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tiiuae/falcon-h1-0.5b-instruct-gguf overview

TL;DR 1. Model Details 2. Training Details 3. Usage 4. Evaluation 5. Citation # TL;DR # Model Details

transformersgguffalcon-h1enarxiv:2507.22448license:otherendpoints_compatibleregion:usconversational
tiiuae/falcon-h1-0.5b-instruct-gguf visual
Downloads
720
Likes
12
Pipeline
Library
transformers
Visibility
Public
Access
Open

Repository Files & Downloads

34 files detected
Direct downloads for all repository files
FileTypeQuantizationSizeLink
Falcon-H1-0.5B-Instruct-BF16.gguf GGUF BF16 996.37 MB Download
Falcon-H1-0.5B-Instruct-F16.gguf GGUF F16 996.37 MB Download
Falcon-H1-0.5B-Instruct-F32.gguf GGUF F32 1.94 GB Download
Falcon-H1-0.5B-Instruct-IQ1_M.gguf GGUF IQ1_M 132.94 MB Download
Falcon-H1-0.5B-Instruct-IQ2_M.gguf GGUF IQ2_M 180.96 MB Download
Falcon-H1-0.5B-Instruct-IQ2_S.gguf GGUF IQ2_S 168.39 MB Download
Falcon-H1-0.5B-Instruct-IQ2_XS.gguf GGUF IQ2_XS 161.79 MB Download
Falcon-H1-0.5B-Instruct-IQ2_XXS.gguf GGUF IQ2_XXS 148.66 MB Download
Falcon-H1-0.5B-Instruct-IQ3_M.gguf GGUF IQ3_M 232.67 MB Download
Falcon-H1-0.5B-Instruct-IQ3_S.gguf GGUF IQ3_S 229.22 MB Download
Falcon-H1-0.5B-Instruct-IQ3_XS.gguf GGUF IQ3_XS 223.10 MB Download
Falcon-H1-0.5B-Instruct-IQ3_XXS.gguf GGUF IQ3_XXS 204.33 MB Download
Falcon-H1-0.5B-Instruct-IQ4_NL.gguf GGUF IQ4_NL 290.92 MB Download
Falcon-H1-0.5B-Instruct-IQ4_XS.gguf GGUF IQ4_XS 276.54 MB Download
Falcon-H1-0.5B-Instruct-Q2_K.gguf GGUF Q2_K 191.61 MB Download
Falcon-H1-0.5B-Instruct-Q2_K_S.gguf GGUF Q2_K_S 184.34 MB Download
Falcon-H1-0.5B-Instruct-Q3_K.gguf GGUF Q3_K 241.70 MB Download
Falcon-H1-0.5B-Instruct-Q3_K_L.gguf GGUF Q3_K_L 252.99 MB Download
Falcon-H1-0.5B-Instruct-Q3_K_M.gguf GGUF Q3_K_M 241.70 MB Download
Falcon-H1-0.5B-Instruct-Q3_K_S.gguf GGUF Q3_K_S 228.62 MB Download
Falcon-H1-0.5B-Instruct-Q4_0.gguf GGUF 290.36 MB Download
Falcon-H1-0.5B-Instruct-Q4_1.gguf GGUF 319.42 MB Download
Falcon-H1-0.5B-Instruct-Q4_K.gguf GGUF Q4_K 300.22 MB Download
Falcon-H1-0.5B-Instruct-Q4_K_M.gguf GGUF Q4_K_M 300.22 MB Download
Falcon-H1-0.5B-Instruct-Q4_K_S.gguf GGUF Q4_K_S 291.42 MB Download
Falcon-H1-0.5B-Instruct-Q5_0.gguf GGUF 348.47 MB Download
Falcon-H1-0.5B-Instruct-Q5_1.gguf GGUF 377.52 MB Download
Falcon-H1-0.5B-Instruct-Q5_K.gguf GGUF Q5_K 353.55 MB Download
Falcon-H1-0.5B-Instruct-Q5_K_M.gguf GGUF Q5_K_M 353.55 MB Download
Falcon-H1-0.5B-Instruct-Q5_K_S.gguf GGUF Q5_K_S 348.47 MB Download
Falcon-H1-0.5B-Instruct-Q6_K.gguf GGUF Q6_K 410.21 MB Download
Falcon-H1-0.5B-Instruct-Q8_0.gguf GGUF 530.55 MB Download
Falcon-H1-0.5B-Instruct-TQ1_0.gguf GGUF 138.19 MB Download
Falcon-H1-0.5B-Instruct-TQ2_0.gguf GGUF 158.48 MB Download

