Paper
30 September 1996 Three-dimensional autoregressive model under rotation
Author Affiliations +
Abstract
The invariance and covariance of extracted features from an object under certain transformation play quite important roles in the fields of pattern recognition and image understanding. For instance, in order to recognize a 3D object, we need specific feature extracted from a given object. These features should be independent of the pose and the location of an object. In this paper, as one of the feature extracting methods, we present 3D autoregressive model and its higher dimensional extensions. 1D and 2D autoregressive model has been considered as one of the feature extracting methods.
© (1996) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Masaru Tanaka "Three-dimensional autoregressive model under rotation", Proc. SPIE 2826, Vision Geometry V, (30 September 1996); https://doi.org/10.1117/12.251790
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KEYWORDS
Autoregressive models

3D modeling

Data modeling

Feature extraction

Matrices

Image understanding

Lanthanum

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