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igorsterner/german-english-code-switching-bert
german-english-code-switching-bert is a fill-mask model from igorsterner. Use it when you need the model to fill a missing word. It is set up for transformers. The card lists the license as mit.
A BERT-based model trained with masked language modelling on a large corpus of German--English code-switching. It was introduced in this paper. This model is case sensitive.
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From the Hugging Face model README
A BERT-based model trained with masked language modelling on a large corpus of German--English code-switching. It was introduced in this paper. This model is case sensitive.
batch_size = 32
epochs = 1
n_steps = 191,950
max_seq_len = 512
learning_rate = 1e-4
weight_decay = 0.01
Adam beta = (0.9, 0.999)
lr_schedule = LinearWarmup
num_warmup_steps = 10,000
seed = 2021
During training we monitored the evaluation loss on the TongueSwitcher dev set.

is473 [at] cam.ac.uksht25 [at] cam.ac.uk@inproceedings{sterner2023tongueswitcher,
author = {Igor Sterner and Simone Teufel},
title = {TongueSwitcher: Fine-Grained Identification of German-English Code-Switching},
booktitle = {Sixth Workshop on Computational Approaches to Linguistic Code-Switching},
publisher = {Empirical Methods in Natural Language Processing},
year = {2023},
}