Instructions to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with libraries, inference providers, notebooks, and local apps. Follow these links to get started.
- Libraries
- llama-cpp-python
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with llama-cpp-python:
# !pip install llama-cpp-python from llama_cpp import Llama llm = Llama.from_pretrained( repo_id="Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT", filename="mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00001-of-00024.gguf", )
llm.create_chat_completion( messages = "No input example has been defined for this model task." )
- Notebooks
- Google Colab
- Kaggle
- Local Apps Settings
- llama.cpp
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with llama.cpp:
Install from brew
brew install llama.cpp # Start a local OpenAI-compatible server with a web UI: llama-server -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K # Run inference directly in the terminal: llama-cli -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Install from WinGet (Windows)
winget install llama.cpp # Start a local OpenAI-compatible server with a web UI: llama-server -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K # Run inference directly in the terminal: llama-cli -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Use pre-built binary
# Download pre-built binary from: # https://github.com/ggerganov/llama.cpp/releases # Start a local OpenAI-compatible server with a web UI: ./llama-server -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K # Run inference directly in the terminal: ./llama-cli -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Build from source code
git clone https://github.com/ggerganov/llama.cpp.git cd llama.cpp cmake -B build cmake --build build -j --target llama-server llama-cli # Start a local OpenAI-compatible server with a web UI: ./build/bin/llama-server -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K # Run inference directly in the terminal: ./build/bin/llama-cli -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Use Docker
docker model run hf.co/Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
- LM Studio
- Jan
- Ollama
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with Ollama:
ollama run hf.co/Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
- Unsloth Studio
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with Unsloth Studio:
Install Unsloth Studio (macOS, Linux, WSL)
curl -fsSL https://unsloth.ai/install.sh | sh # Run unsloth studio unsloth studio -H 0.0.0.0 -p 8888 # Then open http://localhost:8888 in your browser # Search for Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT to start chatting
Install Unsloth Studio (Windows)
irm https://unsloth.ai/install.ps1 | iex # Run unsloth studio unsloth studio -H 0.0.0.0 -p 8888 # Then open http://localhost:8888 in your browser # Search for Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT to start chatting
Using HuggingFace Spaces for Unsloth
# No setup required # Open https://huggingface.co/spaces/unsloth/studio in your browser # Search for Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT to start chatting
- Pi
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with Pi:
Start the llama.cpp server
# Install llama.cpp: brew install llama.cpp # Start a local OpenAI-compatible server: llama-server -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Configure the model in Pi
# Install Pi: npm install -g @mariozechner/pi-coding-agent # Add to ~/.pi/agent/models.json: { "providers": { "llama-cpp": { "baseUrl": "http://localhost:8080/v1", "api": "openai-completions", "apiKey": "none", "models": [ { "id": "Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K" } ] } } }Run Pi
# Start Pi in your project directory: pi
- Hermes Agent new
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with Hermes Agent:
Start the llama.cpp server
# Install llama.cpp: brew install llama.cpp # Start a local OpenAI-compatible server: llama-server -hf Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Configure Hermes
# Install Hermes: curl -fsSL https://hermes-agent.nousresearch.com/install.sh | bash hermes setup # Point Hermes at the local server: hermes config set model.provider custom hermes config set model.base_url http://127.0.0.1:8080/v1 hermes config set model.default Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Run Hermes
hermes
- Atomic Chat new
- Docker Model Runner
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with Docker Model Runner:
docker model run hf.co/Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
- Lemonade
How to use Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT with Lemonade:
Pull the model
# Download Lemonade from https://lemonade-server.ai/ lemonade pull Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT:Q2_K
Run and chat with the model
lemonade run user.mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT-Q2_K
List all available models
lemonade list
Thireus commited on
Commit ·
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1
Parent(s): abc646c
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_SPLIT
Browse files- .gitattributes +2 -0
- README.md +155 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00001-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00001-of-00024.gguf.sig +0 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00002-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00003-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00004-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00005-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00006-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00007-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00008-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00009-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00010-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00011-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00012-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00013-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00014-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00015-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00016-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00017-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00018-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00019-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00020-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00021-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00022-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00023-of-00024.gguf +3 -0
- mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00024-of-00024.gguf +3 -0
- tensors.map +23 -0
- tensors.map.sig +0 -0
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---
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license: mit
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---
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---
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license: mit
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---
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# mtp-Qwen3.5-397B-A17B
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## 🤔 What is this [HuggingFace repository](https://huggingface.co/Thireus/mtp-Qwen3.5-397B-A17B-THIREUS-BF16-SPECIAL_SPLIT/) about?
