Yayınlanmış 1 Ocak 2019 | Sürüm v1
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RTM Stacking Results for Machine Translation Performance Prediction

Oluşturanlar

  • 1. Bogazici Univ, Elect & Elect Engn Dept, Bebek, Turkey

Açıklama

We obtain new results using referential translation machines with increased number of learning models in the set of results that are stacked to obtain a better mixture of experts prediction. We combine features extracted from the word-level predictions with the sentence- or document-level features, which significantly improve the results on the training sets but decrease the test set results.

Dosyalar

bib-cc479b0a-7ca6-4a6e-b6f2-e012ae2a83eb.txt

Dosyalar (173 Bytes)

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md5:f00d4124e1059ad766924c52f27dd830
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