Predicting Typological Features in WALS using Language Embeddings and Conditional Probabilities: รšFAL Submission to the SIGTYP 2020 Shared Task

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Authors Martin Vastl, Daniel Zeman, Rudolf Rosa arXiv ID 2010.03920 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 7 Venue SIGTYP Last Checked 5 months ago
Abstract
We present our submission to the SIGTYP 2020 Shared Task on the prediction of typological features. We submit a constrained system, predicting typological features only based on the WALS database. We investigate two approaches. The simpler of the two is a system based on estimating correlation of feature values within languages by computing conditional probabilities and mutual information. The second approach is to train a neural predictor operating on precomputed language embeddings based on WALS features. Our submitted system combines the two approaches based on their self-estimated confidence scores. We reach the accuracy of 70.7% on the test data and rank first in the shared task.
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