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This repository provides **GGUF-quantized tensors** for the [mtp](https://github.com/ggml-org/llama.cpp/blob/master/docs/speculative.md) layer(s) of the Qwen3.5-397B-A17B model (official repo: https://huggingface.co/Qwen/Qwen3.5-397B-A17B). These GGUF shards are designed to be used with **Thireus’ GGUF Tool Suite** (https://github.com/Thireus/GGUF-Tool-Suite), a collection of tools that automatically finds the perplexity-optimal mix of quantizations for any given a model size target. With this GGUF Tool Suite, you can produce your own Dynamic 3.0 Quants recipes and achieve optimum accuracy & SOTA quantization performance. Give it a try here: https://gguf.thireus.com/quant_assign.html
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- 📖 Documentation: https://github.com/Thireus/GGUF-Tool-Suite/tree/main/docs
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- 🔍 Example of GGUF recipes: https://github.com/Thireus/GGUF-Tool-Suite/tree/main/recipe_examples
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- 🍳 Cook your own recipe files: https://gguf.thireus.com/quant_assign.html
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- ☁️ Download GGUF models from recipe files: https://gguf.thireus.com/quant_downloader.html
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- 📂 Browse available models: https://huggingface.co/Thireus/collections and https://gguf.thireus.com
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*tl;dr: Expand the details section below*
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<details>
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```
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cd ~
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# Make sure to install all ik_llama.cpp compilation dependencies...
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apt install python3-dev python3-pip python3-venv python3-wheel python3-setuptools git acl netcat-openbsd cmake # pipx
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# Obtain ik_llama's Thireus version - Windows/macOS/Linux builds available at https://github.com/Thireus/ik_llama.cpp/releases
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git clone https://github.com/Thireus/ik_llama.cpp
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cd ik_llama.cpp
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git pull
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# Build ik_llama.cpp
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cmake -B build -DGGML_AVX=ON -DGGML_AVX2=ON -DLLAMA_CURL=OFF -DGGML_MAX_CONTEXTS=2048
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cmake --build build --config Release -j16
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cd ..
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# Obtain Thireus' GGUF-Tool-Suite
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GIT_LFS_SKIP_SMUDGE=1 git clone https://github.com/Thireus/GGUF-Tool-Suite
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# Download model quant mix from recipe file - you can also try the web version: https://gguf.thireus.com/quant_downloader.html
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cd GGUF-Tool-Suite
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rm -f download.conf # Make sure to copy the relevant download.conf for the model before running quant_assign.py
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cp -f models/Qwen3.5-397B-A17B/download.conf . # Use the download.conf of the chosen model
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mkdir -p kitchen && cd kitchen
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# Obtain a recipe example for the chosen model from ../recipe_examples/
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../quant_downloader.sh ../recipe_examples/ik_llama.cpp_recipes/Qwen3.5-397B-A17B.ROOT-3.5993bpw-11.3565ppl.1GB-GGUF_0GB-GPU_0GB-CPU.9888e4b_831ff04.recipe
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# Other recipe examples can be found at https://github.com/Thireus/GGUF-Tool-Suite/tree/main/recipe_examples
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# Launch ik_llama's llama-cli:
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ulimit -n 9999 # Lifts "too many open files" limitation on Linux
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~/ik_llama.cpp/build/bin/llama-server \
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-m Qwen3.5-397B-A17B-THIREUS-BF16-SPECIAL_TENSOR-00001-of-*.gguf \
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-md mtp-Qwen3.5-397B-A17B-THIREUS-BF16-SPECIAL_TENSOR-00001-of-*.gguf --spec-type draft-mtp \
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-fa auto -amb 1024 -ctk q8_0 -c 32768 -ngl 99 \
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-b 4096 -ub 4096 --warmup-batch --no-mmap --threads 1 \
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--main-gpu 0
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```
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</details>
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---
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## ❓ Why does this Tool Suite exist?
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1. **Compatibility & Speed** – [unsloth](https://huggingface.co/unsloth)’s dynamic quants may not always work optimally with `ik_llama.cpp`.
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2. **Custom Rig Fit** – No off-the-shelf GGUF model perfectly matched my VRAM/RAM setup, so I built a way to tailor models and leverage extra VRAM/RAM to reduce perplexity.
