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bfloat16| Task | Metric | Ours (Wizard, %) | Llama3-8B-Instruct (%) | OpenBioLLM-8B (%) |
|---|---|---|---|---|
| ARC Challenge | Accuracy | 59.73 | 57.17 | 55.38 |
| Normalized Accuracy | 64.59 | 60.75 | 58.62 | |
| HellaSwag | Accuracy | 62.26 | 62.59 | 61.83 |
| Normalized Accuracy | 81.35 | 81.53 | 80.76 | |
| Winogrande | Accuracy | 76.01 | 74.51 | 70.88 |
| GSM8K | Accuracy | 70.81 | 68.69 | 10.15 |
| MMLU-Anatomy | Accuracy | 71.11 | 72.59 | 69.62 |
| MMLU-Clinical Knowledge | Accuracy | 77.74 | 77.83 | 60.38 |
| MMLU-College Biology | Accuracy | 80.56 | 81.94 | 79.86 |
| MMLU-College Medicine | Accuracy | 68.21 | 63.58 | 70.52 |
| MMLU-Medical Genetics | Accuracy | 82.00 | 80.00 | 80.00 |
| MMLU-Professional Medicine | Accuracy | 77.57 | 71.69 | 77.94 |
meta-llama/Meta-Llama-3-8B-Instruct as base.1models:
2 - model: meta-llama/Meta-Llama-3-8B-Instruct
3 # Base model providing a general foundation without specific parameters
4
5 - model: meta-llama/Meta-Llama-3-8B-Instruct
6 parameters:
7 density: 0.60
8 weight: 0.5
9
10 - model: NousResearch/Hermes-2-Pro-Llama-3-8B
11 parameters:
12 density: 0.55
13 weight: 0.1
14
15 - model: aaditya/Llama3-OpenBioLLM-8B
16 parameters:
17 density: 0.55
18 weight: 0.4
19
20merge_method: dare_ties
21base_model: meta-llama/Meta-Llama-3-8B-Instruct
22parameters:
23 int8_mask: true
24dtype: bfloat16