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Titlebook: Artificial Neural Networks for Computer Vision; Yi-Tong Zhou,Rama Chellappa Textbook 1992 Springer-Verlag New York, Inc. 1992 Stereo.algor

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,Die chemische Bindung in Festkörpern,field, but this is not always true [Hor86]. It is common to assume that the optical flow is not too different from the motion field. Under this assumption, the optical flow can be used for segmenting images into regions and estimating the object motion in the scene [Adi85].
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Research Notes in Neural Computinghttp://image.papertrans.cn/b/image/162672.jpg
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,Motion Stereo—Longitudinal Motion,ormation from longitudinal motion. In this chapter, we present a neural network-based algorithm for longitudinal motion stereo. The algorithm allows the camera to move along its optical axis forward or backward, and requires no information on the FOE. It produces multiple dense disparity fields and recovers the depth map very efficiently.
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Introduction, computers are not. This is because of the massive amount of two-dimensional array data that needs to be analyzed and the lack of learning or self-organizing capabilities of most modern day computers. From a mathematical point of view, low-level vision problems are ill-posed according to Hadamard [H
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Computational Neural Networks,Hebb [Heb49] proposed a learning rule that is a simulated network; first tested in the Edmonds and Min-sky’s learning machine, it is still used today in many learning paradigms. In the 1950s, Rosenblatt [Ros59, Ros62] invented a class of simple neuron learning networks called perceptrons in order to
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Static Stereo,tances from . to the center of the left fovea and from . to the center of the right fovea are different. The disparity in the distance varies with the depth of the point in space. The three-dimensional information can be decoded from the binocular disparities.
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