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3. **Automated PPL-Optimal Quantization** – To my knowledge, there was no open source flexible, automated method to minimize perplexity for any bits-per-weight (bpw) target—so I created one with excellent results!
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---
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## 📊 How does it compare to other GGUFs?
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Here’s how Qwen3.5-397B-A17B quantized with **Thireus’ GGUF Tool Suite** stacks up against other quantizers (lower perplexity = better at equal or lower bpw):
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> _Note: The `recipe_examples` files illustrate good recipes. The Tool Suite computes the optimal ppl/bpw curve for you — just specify your target RAM, VRAM, and quant types, and `quant_assign.py` finds the best mix._
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More perplexity/bpw graphs for other supported models: https://github.com/Thireus/GGUF-Tool-Suite/tree/main/ppl_graphs
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*Qwen3.5 Thireus' PPL benchmarks are computed with the parameters `-ctk f16 -c 512 -b 512 -ub 512`. Changing any of these parameters will alter the PPL. In particular, reducing `-b 512 -ub 512` increases the PPL, while increasing them decreases the PPL.*
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---
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## 🚀 How do I get started?
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Check out the [GGUF Tool Suite README](https://github.com/Thireus/GGUF-Tool-Suite) — focus on these sections:
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1. ⚠️ **Requirements** – Which `ik_llama.cpp` (or `llama.cpp`) version to use and how to compile.
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- Windows binaries (no patching needed) at: https://github.com/Thireus/ik_llama.cpp/releases
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2. 📥 **Download Model Shards** – Use `quant_downloader.sh` or [quant_downloader.html](https://gguf.thireus.com/quant_downloader.html) to fetch GGUF shards from any recipe.
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| 90 |
+
- Recipe examples: https://github.com/Thireus/GGUF-Tool-Suite/tree/main/recipe_examples
|
| 91 |
+
3. 🧠 **Run a Downloaded Model** – Sample usage with `llama-cli`.
|
| 92 |
+
4. 🛠️ **Generate a Custom Recipe** – Produce recipes tailored to your VRAM/RAM target usage for optimum perplexity.
|
| 93 |
+
|
| 94 |
+
---
|
| 95 |
+
|
| 96 |
+
## ✅ Supported Models
|
| 97 |
+
|
| 98 |
+
Supported models are listed under `models/` in the [Tool Suite Github repo](https://github.com/Thireus/GGUF-Tool-Suite/tree/main/models). Presence of `ppl_results.csv` indicates official support and compatibility with `quant_assign.py`.
|
| 99 |
+
|
| 100 |
+
---
|
| 101 |
+
|
| 102 |
+
## 🤷♂️ Will I release baked dynamic quant GGUFs?
|
| 103 |
+
|
| 104 |
+
No, because I believe in **tailored quantization** for each user’s hardware. If you prefer ready-made shards, you are welcome to merge them via `llama-gguf-split --merge`, or request someone to publish them, or rely on generic GGUF dynamic quants such as [unsloth](https://huggingface.co/unsloth)'s.
|
| 105 |
+
|
| 106 |
+
Instead, I prefer to share examples of recipes so users can see exactly how they were produced (command included inside these recipe files) and tweak them for their own rigs. The `quant_downloader.sh` script or [quant_downloader.html](https://gguf.thireus.com/quant_downloader.html) (web port of this script) handles automatic fetching and verification of each shard. Note that recipes provided by [Ubergarm](https://huggingface.co/ubergarm) on his model cards are also compatible with `quant_downloader.sh` and [quant_downloader.html](https://gguf.thireus.com/quant_downloader.html), providing a "SPECIAL_SPLIT" version of these models exists (see https://gguf.thireus.com/).
|
| 107 |
+
|
| 108 |
+
Users who don’t trust the GGUF shards on HuggingFace can also quantize their own by passing recipe lines to `llama-quantize --custom-q` ([see example](https://github.com/Thireus/GGUF-Tool-Suite/blob/main/models/DeepSeek-R1-0528/DeepSeek-R1-0528-THIREUS-ANY-SPECIAL.sh#L482-L486)). Run `llama-quantize --help` to list compatible quants for `quant_assign.py`. This approach is especially useful if you prefer `llama.cpp` over `ik_llama.cpp`.
