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July 1, 1983IEEE Transactions on Pattern Analysis and Machine Intelligence90 citations

Application of the Conditional Population-Mixture Model to Image Segmentation

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SSStanley L. Sclove

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Abstract

The problem of image segmentation is considered in the context of a mixture of probability distributions. The segments fall into classes. A probability distribution is associated with each class of segment. Parametric families of distributions are considered, a set of parameter values being associated with each class. With each observation is associated an unobservable label, indicating from which class the observation arose. Segmentation algorithms are obtained by applying a method of iterated maximum likelihood to the resulting likelihood function. A numerical example is given. Choice of the number of classes, using Akaike's information criterion (AIC) for model identification, is illustrated.

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Cite This Study

Stanley L. Sclove (1983) studied this question.

synapsesocial.com/papers/6a20ae949e00afa23b234347https://doi.org/10.1109/tpami.1983.4767412
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