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| Benchmark | Model1 | Model2 | Model1-v2 | MyAwesomeModel | |
|---|---|---|---|---|---|
| Core Reasoning Tasks | Math Reasoning | 0.510 | 0.535 | 0.521 | 0.550 |
| Logical Reasoning | 0.789 | 0.801 | 0.810 | 0.819 | |
| Common Sense | 0.716 | 0.702 | 0.725 | 0.736 | |
| Language Understanding | Reading Comprehension | 0.671 | 0.685 | 0.690 | 0.700 |
| Question Answering | 0.582 | 0.599 | 0.601 | 0.607 | |
| Text Classification | 0.803 | 0.811 | 0.820 | 0.828 | |
| Sentiment Analysis | 0.777 | 0.781 | 0.790 | 0.792 | |
| Generation Tasks | Code Generation | 0.615 | 0.631 | 0.640 | 0.650 |
| Creative Writing | 0.588 | 0.579 | 0.601 | 0.610 | |
| Dialogue Generation | 0.621 | 0.635 | 0.639 | 0.644 | |
| Summarization | 0.745 | 0.755 | 0.760 | 0.767 | |
| Specialized Capabilities | Translation | 0.782 | 0.799 | 0.801 | 0.804 |
| Knowledge Retrieval | 0.651 | 0.668 | 0.670 | 0.676 | |
| Instruction Following | 0.733 | 0.749 | 0.751 | 0.758 | |
| Safety Evaluation | 0.718 | 0.701 | 0.725 | 0.739 |
1from transformers import AutoModelForCausalLM, AutoTokenizer
2
3model = AutoModelForCausalLM.from_pretrained("mazextest2026/MyAwesomeModel-TestRepo")
4tokenizer = AutoTokenizer.from_pretrained("mazextest2026/MyAwesomeModel-TestRepo")