Selection of Typical Objects in Classes for Recognition Problems 1

E. V. Djukova, N. V. Peskov · 2002

Discrete recognition procedures based on a search for sets of feature values that are not encountered in the feature descriptions of training objects are considered. The constructed recognition procedures are com- pared with classical procedures for real-life applied problems. An approach to improving the performance of recognition algorithms based on selecting training objects typical for each class is examined. A fast method for calculating estimates in voting over representative sets for the cross-validation procedure is suggested.

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