2012
DOI: 10.1587/transinf.e95.d.2298
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Automatic Allocation of Training Data for Speech Understanding Based on Multiple Model Combinations

Abstract: SUMMARYThe optimal way to build speech understanding modules depends on the amount of training data available. When only a small amount of training data is available, effective allocation of the data is crucial to preventing overfitting of statistical methods. We have developed a method for allocating a limited amount of training data in accordance with the amount available. Our method exploits rule-based methods for when the amount of data is small, which are included in our speech understanding framework bas… Show more

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