slimfrikha-tii
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falcon3 release
Browse files- .gitattributes +35 -0
- README.md +280 -0
- config.json +28 -0
- generation_config.json +6 -0
- model-00001-of-00002.safetensors +3 -0
- model-00002-of-00002.safetensors +3 -0
- model.safetensors.index.json +208 -0
- special_tokens_map.json +41 -0
- tokenizer.json +0 -0
- tokenizer_config.json +0 -0
.gitattributes
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README.md
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1 |
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---
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language:
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- en
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- fr
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- es
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- pt
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tags:
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- falcon3
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base_model: tiiuae/Falcon3-3B-Instruct
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license: other
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license_name: falcon-llm-license
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license_link: https://falconllm.tii.ae/falcon-terms-and-conditions.html
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---
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<div align="center">
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<img src="https://huggingface.co/datasets/tiiuae/documentation-images/resolve/main/general/falco3-logo.png" alt="drawing" width="500"/>
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</div>
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# Falcon3-3B-Instruct
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**Falcon3** family of Open Foundation Models is a set of pretrained and instruct LLMs ranging from 1B to 10B parameters.
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**Falcon3-3B-Instruct** achieves strong results on reasoning, language understanding, instruction following, code and mathematics tasks.
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Falcon3-3B-Instruct supports 4 languages (English, French, Spanish, Portuguese) and a context length of up to 32K.
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## Model Details
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- Architecture
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- Transformer-based causal decoder-only architecture
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- 22 decoder blocks
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- Grouped Query Attention (GQA) for faster inference: 12 query heads and 4 key-value heads
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- Wider head dimension: 256
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- High RoPE value to support long context understanding: 1000042
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- Uses SwiGLU and RMSNorm
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- 32K context length
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- 131K vocab size
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- Pruned and healed from Falcon3-7B-Base on only 100 Gigatokens of datasets comprising of web, code, STEM, high quality and mutlilingual data using 1024 H100 GPU chips
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- Posttrained on 1.2 million samples of STEM, conversational, code, safety and function call data
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- Supports EN, FR, ES, PT
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- Developed by [Technology Innovation Institute](https://www.tii.ae)
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- License: TII Falcon-LLM License 2.0
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- Model Release Date: December 2024
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## Getting started
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<details>
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<summary> Click to expand </summary>
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```python
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from transformers import AutoTokenizer, AutoModelForCausalLM
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model_name = "tiiuae/Falcon3-3B-Instruct"
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model = AutoModelForCausalLM.from_pretrained(
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model_name,
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torch_dtype="auto",
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device_map="auto"
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)
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tokenizer = AutoTokenizer.from_pretrained(model_name)
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prompt = "How many hours in one day?"
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messages = [
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{"role": "system", "content": "You are a helpful friendly assistant Falcon3 from TII, try to follow instructions as much as possible."},
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{"role": "user", "content": prompt}
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]
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text = tokenizer.apply_chat_template(
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messages,
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tokenize=False,
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add_generation_prompt=True
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)
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model_inputs = tokenizer([text], return_tensors="pt").to(model.device)
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generated_ids = model.generate(
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**model_inputs,
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max_new_tokens=1024
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)
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generated_ids = [
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output_ids[len(input_ids):] for input_ids, output_ids in zip(model_inputs.input_ids, generated_ids)
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]
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response = tokenizer.batch_decode(generated_ids, skip_special_tokens=True)[0]
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print(response)
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```
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</details>
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<br>
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## Benchmarks
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We report in the following table our internal pipeline benchmarks:
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<table border="1" style="width: 100%; text-align: center; border-collapse: collapse;">
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<colgroup>
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<col style="width: 10%;">
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<col style="width: 10%;">
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<col style="width: 7%;">
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<col style="width: 7%;">
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<col style="width: 7%;">
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<col style="background-color: rgba(80, 15, 213, 0.5); width: 7%;">
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</colgroup>
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<thead>
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<tr>
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<th>Category</th>
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<th>Benchmark</th>
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<th>Llama-3.2-3B-Instruct</th>
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<th>Qwen2.5-3B-Instruct</th>
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<th>Nemotron-Mini-4B-Instruct</th>
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<th>Falcon3-3B-Instruct</th>
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</tr>
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</thead>
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<tbody>
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<tr>
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<td rowspan="3">General</td>
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<td>MMLU (5-shot)</td>
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<td>29.3</td>
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<td>56.2</td>
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<td><b>56.4</b></td>
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<td>55.7</td>