Model Details Live

Model Slug
tiiuae/falcon-h1-0.5b-instruct-gguf
Author
tiiuae
Pipeline Task
Library
transformers
Created
2025-05-13
Last Modified
2025-07-31
Gated
No
Private
No
HF SHA
9bf0c2d4391cf4850aa62bfee1d8fe71afba8be2
License
other
Language
en
Base Model
Unknown

Metadata Inspector

Normalized metadata (stored in metadata_json)
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  "metadata": {},
  "card_data": {
    "library_name": "transformers",
    "tags": [
      "falcon-h1"
    ],
    "license": "other",
    "license_name": "falcon-llm-license",
    "license_link": "https://falconllm.tii.ae/falcon-terms-and-conditions.html",
    "language": [
      "en"
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      "library_name": "transformers",
      "tags": [
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      "license": "other",
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    "hero_image_url": "https://huggingface.co/datasets/tiiuae/documentation-images/resolve/main/falcon_mamba/falcon-h1-logo.png",
    "summary": "0. TL;DR 1. Model Details 2. Training Details 3. Usage 4. Evaluation 5. Citation # TL;DR # Model Details",
    "quick_links": [],
    "benchmark_table_html": "",
    "readme_markdown": "---\nlibrary_name: transformers\ntags:\n- falcon-h1\nlicense: other\nlicense_name: falcon-llm-license\nlicense_link: https://falconllm.tii.ae/falcon-terms-and-conditions.html\nlanguage:\n- en\n---\n\n<img src=\"https://huggingface.co/datasets/tiiuae/documentation-images/resolve/main/falcon_mamba/falcon-h1-logo.png\" alt=\"drawing\" width=\"800\"/>\n\n#  Table of Contents\n\n0. [TL;DR](#TL;DR)\n1. [Model Details](#model-details)\n2. [Training Details](#training-details)\n3. [Usage](#usage)\n4. [Evaluation](#evaluation)\n5. [Citation](#citation)\n\n# TL;DR\n\n# Model Details\n\n## Model Description\n\n- **Developed by:** [https://www.tii.ae](https://www.tii.ae)\n- **Model type:** Causal decoder-only\n- **Architecture:** Hybrid Transformers + Mamba architecture\n- **Language(s) (NLP):** English, Multilingual\n- **License:** Falcon-LLM License\n\n# Training details\n\nFor more details about the training protocol of this model, please refer to the [Falcon-H1 technical blogpost](https://falcon-lm.github.io/blog/falcon-h1/) and [Technical Report](https://arxiv.org/abs/2507.22448).\n\n# Usage\n\nCurrently to use this model you can either rely on Hugging Face `transformers`, `vLLM` or our custom fork of `llama.cpp` library.\n\n## Inference\n\nMake sure to install the latest version of `transformers` or `vllm`, eventually install these packages from source:\n\n```bash\npip install git+https://github.com/huggingface/transformers.git\n```\n\nRefer to [the official vLLM documentation for more details on building vLLM from source](https://docs.vllm.ai/en/latest/getting_started/installation/gpu.html#build-wheel-from-source).\n\n### 🤗 transformers\n\nRefer to the snippet below to run H1 models using 🤗 transformers:\n\n```python\nimport torch\nfrom transformers import AutoModelForCausalLM, AutoTokenizer\n\nmodel_id = \"tiiuae/Falcon-H1-1B-Base\"\n\nmodel = AutoModelForCausalLM.from_pretrained(\n  model_id,\n  torch_dtype=torch.bfloat16,\n  device_map=\"auto\"\n)\n\n# Perform text generation\n```\n\n### vLLM\n\nFor vLLM, simply start a server by executing the command below:\n\n```\n# pip install vllm\nvllm serve tiiuae/Falcon-H1-1B-Instruct --tensor-parallel-size 2 --data-parallel-size 1\n```\n\n### 🦙 llama.cpp\n\nOur architecture is