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hotdogs/Agents-A1-4B-kimi-Preview-GGUF overview

<h1 align="center" 🤖 Agents A1 4B kimi Preview GGUF</h1 <p align="center" <b GGUF Quantized — 4B Coding Agent Model · Kimi K3 Traces · Tool Calling · Vision</…

ggufagentsagents-a1kimicodingvisionimage-text-to-textvlmsftreasoningtool-calltool-usefunction-callingchatmlqwenpreviewenthdataset:greghavens/kimi-k3-coding-and-debugging-tracesbase_model:hotdogs/Agents-A1-4B-kimi-Previewbase_model:quantized:hotdogs/Agents-A1-4B-kimi-Previewlicense:agpl-3.0endpoints_compatibleregion:us

Runs locally from ~641.3 MB disk (4 GB VRAM class GPUs with llama.cpp / guIDE).

Downloads
381
Likes
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Pipeline
image-text-to-text
Author

Repository Files & Downloads

4 GGUF files detected
Direct downloads for local inference
FileTypeQuantizationSizeLink
Agents-A1-4B-kimi-Preview-IQ4_NL.ggufGGUFIQ4_NL2.43 GBDownload
Agents-A1-4B-kimi-Preview-Q8_0_imatrix.ggufGGUFQ8_0_IMATRIX4.17 GBDownload
Agents-A1-4B-kimi-Preview.ggufGGUFGGUF7.85 GBDownload
Agents-A1-4B-mmproj.ggufGGUFGGUF641.3 MBDownload

Model Details

Model IDhotdogs/Agents-A1-4B-kimi-Preview-GGUF
Authorhotdogs
Pipelineimage-text-to-text
Licenseagpl-3.0
Base modelhotdogs/Agents-A1-4B-kimi-Preview
Last modified2026-07-30T09:18:24.000Z

Model README

---

license: agpl-3.0

language:

- en

- th

tags:

- agents

- agents-a1

- kimi

- coding

- gguf

- vision

- image-text-to-text

- vlm

- sft

- reasoning

- tool-call

- tool-use

- function-calling

- chatml

- qwen

- preview

base_model:

- hotdogs/Agents-A1-4B-kimi-Preview

datasets:

- greghavens/kimi-k3-coding-and-debugging-traces

library_name: gguf

pipeline_tag: image-text-to-text

---

<h1 align="center">🤖 Agents-A1-4B-kimi-Preview-GGUF</h1>

<p align="center">

<b>GGUF Quantized — 4B Coding Agent Model · Kimi K3 Traces · Tool-Calling · Vision</b>

</p>

<p align="center">

<img src="https://img.shields.io/badge/license-AGPL--3.0-red">

<img src="https://img.shields.io/badge/Base-hotdogs/Agents--A1--kimi--Preview-blue">

<img src="https://img.shields.io/badge/GGUF-Q4_K_M-brightgreen">

<img src="https://img.shields.io/badge/Vision-✅-brightgreen">

<img src="https://img.shields.io/badge/Coding-Agent-orange">

</p>

<br>

> GGUF quantized version of hotdogs/Agents-A1-4B-kimi-Preview — fine-tuned on Kimi K3 coding and debugging traces. Optimized for llama.cpp inference with coding agent capabilities and vision support via mmproj.

---

✨ Key Features

| Capability | Description |

|------------|-------------|

| 💻 Coding Agent | Trained on real Kimi K3 coding traces — planning, debugging, building |

| 🖼️ Vision Understanding | Image-text-to-text with mmproj |

| 🧠 Step-by-step Reasoning | Autonomous agent-style reasoning |

| 🔧 Tool Calling | llama.cpp --tools all support |

| 💬 Multi-turn | 61% multi-turn conversations |

| 🌏 Thai + English | Native bilingual support |

| 🐍 Multi-language | Python, C, C++, Go, Java, Rust, Bash, and more |

| ⚡ Fast Inference | IQ4_NL fits in ~3 GB VRAM |

---

📦 Downloads

| File | Size | Description |

|------|:----:|-------------|

| Agents-A1-4B-kimi-Preview-IQ4_NL.gguf | 2.61 GB | Recommended — best quality/speed balance for 8GB VRAM |

| Agents-A1-4B-kimi-Preview-Q8_0_imatrix.gguf | 4.48 GB | Q8_0 + imatrix — almost lossless |

| Agents-A1-4B-kimi-Preview.gguf | 8.42 GB | Full BF16 precision |

| Agents-A1-4B-mmproj.gguf | 672 MB | Vision projector for image understanding |

> 🎯 IQ4_NL is recommended for 8GB VRAM users — fits comfortably even at 128K context with flash-attention.

