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URL: https://huggingface.co/Delta-Vector/Holland-4B-V1

โ‡ฑ Delta-Vector/Holland-4B-V1 ยท Hugging Face


A model made to continue off my previous work on Magnum 4B, A small model made for creative writing / General assistant tasks, finetuned ontop of IntervitensInc/Llama-3.1-Minitron-4B-Width-Base-chatml, this model is made to be more coherent and generally be better then the 4B at both writing and assistant tasks.

Quants

GGUF: https://huggingface.co/NewEden/Holland-4B-gguf

EXL2: https://huggingface.co/NewEden/Holland-4B-exl2

Prompting

Model has been Instruct tuned with the ChatML formatting. A typical input would look like this:

"""<|im_start|>system
system prompt<|im_end|>
<|im_start|>user
Hi there!<|im_end|>
<|im_start|>assistant
Nice to meet you!<|im_end|>
<|im_start|>user
Can I ask a question?<|im_end|>
<|im_start|>assistant
"""

Support

No longer needed as LCPP has merged support - just update.

To run inference on this model, you'll need to use Aphrodite, vLLM or EXL 2/tabbyAPI, as llama.cpp hasn't yet merged the required pull request to fix the llama 3.1 rope_freqs issue with custom head dimensions.

However, you can work around this by quantizing the model yourself to create a functional GGUF file. Note that until this PR is merged, the context will be limited to 8 k tokens.

To create a working GGUF file, make the following adjustments:

  1. Remove the "rope_scaling": {} entry from config.json
  2. Change "max_position_embeddings" to 8192 in config.json

These modifications should allow you to use the model with llama. Cpp, albeit with the mentioned context limitation.

Axolotl config


Credits

Training

The training was done for 2 epochs. We used 2 x RTX 6000s GPUs graciously provided by Kubernetes_Bad for the full-parameter fine-tuning of the model.

๐Ÿ‘ Built with Axolotl

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