PowerLM-3b-GGUF / README.md
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metadata
pipeline_tag: text-generation
inference: false
license: apache-2.0
library_name: transformers
tags:
  - TensorBlock
  - GGUF
base_model: ibm/PowerLM-3b
model-index:
  - name: ibm/PowerLM-3b
    results:
      - task:
          type: text-generation
        dataset:
          name: ARC
          type: lm-eval-harness
        metrics:
          - type: accuracy-norm
            value: 60.5
            name: accuracy-norm
            verified: false
          - type: accuracy
            value: 72
            name: accuracy
            verified: false
          - type: accuracy-norm
            value: 74.6
            name: accuracy-norm
            verified: false
          - type: accuracy-norm
            value: 43.6
            name: accuracy-norm
            verified: false
          - type: accuracy-norm
            value: 79.9
            name: accuracy-norm
            verified: false
          - type: accuracy-norm
            value: 70
            name: accuracy-norm
            verified: false
          - type: accuracy
            value: 49.2
            name: accuracy
            verified: false
          - type: accuracy
            value: 34.9
            name: accuracy
            verified: false
          - type: accuracy
            value: 15.2
            name: accuracy
            verified: false
      - task:
          type: text-generation
        dataset:
          name: humaneval
          type: bigcode-eval
        metrics:
          - type: pass@1
            value: 26.8
            name: pass@1
            verified: false
          - type: pass@1
            value: 33.6
            name: pass@1
            verified: false
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ibm/PowerLM-3b - GGUF

This repo contains GGUF format model files for ibm/PowerLM-3b.

The files were quantized using machines provided by TensorBlock, and they are compatible with llama.cpp as of commit b4011.

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## Prompt template

Model file specification

Filename Quant type File Size Description
PowerLM-3b-Q2_K.gguf Q2_K 1.252 GB smallest, significant quality loss - not recommended for most purposes
PowerLM-3b-Q3_K_S.gguf Q3_K_S 1.453 GB very small, high quality loss
PowerLM-3b-Q3_K_M.gguf Q3_K_M 1.617 GB very small, high quality loss
PowerLM-3b-Q3_K_L.gguf Q3_K_L 1.759 GB small, substantial quality loss
PowerLM-3b-Q4_0.gguf Q4_0 1.873 GB legacy; small, very high quality loss - prefer using Q3_K_M
PowerLM-3b-Q4_K_S.gguf Q4_K_S 1.888 GB small, greater quality loss
PowerLM-3b-Q4_K_M.gguf Q4_K_M 2.001 GB medium, balanced quality - recommended
PowerLM-3b-Q5_0.gguf Q5_0 2.269 GB legacy; medium, balanced quality - prefer using Q4_K_M
PowerLM-3b-Q5_K_S.gguf Q5_K_S 2.269 GB large, low quality loss - recommended
PowerLM-3b-Q5_K_M.gguf Q5_K_M 2.334 GB large, very low quality loss - recommended
PowerLM-3b-Q6_K.gguf Q6_K 2.689 GB very large, extremely low quality loss
PowerLM-3b-Q8_0.gguf Q8_0 3.481 GB very large, extremely low quality loss - not recommended

Downloading instruction

Command line

Firstly, install Huggingface Client

pip install -U "huggingface_hub[cli]"

Then, downoad the individual model file the a local directory

huggingface-cli download tensorblock/PowerLM-3b-GGUF --include "PowerLM-3b-Q2_K.gguf" --local-dir MY_LOCAL_DIR

If you wanna download multiple model files with a pattern (e.g., *Q4_K*gguf), you can try:

huggingface-cli download tensorblock/PowerLM-3b-GGUF --local-dir MY_LOCAL_DIR --local-dir-use-symlinks False --include='*Q4_K*gguf'