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A dimensionality reducing model for distributed filtering
Authors:Angel   E. Jain   A.
Affiliation:University of Southern California, Los Angeles, CA, USA;
Abstract:The necessity of filtering noisy data generated by multidimensional processes arises in many diverse settings. The direct application of the Kalman-Bucy results is hindered by dimensionality difficulties inherent in multidimensional problems. This paper shows that for linear steady-state problems significant dimensionality reductions can be accomplished, thus making routine the solution of many interesting problems.
Keywords:
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