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# IndicTransToolkit | |
## About | |
The goal of this repository is to provide a simple, modular, and extendable toolkit for [IndicTrans2](https://github.com/AI4Bharat/IndicTrans2) and be compatible with the HuggingFace models released. Please refer to the `CHANGELOG.md` for latest developments. | |
## Pre-requisites | |
- `Python 3.8+` | |
- [Indic NLP Library](https://github.com/VarunGumma/indic_nlp_library) | |
- Other requirements as listed in `requirements.txt` | |
## Configuration | |
- Editable installation (Note, this may take a while): | |
```bash | |
git clone https://github.com/VarunGumma/IndicTransToolkit | |
cd IndicTransToolkit | |
pip install --editable . --use-pep517 # required for pip >= 25.0 | |
# in case it fails, try: | |
# pip install --editable . --use-pep517 --config-settings editable_mode=compat | |
``` | |
## Examples | |
For the training usecase, please refer [here](https://github.com/AI4Bharat/IndicTrans2/tree/main/huggingface_interface). | |
### PreTainedTokenizer | |
```python | |
import torch | |
from IndicTransToolkit.processor import IndicProcessor # NOW IMPLEMENTED IN CYTHON !! | |
from transformers import AutoModelForSeq2SeqLM, AutoTokenizer | |
ip = IndicProcessor(inference=True) | |
tokenizer = AutoTokenizer.from_pretrained("ai4bharat/indictrans2-en-indic-dist-200M", trust_remote_code=True) | |
model = AutoModelForSeq2SeqLM.from_pretrained("ai4bharat/indictrans2-en-indic-dist-200M", trust_remote_code=True) | |
sentences = [ | |
"This is a test sentence.", | |
"This is another longer different test sentence.", | |
"Please send an SMS to 9876543210 and an email on [email protected] by 15th October, 2023.", | |
] | |
batch = ip.preprocess_batch(sentences, src_lang="eng_Latn", tgt_lang="hin_Deva", visualize=False) # set it to visualize=True to print a progress bar | |
batch = tokenizer(batch, padding="longest", truncation=True, max_length=256, return_tensors="pt") | |
with torch.inference_mode(): | |
outputs = model.generate(**batch, num_beams=5, num_return_sequences=1, max_length=256) | |
with tokenizer.as_target_tokenizer(): | |
# This scoping is absolutely necessary, as it will instruct the tokenizer to tokenize using the target vocabulary. | |
# Failure to use this scoping will result in gibberish/unexpected predictions as the output will be de-tokenized with the source vocabulary instead. | |
outputs = tokenizer.batch_decode(outputs, skip_special_tokens=True, clean_up_tokenization_spaces=True) | |
outputs = ip.postprocess_batch(outputs, lang="hin_Deva") | |
print(outputs) | |
>>> ['यह एक परीक्षण वाक्य है।', 'यह एक और लंबा अलग परीक्षण वाक्य है।', 'कृपया 9876543210 पर एक एस. एम. एस. भेजें और 15 अक्टूबर, 2023 तक [email protected] पर एक ईमेल भेजें।'] | |
``` | |
### Evaluation | |
- `IndicEvaluator` is a python implementation of [compute_metrics.sh](https://github.com/AI4Bharat/IndicTrans2/blob/main/compute_metrics.sh). | |
- We have found that this python implementation gives slightly lower scores than the original `compute_metrics.sh`. So, please use this function cautiously, and feel free to raise a PR if you have found the bug/fix. | |
```python | |
from IndicTransToolkit import IndicEvaluator | |
# this method returns a dictionary with BLEU and ChrF2++ scores with appropriate signatures | |
evaluator = IndicEvaluator() | |
scores = evaluator.evaluate(tgt_lang=tgt_lang, preds=pred_file, refs=ref_file) | |
# alternatively, you can pass the list of predictions and references instead of files | |
# scores = evaluator.evaluate(tgt_lang=tgt_lang, preds=preds, refs=refs) | |
``` | |
## Authors | |
- Varun Gumma ([email protected]) | |
- Jay Gala ([email protected]) | |
- Pranjal Agadh Chitale ([email protected]) | |
- Raj Dabre ([email protected]) | |
## Bugs and Contribution | |
Since this a bleeding-edge module, you may encounter broken stuff and import issues once in a while. In case you encounter any bugs or want additional functionalities, please feel free to raise `Issues`/`Pull Requests` or contact the authors. | |
## Citation | |
If you use our codebase, or models, please do cite the following paper: | |
```bibtex | |
@article{ | |
gala2023indictrans, | |
title={IndicTrans2: Towards High-Quality and Accessible Machine Translation Models for all 22 Scheduled Indian Languages}, | |
author={Jay Gala and Pranjal A Chitale and A K Raghavan and Varun Gumma and Sumanth Doddapaneni and Aswanth Kumar M and Janki Atul Nawale and Anupama Sujatha and Ratish Puduppully and Vivek Raghavan and Pratyush Kumar and Mitesh M Khapra and Raj Dabre and Anoop Kunchukuttan}, | |
journal={Transactions on Machine Learning Research}, | |
issn={2835-8856}, | |
year={2023}, | |
url={https://openreview.net/forum?id=vfT4YuzAYA}, | |
note={} | |
} | |
``` | |