首页> 外文会议>Congress of the international commission for optics: Optics for the next millennium;ICO XVIII >Multi-object intensity-invariant pattern recognition with an optimal processor for correlated noise
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Multi-object intensity-invariant pattern recognition with an optimal processor for correlated noise

机译:具有相关噪声的最佳处理器的多目标强度不变模式识别

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Abstract: Normalized correlation provides a way to achieve reliable pattern recognition with images containing multiple target objects of unequal intensities without the need of image segmentation. We show that the optimum Bayesian processor for the detection of a target with additive correlated noise and disjoint background, introduced, has the form of the normalized correlation. In consequence it can be expressed with correlations and pointwise processing only - which is a condition for an efficient optical implementation. Moreover it may be applied to multi-object intensity invariant problems.!6
机译:摘要:归一化相关提供了一种方法,该方法可使用包含多个强度不等的目标对象的图像实现可靠的模式识别,而无需进行图像分割。我们表明,引入累加相关噪声和不相交背景的最佳贝叶斯处理器检测目标具有归一化相关形式。结果,它只能用相关性和逐点处理来表示-这是有效光学实现的条件。此外,它可以应用于多目标强度不变性问题。6

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