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Lasisi/YORI-Llama-Quantized
YORI-Llama-Quantized is a machine learning model from Lasisi. Use it for the machine learning task on the model card, and read the license before you ship it in a product. The card lists the license as bigscience-openrail-m.
YORI-LLaMA-Quantized is a Yoruba large language model specialized in text generation and AI-based assistance in Yoruba. It was quantized from its base model , Jacaranda/yorubaLLaMA, to achieve lighter memory usage and…
Downloads · 30 days
13
7% of all-time downloads
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From the Hugging Face model README
YORI-LLaMA-Quantized is a Yoruba large language model specialized in text generation and AI-based assistance in Yoruba.
It was quantized from its base model , Jacaranda/yorubaLLaMA, to achieve lighter memory usage and faster inference while maintaining strong linguistic performance.
YORI-LLaMA-Quantized is trained to generate and understand natural Yoruba text with contextual fluency and syntactic awareness. It can be used for:

These limitations suggest the need for more diverse and updated training data across dialects and domains.
A key consideration when running inference is model precision. YORI was quantized for efficiency, but inference should be performed in FP16 precision for stability and performance.
Example snippet:

This model is intended for:
Do not use this model for: