Self-Organizing Maps and Learning Vector Quantization for Feature Sequences

被引:0
|
作者
Panu Somervuo
Teuvo Kohonen
机构
[1] Helsinki University of Technology,Neural Networks Research Centre
来源
Neural Processing Letters | 1999年 / 10卷
关键词
learning vector quantization; self-organizing map; sequence processing;
D O I
暂无
中图分类号
学科分类号
摘要
The Self-Organizing Map (SOM) and Learning Vector Quantization (LVQ) algorithms are constructed in this work for variable-length and warped feature sequences. The novelty is to associate an entire feature vector sequence, instead of a single feature vector, as a model with each SOM node. Dynamic time warping is used to obtain time-normalized distances between sequences with different lengths. Starting with random initialization, ordered feature sequence maps then ensue, and Learning Vector Quantization can be used to fine tune the prototype sequences for optimal class separation. The resulting SOM models, the prototype sequences, can then be used for the recognition as well as synthesis of patterns. Good results have been obtained in speaker-independent speech recognition.
引用
收藏
页码:151 / 159
页数:8
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