GGUF models for gemma2.java
Pure .gguf Q4_0
and Q8_0
quantizations of Gemma 2 models, ready to consume by gemma2.java.
In the wild, Q8_0
quantizations are fine, but Q4_0
quantizations are rarely pure e.g. the output.weights
tensor is quantized with Q6_K
, instead of Q4_0
.
A pure Q4_0
quantization can be generated from a high precision (F32, F16, BFLOAT16) .gguf source with the llama-quantize
utility from llama.cpp as follows:
./llama-quantize --pure ./Gemma-2-2B-Instruct-F32.gguf ./Gemma-2-2B-Instruct-Q4_0.gguf Q4_0
Gemma Model Card
Model Page: Gemma
This model card corresponds to the 2b instruct version the Gemma 2 model in GGUF Format.
You can also visit the model card of the 2B pretrained v2 model GGUF.
Model Information
Summary description and brief definition of inputs and outputs.
Description
Gemma is a family of lightweight, state-of-the-art open models from Google, built from the same research and technology used to create the Gemini models. They are text-to-text, decoder-only large language models, available in English, with open weights, pre-trained variants, and instruction-tuned variants. Gemma models are well-suited for a variety of text generation tasks, including question answering, summarization, and reasoning. Their relatively small size makes it possible to deploy them in environments with limited resources such as a laptop, desktop or your own cloud infrastructure, democratizing access to state of the art AI models and helping foster innovation for everyone.
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