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whisper-small-malayalam) by applying Audio Context Fine-Tuning (ACFT), converting the standard Hugging Face weights into the GGML format, and quantizing the model for efficient mobile inference.whisper.cpp repositories to convert the fine-tuned .safetensors model into a standard .bin file.whisper-quantize tool and generates optimized, quantized versions (e.g., q5_0) of the model tailored for smartphone hardware constraints.uv for rapid package installation and environment setup within the Colab runtime..tar.gz archives or saving the final output directly to Drive).malayalam_whisper_full_pipeline.ipynb notebook to your Google Colab environment.torch, transformers, datasets, librosa, etc.) via uv.convert-h5-to-ggml.py to generate the base ggml-model.bin file.whisper.cpp Makefile and generating quantized .bin files./content/output/ directory (or your mounted Google Drive).malayalam-futo-q5_0.bin file..bin file to your Android device's internal storage.