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</tr>
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<tr>
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<td>MMLU-PRO (5-shot)</td>
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<td>11.9</td>
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<td>17.2</td>
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<td>23.3</td>
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<td><b>29.7</b></td>
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</tr>
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<tr>
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<td>IFEval</td>
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<td><b>73.9</b></td>
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<td>64.2</td>
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<td>66.5</td>
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<td>68.3</td>
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</tr>
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<tr>
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<td rowspan="3">Math</td>
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<td>GSM8K (5-shot)</td>
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<td>68.5</td>
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<td>58.5</td>
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<td>46.9</td>
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<td><b>71.9</b></td>
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</tr>
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<tr>
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<td>GSM8K (8-shot, COT)</td>
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<td><b>74.5</b></td>
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<td>64.0</td>
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<td>46.5</td>
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<td>71.6</td>
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</tr>
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<tr>
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<td>MATH Lvl-5 (4-shot)</td>
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<td>2.4</td>
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<td>0.0</td>
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<td>0.0</td>
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<td><b>19.9</b></td>
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</tr>
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<tr>
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<td rowspan="5">Reasoning</td>
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<td>Arc Challenge (25-shot)</td>
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<td>38.9</td>
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<td>50.0</td>
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<td>51.2</td>
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<td><b>58.5</b></td>
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</tr>
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<tr>
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<td>GPQA (0-shot)</td>
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<td>28.1</td>
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<td>29.2</td>
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<td>27.0</td>
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<td><b>29.6</b></td>
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</tr>
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<tr>
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<td>GPQA (0-shot, COT)</td>
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<td>11.3</td>
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<td>11.0</td>
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<td>12.2</td>
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<td><b>26.5</b></td>
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</tr>
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<tr>
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<td>MUSR (0-shot)</td>
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<td>34.9</td>
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<td><b>40.2</b></td>
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<td>38.9</td>
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<td>39.0</td>
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</tr>
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<tr>
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<td>BBH (3-shot)</td>
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<td>33.1</td>
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<td>44.1</td>
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<td>38.1</td>
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<td><b>45.4</b></td>
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</tr>
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<tr>
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<td rowspan="4">CommonSense Understanding</td>
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<td>PIQA (0-shot)</td>
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<td>74.6</td>
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<td>73.8</td>
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<td>74.6</td>
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<td><b>75.6</b></td>
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</tr>
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<tr>
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<td>SciQ (0-shot)</td>
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<td>77.2</td>
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<td>60.7</td>
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<td>71.0</td>
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<td><b>95.5</b></td>
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</tr>
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<tr>
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<td>Winogrande (0-shot)</td>
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<td>-</td>
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<td>-</td>
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<td>-</td>
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<td><b>65.0</b></td>
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</tr>
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<tr>
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<td>OpenbookQA (0-shot)</td>
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<td>40.8</td>
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<td>41.2</td>
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<td><b>43.2</b></td>
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<td>42.2</td>
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</tr>
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<tr>
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<td rowspan="2">Instructions following</td>
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<td>MT-Bench (avg)</td>
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<td>7.1</td>
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<td><b>8.0</b></td>
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<td>6.7</td>
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<td>7.2</td>
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</tr>
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<tr>
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<td>Alpaca (WC)</td>
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<td><b>19.4</b></td>
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<td>19.4</td>
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<td>9.6</td>
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<td>15.5</td>
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</tr>
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<tr>
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<td>Tool use</td>
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<td>BFCL AST (avg)</td>
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<td><b>85.2</b></td>
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<td>84.8</td>
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<td>59.8</td>
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<td>65.3</td>
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</tr>
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<tr>
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<td rowspan="2">Code</td>
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<td>EvalPlus (0-shot) (avg)</td>
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<td>55.2</td>
|
248 |
+
<td><b>69.4<b></td>
|
249 |
+
<td>40.0</td>
|
250 |
+
<td>52.9</td>
|
251 |
+
</tr>
|
252 |
+
<tr>
|
253 |
+
<td>Multipl-E (0-shot) (avg)</td>
|
254 |
+
<td>31.6</td>
|
255 |
+
<td>29.2</td>
|
256 |
+
<td>19.6</td>
|
257 |
+
<td><b>32.9</b></td>
|
258 |
+
</tr>
|
259 |
+
</tbody>
|
260 |
+
</table>
|
261 |
+
|
262 |
+
## Useful links
|
263 |
+
- View our [release blogpost](https://huggingface.co/blog/falcon3).
