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A Multilingual Evaluation of Three Spelling Normalisation Methods for Historical Text
Eva Pettersson
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Beáta Megyesi
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Joakim Nivre
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Paper Details:
Month: April
Year: 2014
Location: Gothenburg, Sweden
Venue:
LaTeCH |
WS |
SIG: SIGHUM
Citations
URL
An Evaluation of Neural Machine Translation Models on Historical Spelling Normalization
Gongbo Tang
|
Fabienne Cap
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Eva Pettersson
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Joakim Nivre
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Combining Ontologies and Neural Networks for Analyzing Historical Language Varieties. A Case Study in Middle Low German
Maria Sukhareva
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Christian Chiarcos
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The Uppsala Corpus of Student Writings: Corpus Creation, Annotation, and Analysis
Beáta Megyesi
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Jesper Näsman
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Anne Palmér
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Evaluating Historical Text Normalization Systems: How Well Do They Generalize?
Alexander Robertson
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Sharon Goldwater
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Combining Phonology and Morphology for the Normalization of Historical Texts
Izaskun Etxeberria
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Iñaki Alegria
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Larraitz Uria
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Mans Hulden
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Normalizing Medieval German Texts: from rules to deep learning
Natalia Korchagina
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Comparing Rule-based and SMT-based Spelling Normalisation for English Historical Texts
Gerold Schneider
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Eva Pettersson
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Michael Percillier
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Encoder-Decoder Methods for Text Normalization
Massimo Lusetti
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Tatyana Ruzsics
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Anne Göhring
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Tanja Samardžić
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Elisabeth Stark
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No URLs Found
Field Of Study
Linguistic Trends
Syntax
Task
Tagging
Machine Translation
Language
Multilingual
English
Dataset
Twitter
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