EXPERIMENTS FOR ISOLATED-WORD RECOGNITION WITH SINGLE-LAYER AND 2-LAYER PERCEPTRONS

被引:10
作者
KAMMERER, BR
KUPPER, WA
机构
[1] Siemens AG, Muenchen, Germany
关键词
Discrimination boundaries; Error-backpropagation; Expansion of training material; Generalization properties; Hierarchical classification; Isolated-word recognition; Multilayer perceptron; Perceptron;
D O I
10.1016/0893-6080(90)90057-R
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Several design strategies for feed-forward networks are examined within the scope of pattern classification. Single- and two-layer perceptron models are adapted for experiments in isolated-word recognition. Direct (one-step) classification as well as several hierarchical (two-step) schemes have been considered. For a vocabulary of 20 English words spoken repeatedly by 11 speakers, the word classes are found to be separable by hyperplanes in the chosen feature space. Since for speaker-dependent word recognition the underlying data base contains only a small training set, an automatic expansion of the training material improves the generalization properties of the networks. This method accounts for a wide variety of observable temporal structures for each word and gives a better overall estimate of the network parameters which leads to a recognition rate of 99.5%. For speaker-independent word recognition, a hierarchical structure with pairwise training of two-class models is superior to a single uniform network (98% average recognition rate). © 1990.
引用
收藏
页码:693 / 706
页数:14
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