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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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--- |
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# Falcon3-7B-Base |
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**Falcon3** family of Open Foundation Models is a set of pretrained and instruct LLMs ranging from 1B to 10B. |
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This repository contains the **Falcon3-3B-Base**. It achieves strong results on reasoning, language understanding, instruction following, code and mathematics tasks. |
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Falcon3-3B-Base supports 4 languages (english, french, spanish, portuguese) and a context length up to 8K. |
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Falcon3-3B-Base pruned (depth + width) from Falcon3-7B-Base, was effeciently trained on only 100 GT using a knowledge distillation objective. |
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⚠️ **This is a raw, pretrained model, which should be further finetuned for most usecases.** |
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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 KV 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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- 8k 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 2048 H100 GPU chips |
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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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import torch |
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from transformers import pipeline |
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pipe = pipeline( |
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"text-generation", |
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model="tiiuae/Falcon3-3B-Base", |
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torch_dtype=torch.bfloat16, |
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device_map="auto" |
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) |
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response = pipe("Question: How many hours in one day? Answer: ") |
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print(response[0]['generated_text']) |
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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>Llama3.2-3B</th> |
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<th>Qwen2.5-3B</th> |
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<th>Minitron-4B</th> |
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<th>Falcon3-3B-Base</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>56.1</td> |
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<td>65.6</td> |
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<td>58.6</td> |
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<td>55.5</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>24.9</td> |
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<td>31.99</td> |
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<td>26.21</td> |
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<td>28.77</td> |
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</tr> |
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<tr> |
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<td>IFEval</td> |
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<td>12.83</td> |
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<td>27</td> |
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<td>22.81</td> |
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<td>27.67</td> |
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</tr> |
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<tr> |
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<td rowspan="2">Math</td> |
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<td>GSM8K (5-shot)</td> |
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<td>26.68</td> |
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<td>68.99</td> |
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<td>25.7</td> |
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<td>63.91</td> |
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</tr> |
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<tr> |
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<td>MATH(4-shot)</td> |
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<td>1.39</td> |
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<td>8.43</td> |
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<td>1.73</td> |
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<td>9.38</td> |
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</tr> |
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<tr> |
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<td rowspan="4">Reasoning</td> |
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<td>Arc Challenge (25-shot)</td> |
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<td>50.76</td> |
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<td>55.54</td> |
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<td>50.34</td> |
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<td>54.86</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>27.49</td> |
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<td>27.53</td> |
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<td>38.6</td> |
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<td>31.15</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>35.24</td> |
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<td>43.03</td> |
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<td>42.13</td> |
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<td>37.5</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>38.59</td> |
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<td>46.12</td> |
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<td>40.85</td> |
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<td>44.23</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>77.42</td> |
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<td>78.89</td> |
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<td>78.29</td> |
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<td>75.62</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>92.7</td> |
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<td>95.6</td> |
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<td>96.1</td> |
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<td>93.1</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>69.69</td> |
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<td>68.82</td> |
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<td>68.35</td> |
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<td>64.64</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>43.2</td> |
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<td>42.2</td> |
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<td>43</td> |
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<td>39.4</td> |
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</tr> |
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</tbody> |
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</table> |
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# Citation |
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If Falcon3 family were helpful to your work, feel free to give us a cite. |
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``` |
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@misc{Falcon3, |
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title = {The Falcon 3 family of Open Models}, |
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author = {TII Team}, |
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month = {December}, |
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year = {2024} |
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} |
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``` |