|
| 109 |
+
|
| 110 |
+
---
|
| 111 |
+
|
| 112 |
+
## 📦 What’s in this repository?
|
| 113 |
+
|
| 114 |
+
- **00001 GGUF header shard** – Contains metadata (tokens, chat template, tensor count, etc.). This metadata can be explored directly from the HuggingFace web interface after clicking on that shard.
|
| 115 |
+
- **Tensor shards** – Each shard holds one tensor; see `tensors.map` for names, quant types, sizes, SHA-256 hash, shard IDs, etc.
|
| 116 |
+
- **GPG-signed files** – `tensors.map` and header shard are signed with the key in [trusted-keys.asc](https://github.com/Thireus/GGUF-Tool-Suite/blob/main/trusted-keys.asc) for tamper detection.
|
| 117 |
+
- **Security note** – Some papers about various ways to attack GGUFs and LLMs are available online, such as https://arxiv.org/abs/2505.23786, and there are also more classic security exploits like CVE-2024-23496 and CVE-2024-25664 through CVE-2024-25668. Only use GGUFs from reputable, trusted authors—or alternatively self-quantize—to avoid potential exploits.
|
| 118 |
+
|
| 119 |
+
---
|
| 120 |
+
|
| 121 |
+
## 💡 Pro Tips
|
| 122 |
+
|
| 123 |
+
You can easily download the BF16 model version to quantize your own shards:
|
| 124 |
+
|
| 125 |
+
```
|
| 126 |
+
mkdir kitchen
|
| 127 |
+
echo '.*=bf16' > kitchen/bf16.recipe
|
| 128 |
+
cd kitchen
|
| 129 |
+
../quant_downloader.sh bf16.recipe --qtype BF16
|
| 130 |
+
```
|
| 131 |
+
|
| 132 |
+
You can also quantize individual BF16 tensors without the need to download every BF16 .gguf shard:
|
| 133 |
+
|
| 134 |
+
BF16 model shards can also be individually quantized using a special version of ik_llama.cpp's `llama-quantize` utility which comes with the `--individual-tensors` option.
|
| 135 |
+
|
| 136 |
+
- Source code: https://github.com/Thireus/ik_llama.cpp/tree/th/quantize_individual_tensors
|
| 137 |
+
- Builds (macOS, Windows and Linux): https://github.com/Thireus/ik_llama.cpp/releases/tag/th-quantize_individual_tensors-b4210-7a44805
|
| 138 |
+
|
| 139 |
+
Usage example:
|
| 140 |
+
```
|
| 141 |
+
./llama-quantize --keep-split --imatrix imatrix_ubergarm.dat --individual-tensors 2,3,1094 Kimi-K2-Thinking-THIREUS-BF16-SPECIAL_TENSOR-00001-of-01097.gguf my_new_shards.gguf iq3_s 12
|
| 142 |
+
```
|
| 143 |
+
|
| 144 |
+
For more information about how to use it: https://github.com/Thireus/GGUF-Tool-Suite/issues/45
|
| 145 |
+
|
| 146 |
+
You can produce your own quantized shards from Thireus' special BF16 model using `quantize_model.sh` found on https://github.com/Thireus/GGUF-Tool-Suite, for example:
|
| 147 |
+
|
| 148 |
+
```
|
| 149 |
+
./quantize_model.sh --model "Qwen3.5-122B-A10B" --qtype iq2_xxs
|
| 150 |
+
```
|
| 151 |
+
|
| 152 |
+
You can disable reasoning (thinking) when using jinja templates for supported models:
|
| 153 |
+
|
| 154 |
+
```
|
| 155 |
+
llama-server ... --jinja --chat-template-kwargs '{"enable_thinking": false}'
|
| 156 |
+
```
|
| 157 |
+
|
| 158 |
+
Enjoy optimized quantization! 🎉
|
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tensors.map
ADDED
|
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|
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|
|
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| 7 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00008-of-00024.gguf:1a383841b9c1a14f4526917d4ed05710344fc5583e4c826e0ad427618293c9eb:blk.60.attn_norm.weight:shape=(4096,):dtype=f32:elements=4096:bytes=16384
|
| 8 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00009-of-00024.gguf:3ef6041a64bebeb84f632c7e38b6e1890f77613dbd4ec92966e6621068fd725a:blk.60.ffn_down_exps.weight:shape=(1024, 4096, 512):dtype=iq2_kt:elements=2147483648:bytes=578813952
