Model card
The wav2vec2-large-xlsr-53-japanese model is a robust automatic speech recognition (ASR) tool fine-tuned for Japanese audio. Built on Meta's cross-lingual XLSR framework, it leverages self-supervised pre-training across 53 languages to achieve high phonetic accuracy even with limited labeled Japanese data. For developers, this means a reliable solution for transcribing Japanese speech into text without needing to build a model from scratch. It integrates seamlessly with the Hugging Face Transformers library, making it easy to deploy in Python-based pipelines for applications like automated subtitling, voice command interfaces, or accessibility tools. Compared to general-purpose models, its specialized tuning for Japanese provides better handling of the language's specific acoustic properties.
Model files and versions
Download this model
We recommend using the ModelScope CLI or SDK. Install ModelScope first, then choose a full snapshot, single file, SDK or Git LFS workflow.
jonatasgrosman/wav2vec2-large-xlsr-53-japaneseInstall the CLI and SDK dependency before downloading.
pip install modelscopeDownload the complete weights, configuration and model card.
modelscope download --model jonatasgrosman/wav2vec2-large-xlsr-53-japaneseREADME.md is used as an example; replace it with another repository file when needed.
modelscope download --model jonatasgrosman/wav2vec2-large-xlsr-53-japanese README.md --local_dir ./dirUseful in Python projects and automation scripts.
from modelscope import snapshot_download
model_dir = snapshot_download('jonatasgrosman/wav2vec2-large-xlsr-53-japanese')Make sure Git LFS is installed correctly.
git lfs install
git clone https://www.modelscope.cn/jonatasgrosman/wav2vec2-large-xlsr-53-japanese.gitFetch the repository structure first, then pull large files when needed.
GIT_LFS_SKIP_SMUDGE=1 git clone https://www.modelscope.cn/jonatasgrosman/wav2vec2-large-xlsr-53-japanese.gitHow to use
- 01Step 1
Read the model card and source information.
- 02Step 2
Start with a small, non-sensitive evaluation.
- 03Step 3
Review quality, licensing and usage limits.
- 04Step 4
Adopt it only after validation.
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