Confidence estimation for translation prediction.

CoNLL(2003)

引用 94|浏览46
摘要
The purpose of this work is to investigate the use of machine learning approaches for confidence estimation within a statistical machine translation application. Specifically, we attempt to learn probabilities of correctness for various model predictions, based on the native probabilites (i.e. the probabilites given by the original model) and on features of the current context. Our experiments were conducted using three original translation models and two types of neural nets (single-layer and multilayer perceptrons) for the confidence estimation task.
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关键词
current context,various model prediction,native probabilites,multilayer perceptrons,original model,neural net,translation prediction,confidence estimation,original translation model,statistical machine translation application,confidence estimation task,machine learning,multi layer perceptron
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