---

🚀 Usage

Docker (Recommended)

sudo docker run --rm -p 8080:8080 \
  -v /root/models/:/models \
  --gpus all \
  --ulimit memlock=-1:-1 \
  --env CUDA_VISIBLE_DEVICES=0 \
  ghcr.io/ggml-org/llama.cpp:full-cuda --server \
  -m /models/Agents-A1-4B-kimi-Preview-IQ4_NL.gguf \
  --mmproj /models/Agents-A1-4B-mmproj.gguf \
  --host 0.0.0.0 --port 8080 \
  --n-gpu-layers 999 \
  --ctx-size 131072 \
  --batch-size 4096 \
  --ubatch-size 256 \
  --cache-type-k f16 \
  --cache-type-v f16 \
  --flash-attn on \
  --cont-batching \
  --mlock \
  --temp 0.95 \
  --top-k 40 \
  --top-p 0.9 \
  --min-p 0.0 \
  -n -1 \
  --no-mmap \
  --parallel 1 --tools all \
  --dry-multiplier 0.05 \
  --jinja --dry-sequence-breaker none \
  --repeat-penalty 1.1

Parameter Explanation

| Parameter | Purpose |

|-----------|---------|

| --mmproj | Vision projector for image understanding |

| --ctx-size 131072 | 128K context window |

| --flash-attn on | Flash attention for speed |

| --cache-type-k/v f16 | BF16 KV cache for quality |

| --cont-batching | Continuous batching for multi-turn |

| --tools all | Enable tool/function calling |

| --jinja | Use Jinja2 chat template |

| --mlock | Lock memory for performance |

llama.cpp (Direct)

# Quick text-only test
./llama-cli -m Agents-A1-4B-kimi-Preview-IQ4_NL.gguf \
  -p "Write a Python function to sort a list" -n 256 --temp 0.6 -ngl 999

# Vision inference
./llama-cli -m Agents-A1-4B-kimi-Preview-IQ4_NL.gguf \
  --mmproj Agents-A1-4B-mmproj.gguf \
  --image photo.jpg \
  -p "What is in this image?" -n 256 --temp 0.6 -ngl 999

---

🧬 Model Information

This is a GGUF quantized version of hotdogs/Agents-A1-4B-kimi-Preview, which is a fine-tune of InternScience/Agents-A1-4B on coding agent traces.

| Parameter | Value |

|-----------|:-----:|

| Base Model | hotdogs/Agents-A1-4B-kimi-Preview |

| Parameters | ~4.29B |

| Architecture | Qwen3.5 hybrid (Linear + Full attention) |

| Vision | ✅ Via mmproj |

| Context | Up to 128K tokens |

| Format | ChatML (Jinja2 template) |

| Fine-tuning | Kimi K3 coding traces (3,389 samples, 3 epochs, scale=0.4) |

---

🙏 Acknowledgements / ขอบคุณ

---

💖 Support / โปรดสนับสนุน

If you find this model useful, please consider supporting my work!

หากคุณคิดว่าโมเดลนี้มีประโยชน์ กรุณาสนับสนุนผลงานของฉันด้วยนะคะ! 🙏

<p align="center">

<img src="https://huggingface.co/hotdogs/Qwen35B-Agent-R2/raw/main/donate.webp" alt="Bitcoin QR — Donate" width="256">

</p>

₿ Bitcoin — BTC:

bc1qf27cyk3vmugcdyv9xdtuv5jwz37863crpj5c9v

Thank you for your support! 🙏✨

ขอบคุณมากๆ สำหรับการสนับสนุนค่า! 💖🤗

---

Built with ❤️ by UKA — 18-year-old coder & cybersecurity expert

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