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A gray-level threshold selection method based on maximum entropy principle

机译:基于最大熵原理的灰度阈值选择方法

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摘要

A description is given of a gray-level threshold selection method for image segmentation that is based on the maximum entropy principle. The optimal threshold value is determined by maximizing the a posteriori entropy subject to certain inequality constraints which are derived by means of spectral measures characterizing uniformity and the shape of the regions in the image. For this purpose, the authors use both the gray-level distribution and the spatial information of an image. The effectiveness of the method is demonstrated by its performance on some real-world images. An extension of this method to chromatic images is provided.
机译:基于最大熵原理,给出了用于图像分割的灰度阈值选择方法的描述。最佳阈值是通过使后验熵经受一定的不等式约束条件来确定的,这些不等式约束条件是通过表征图像中区域均匀性和形状的光谱度量得出的。为此,作者同时使用图像的灰度分布和空间信息。该方法的有效性通过其在某些真实世界图像上的性能证明。提供了该方法到彩色图像的扩展。

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