merge

This is a merge of pre-trained language models created using mergekit.

Merge Details

Merge Method

This model was merged using the SLERP merge method.

Models Merged

The following models were included in the merge:

Configuration

The following YAML configuration was used to produce this model:

slices:
  - sources:
      - model: bamec66557/MISCHIEVOUS-12B-Mix_0.4v
        layer_range: [0, 8]
      - model: bamec66557/MISCHIEVOUS-12B-Mix_III_IV_V
        layer_range: [0, 8]
    parameters:
      t:
        - value: 0.72
  - sources:
      - model: bamec66557/MISCHIEVOUS-12B-Mix_0.4v
        layer_range: [8, 16]
      - model: bamec66557/MISCHIEVOUS-12B-Mix_III_IV_V
        layer_range: [8, 16]
    parameters:
      t:
        - value: [0.75, 0.85, 0.75]
  - sources:
      - model: bamec66557/MISCHIEVOUS-12B-Mix_0.4v
        layer_range: [16, 24]
      - model: bamec66557/MISCHIEVOUS-12B-Mix_III_IV_V
        layer_range: [16, 24]
    parameters:
      t:
        - value: [0.85, 1.0, 0.85]
        - filter: feed_forward
          value: [0.9, 1.0, 1.1]
  - sources:
      - model: bamec66557/MISCHIEVOUS-12B-Mix_0.4v
        layer_range: [24, 32]
      - model: bamec66557/MISCHIEVOUS-12B-Mix_III_IV_V
        layer_range: [24, 32]
    parameters:
      t:
        - value: [0.95, 1.0, 0.95]
  - sources:
      - model: bamec66557/MISCHIEVOUS-12B-Mix_0.4v
        layer_range: [32, 40]
      - model: bamec66557/MISCHIEVOUS-12B-Mix_III_IV_V
        layer_range: [32, 40]
    parameters:
      t:
        - value: 1.0
        - filter: self_attn
          value: [0.92, 1.0, 1.08]
merge_method: slerp
base_model: bamec66557/MISCHIEVOUS-12B-Mix_0.4v
regularization:
  - method: weight_clipping
    clip_range: [-0.04, 0.04]
postprocessing:
  - operation: gaussian_smoothing
    sigma: 0.9
  - operation: normalize
  - operation: quantize
    target_dtype: int8
dtype: bfloat16

Open LLM Leaderboard Evaluation Results

Detailed results can be found here

Metric Value
Avg. 23.84
IFEval (0-Shot) 43.66
BBH (3-Shot) 34.73
MATH Lvl 5 (4-Shot) 12.31
GPQA (0-shot) 10.40
MuSR (0-shot) 12.34
MMLU-PRO (5-shot) 29.58
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Model size
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Tensor type
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