|
| 9 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00010-of-00024.gguf:d33d4468e6aec50eeb0af99762a3733b614500300b9b486daba97824931408d8:blk.60.ffn_gate_exps.weight:shape=(4096, 1024, 512):dtype=iq2_kt:elements=2147483648:bytes=572522496
|
| 10 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00011-of-00024.gguf:0e246a7d01c74060a8c4bcec0e2312eb3d15936d3182fd00383a8c0ca1d571f1:blk.60.ffn_up_exps.weight:shape=(4096, 1024, 512):dtype=iq2_kt:elements=2147483648:bytes=572522496
|
| 11 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00012-of-00024.gguf:5700fd87103c9525804cdcc87f8d25f5c2153bf1ec5db300de3abe011afc4a37:blk.60.ffn_gate_inp.weight:shape=(4096, 512):dtype=bf16:elements=2097152:bytes=4194304
|
| 12 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00013-of-00024.gguf:9107343270079620daa54d00f41607638f885acefdcf7c92865799ddb45a4de0:blk.60.ffn_down_shexp.weight:shape=(1024, 4096):dtype=iq2_kt:elements=4194304:bytes=1130496
|
| 13 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00014-of-00024.gguf:27fd94288aeb1c02e25dcaabe2ef3ebd0746756f17637a95ba7feb29656e3c16:blk.60.ffn_gate_shexp.weight:shape=(4096, 1024):dtype=iq2_kt:elements=4194304:bytes=1118208
|
| 14 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00015-of-00024.gguf:0a85a9a58663c0aeadc758232133e3a3626df07101c98a4df0208a31a25f5ebe:blk.60.ffn_up_shexp.weight:shape=(4096, 1024):dtype=iq2_kt:elements=4194304:bytes=1118208
|
| 15 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00016-of-00024.gguf:da01c2854a2b2689da9016560432916f40907d53b4383facc193b030690d117b:blk.60.ffn_gate_inp_shexp.weight:shape=(4096,):dtype=bf16:elements=4096:bytes=8192
|
| 16 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00017-of-00024.gguf:31c12485ad7302732e14c61468643b9646c5101ef86ce09416a040dbcc73ab28:blk.60.post_attention_norm.weight:shape=(4096,):dtype=f32:elements=4096:bytes=16384
|
| 17 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00018-of-00024.gguf:b1dd08c4fa66cb1ef4b884ca61d1f39ae308a21aa18f5bfb5cdb3e4ebbd3ed30:blk.60.attn_k_norm.weight:shape=(256,):dtype=f32:elements=256:bytes=1024
|
| 18 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00019-of-00024.gguf:cf942018b7281b7b70863b43a73874ccbc4b1621a29eb6a3585270c288ed7303:blk.60.attn_k.weight:shape=(4096, 512):dtype=iq2_kt:elements=2097152:bytes=559104
|
| 19 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00020-of-00024.gguf:13d11323507a6ae7fcc950d01198c78d26d71b589c25c7489ee75d2679023419:blk.60.attn_q_norm.weight:shape=(256,):dtype=f32:elements=256:bytes=1024
|
| 20 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00021-of-00024.gguf:6cbd7847e76ee5779b6b65da02f5e79c7dfe2298f5ca8f6455b75078f72fd6ae:blk.60.attn_v.weight:shape=(4096, 512):dtype=iq2_kt:elements=2097152:bytes=559104
|
| 21 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00022-of-00024.gguf:5f9192fcd24af94df159de8e20ac22c4c26e37558e27b7adc86322abae79ed08:blk.60.nextn.shared_head_norm.weight:shape=(4096,):dtype=f32:elements=4096:bytes=16384
|
| 22 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00023-of-00024.gguf:64ef3cc4d66ab84b84ec15a3a3f37257914b73ab1446bb4d85484bc7d089ba13:blk.60.nextn.enorm.weight:shape=(4096,):dtype=f32:elements=4096:bytes=16384
|
| 23 |
+
mtp-Qwen3.5-397B-A17B-THIREUS-IQ2_KT-SPECIAL_TENSOR-00024-of-00024.gguf:3770f6f1db4ce7763dcf6745cfe274c59d7e4d4cdc1031ce6c186e015dd95da7:blk.60.nextn.hnorm.weight:shape=(4096,):dtype=f32:elements=4096:bytes=16384
|
tensors.map.sig
ADDED
|
Binary file (566 Bytes). View file
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|
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