NASA NTRS · 19850007945
Texture classification using autoregressive filtering
Abstract
A general theory of image texture models is proposed and its applicability to the problem of scene segmentation using texture classification is discussed. An algorithm, based on half-plane autoregressive filtering, which optimally utilizes second order statistics to discriminate between texture classes represented by arbitrary wide sense stationary random fields is described. Empirical results of applying this algorithm to natural and sysnthesized scenes are presented and future research is outlined.
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Lawton, W. M., Lee, M.. 1984-01-01. Texture classification using autoregressive filtering. https://ntrs.nasa.gov/citations/19850007945
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