability recognize patterns. However, rotated objects may cause incorrect identification by recognition systems. Our quick glance provides an overall approximation of a pattern regardless of noise or rotations. This paper proposes that the overall approximation of a pattern can be achieved via pattern averaging prior to training a neural network to recognize that pattern in various rotations. Pattern averaging provides the neural network with "fuzzy" rather than "crisp" representations of the rotated objects, thus, minimizing computational costs and providing the neural network with meaningful learning of various rotations of an object. The proposed method will be used to recognize rotated coins and is implemented to solve an existing problem where slot machines in Europe accept the new Turkish 1 Lira coin as a 2 Euro coin.
机译:神经网络已用于模拟我们能力识别模式的智能识别系统的开发中。但是,旋转的物体可能会导致识别系统识别不正确。我们的快速浏览提供了一个模式的整体近似值,而与噪声或旋转无关。本文提出,在训练神经网络以识别各种旋转中的模式之前,可以通过模式平均来实现模式的整体近似。模式平均为神经网络提供了旋转对象的“模糊”表示,而不是“清晰”表示,因此将计算成本降至最低,并为神经网络提供了对象各种旋转的有意义的学习信息。拟议的方法将用于识别旋转的硬币,并用于解决欧洲的老虎机接受新的土耳其1里拉硬币作为2欧元硬币的问题。

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