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tinyopsec/Qwen3.8-4B-Empero-AI-FullStack-GGUF
Qwen3.8-4B-Empero-AI-FullStack-GGUF is a text generation model from tinyopsec. Use it when you need the model to write or continue text. It is set up for gguf. The card lists the license as apache-2.0.
This repository contains GGUF quantizations of iBotIA/Qwen3.8-4B-Empero-AI-FullStack.
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.gguf33.8 GB Β· 100%
From the Hugging Face model README
This repository contains GGUF quantizations of iBotIA/Qwen3.8-4B-Empero-AI-FullStack.
| File | Bits | Size (approx.) | Use case |
|---|---|---|---|
model_f16.gguf | 16-bit | ~8.7 GB | Maximum quality, reference |
model_q8_0.gguf | 8-bit | ~4.7 GB | Near-lossless, high VRAM |
model_q6_k.gguf | 6-bit | ~3.6 GB | Excellent quality |
model_q5_k_m.gguf | 5-bit | ~3.1 GB | Great quality/size balance |
model_q5_k_s.gguf | 5-bit | ~3.0 GB | Slightly smaller than K_M |
model_q4_k_m.gguf | 4-bit | ~2.5 GB | Recommended default |
model_q4_k_s.gguf | 4-bit | ~2.4 GB | Smaller 4-bit variant |
model_q3_k_l.gguf | 3-bit | ~2.1 GB | Low VRAM, decent quality |
model_q3_k_m.gguf | 3-bit | ~1.9 GB | Balanced 3-bit |
model_q3_k_s.gguf | 3-bit | ~1.7 GB | Minimum 3-bit |
model_q2_k.gguf | 2-bit | ~1.3 GB | Extreme compression |
IQ quants (IQ4_XS, etc.) coming soon β require imatrix calibration.
./llama-cli -m model_q4_k_m.gguf -p "Your prompt here" -n 512
Download any .gguf file and load it directly in LM Studio.
ollama run hf.co/tinyopsec/Qwen3.8-4B-Empero-AI-FullStack-GGUF:Q4_K_M
from llama_cpp import Llama
llm = Llama.from_pretrained(
repo_id="tinyopsec/Qwen3.8-4B-Empero-AI-FullStack-GGUF",
filename="model_q4_k_m.gguf",
)
output = llm("Your prompt here", max_tokens=512)
print(output["choices"][0]["text"])
| VRAM | Recommended |
|---|---|
| 2 GB | Q2_K |
| 3 GB | Q3_K_M |
| 4 GB | Q4_K_M β |
| 6 GB | Q5_K_M |
| 8 GB | Q6_K |
| 12 GB+ | Q8_0 / F16 |
Refer to the original model license.