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metadata
language:
  - fi
base_model: LumiOpen/Viking-7B
license: apache-2.0
datasets:
  - mpasila/Alpacazord-V1

This is an ExLlamaV2 quantized model in 4bpw of mpasila/Alpacazord-Viking-7B using the default calibration dataset.

Original Model card:

Model Card for Alpacazord-Viking-7B

This is a merge of mpasila/Alpacazord-Viking-LoRA-7B.

LoRA trained with text-generation-webui in 4-bit using LumiOpen/Viking-7B as the base model for 1 epoch. Dataset used with the LoRA is mpasila/Alpacazord-V1.

It uses Alpaca format like so:

{
    "instruction,output": "Below is an instruction that describes a task. Write a response that appropriately completes the request.\n\n### Instruction:\n%instruction%\n\n### Response:\n%output%",
    "instruction,input,output": "Below is an instruction that describes a task, paired with an input that provides further context. Write a response that appropriately completes the request.\n\n### Instruction:\n%instruction%\n\n### Input:\n%input%\n\n### Response:\n%output%"
}

Merged using this Colab notebook. It might not be the best way to merge a quantized LoRA on to a float16 model but I just wanted to quickly do something. You can try merging it better if you want.

Evaluation

Model Size Type FIN-bench (score)
mpasila/Alpacazord-Viking-7B 7B Instruct
mpasila/Finnish-Viking-Alpaca-V1-7B 7B Instruct 0.3943
mpasila/NordicAlpaca-Finnish-V1-7B 7B Instruct 0.3891
Finnish-NLP/llama-7b-finnish-instruct-v0.1 7B Instruct 0.4365
Finnish-NLP/llama-7b-finnish-instruct-v0.2 7B Instruct 0.3993
Finnish-NLP/llama-7b-finnish 7B Base 0.2350
LumiOpen/Viking-7B (1000B) 7B Base 0.3721
HPLT/gpt-7b-nordic-prerelease 7B Base 0.3169

Source

FIN-bench scores:

Will add later. And possibly other evals?????

Framework versions

  • PEFT 0.8.2