|
264 |
+
- Feel free to join [our discord server](https://discord.gg/fwXpMyGc) if you have any questions or to interact with our researchers and developers.
|
265 |
+
|
266 |
+
## Technical Report
|
267 |
+
Coming soon....
|
268 |
+
|
269 |
+
## Citation
|
270 |
+
If the Falcon3 family of models were helpful to your work, feel free to give us a cite.
|
271 |
+
|
272 |
+
```
|
273 |
+
@misc{Falcon3,
|
274 |
+
title = {The Falcon 3 Family of Open Models},
|
275 |
+
url = {https://huggingface.co/blog/falcon3},
|
276 |
+
author = {Falcon-LLM Team},
|
277 |
+
month = {December},
|
278 |
+
year = {2024}
|
279 |
+
}
|
280 |
+
```
|
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special_tokens_map.json
ADDED
@@ -0,0 +1,41 @@
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|
1 |
+
{
|
2 |
+
"additional_special_tokens": [
|
3 |
+
">>TITLE<<",
|
4 |
+
">>ABSTRACT<<",
|
5 |
+
">>INTRODUCTION<<",
|
6 |
+
">>SUMMARY<<",
|
7 |
+
">>COMMENT<<",
|
8 |
+
">>ANSWER<<",
|
9 |
+
">>QUESTION<<",
|
10 |
+
">>DOMAIN<<",
|
11 |
+
">>EMAIL_ADDRESS<<",
|
12 |
+
">>IP_ADDRESS<<",
|
13 |
+
"<|startoftext|>",
|
14 |
+
">>IP_ADDRESS_0<<",
|
15 |
+
">>IP_ADDRESS_1<<",
|
16 |
+
">>IP_ADDRESS_2<<",
|
17 |
+
">>IP_ADDRESS_3<<",
|
18 |
+
">>IP_ADDRESS_4<<",
|
19 |
+
">>IP_ADDRESS_5<<",
|
20 |
+
">>IP_ADDRESS_6<<",
|
21 |
+
">>IP_ADDRESS_7<<",
|
22 |
+
">>IP_ADDRESS_8<<",
|
23 |
+
">>IP_ADDRESS_9<<",
|
24 |
+
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|
25 |
+
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|
26 |
+
],
|
27 |
+
"eos_token": {
|
28 |
+
"content": "<|endoftext|>",
|
29 |
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"lstrip": false,
|
30 |
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"normalized": false,
|
31 |
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"rstrip": false,
|
32 |
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"single_word": false
|
33 |
+
},
|
34 |
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"pad_token": {
|
35 |
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"content": "<|pad|>",
|
36 |
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"lstrip": false,
|
37 |
+
"normalized": false,
|
38 |
+
"rstrip": false,
|
39 |
+
"single_word": false
|
40 |
+
}
|
41 |
+
}
|
tokenizer.json
ADDED
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tokenizer_config.json
ADDED
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