integrated into the latest versions of `llama.cpp`: https://github.com/ggml-org/llama.cpp - you can use the our official GGUF files directly with llama.cpp\n\n# Evaluation\n\nFalcon-H1 series perform very well on a variety of tasks, including reasoning tasks. \n\n| Tasks | Falcon-H1-0.5B | Qwen3-0.6B | Qwen2.5-0.5B | Gemma3-1B | Llama3.2-1B | Falcon3-1B |\n| --- | --- | --- | --- | --- | --- | --- |\n| **General**  | | | | | |\n| BBH | **42.91** | 32.95 | 33.26 | 35.86 | 33.21 | 34.47 |\n| ARC-C | 37.8 | 31.06 | 33.28 | 34.13 | 34.64 | **43.09** |\n| TruthfulQA | 44.12 | **51.65** | 46.19 | 42.17 | 42.08 | 42.31 |\n| HellaSwag | 51.93 | 42.17 | 52.38 | 42.24 | 55.3 | **58.53** |\n| MMLU | **53.4** | 42.98 | 46.07 | 40.87 | 45.93 | 46.1 |\n| **Math**  | | | | | |\n| GSM8k | **68.39** | 42.61 | 38.51 | 42.38 | 44.28 | 44.05 |\n| MATH-500 | **58.4** | 46.0 | 27.8 | 45.4 | 13.2 | 19.8 |\n| AMC-23 | **33.13** | 27.97 | 12.5 | 19.22 | 7.19 | 6.87 |\n| AIME-24 | **3.75** | 2.71 | 0.62 | 0.42 | 1.46 | 0.41 |\n| AIME-25 | **4.38** | 1.67 | 0.21 | 1.25 | 0.0 | 0.21 |\n| **Science**  | | | | | |\n| GPQA | **29.95** | 26.09 | 26.85 | 28.19 | 26.59 | 26.76 |\n| GPQA_Diamond | 27.95 | 25.08 | 24.24 | 21.55 | 25.08 | **31.31** |\n| MMLU-Pro | **31.03** | 16.95 | 18.73 | 14.46 | 16.2 | 18.49 |\n| MMLU-stem | **54.55** | 39.3 | 39.83 | 35.39 | 39.16 | 39.64 |\n| **Code**  | | | | | |\n| HumanEval | **51.83** | 41.46 | 36.59 | 40.85 | 34.15 | 22.56 |\n| HumanEval+ | **45.12** | 37.19 | 32.32 | 37.2 | 29.88 | 20.73 |\n| MBPP | 42.59 | 56.08 | 46.83 | **57.67** | 33.6 | 20.63 |\n| MBPP+ | 33.07 | 47.08 | 39.68 | **50.0** | 29.37 | 17.2 |\n| LiveCodeBench | 7.05 | **9.78** | 2.94 | 5.09 | 2.35 | 0.78 |\n| CRUXEval | **25.75** | 23.63 | 14.88 | 12.7 | 0.06 | 15.58 |\n| **Instruction Following**  | | | | | |\n| IFEval | **72.07** | 62.16 | 32.11 | 61.48 | 55.34 | 54.26 |\n| Alpaca-Eval | 10.79 | 9.59 | 3.26 | **17.87** | 9.38 | 6.98 |\n| MTBench | **7.06** | 5.75 | 4.71 | 7.03 | 6.37 | 6.03 |\n| LiveBench | 20.8 | **27.78** | 14.27 | 18.79 | 14.97 | 14.1 |\n\nYou can check more in detail on our [our release blogpost](https://falcon-lm.github.io/blog/falcon-h1/), detailed benchmarks.\n\n# Useful links\n\n- View [our release blogpost](https://falcon-lm.github.io/blog/falcon-h1/).\n- View [our technical report](https://arxiv.org/abs/2507.22448).\n- Feel free to join [our discord server](https://discord.gg/trwMYP9PYm) if you have any questions or to interact with our researchers and developers.\n\n# Citation\n\nIf the Falcon-H1 family of models were helpful to your work, feel free to give us a cite.\n\n```\n@article{falconh1,\n    title={Falcon-H1: A Family of Hybrid-Head Language Models Redefining Efficiency and Performance},\n    author={Jingwei Zuo and Maksim Velikanov and Ilyas Chahed and Younes Belkada and Dhia Eddine Rhayem and Guillaume Kunsch and Hakim Hacid and Hamza Yous and Brahim Farhat and Ibrahim Khadraoui and Mugariya Farooq and Giulia Campesan and Ruxandra Cojocaru and Yasser Djilali and Shi Hu and Iheb Chaabane and Puneesh Khanna and Mohamed El Amine Seddik and Ngoc Dung Huynh and Phuc Le Khac and Leen AlQadi and Billel Mokeddem and Mohamed Chami and Abdalgader Abubaker and Mikhail Lubinets and Kacper Piskorski and Slim Frikha},\n    journal = {arXiv preprint arXiv:2507.22448},\n    year={2025}\n}\n```",
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Source payload excerpt (from Hugging Face API)
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