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metadata
tags:
  - gguf
  - llama.cpp
  - unsloth
  - vision-language-model
  - qwen3-vl
library_name: llama.cpp
pipeline_tag: visual-question-answering
license: apache-2.0
datasets:
  - prapaa/eastrus-vl
language:
  - en
base_model:
  - unsloth/Qwen3-VL-8B-Instruct-unsloth-bnb-4bit

eastrus-vl-qwen3-8b-gguf

A GGUF-exported multimodal (vision-language) model based on Qwen3-VL-8B-Instruct, fine-tuned for cattle estrus–related vulval image assessment. The model is intended to produce symptom-by-symptom observations and a single confidence-style score, rather than a hard binary decision.

This repo contains:

  • A quantized GGUF model for inference (Q4_K_M)
  • A matching multimodal projection file (mmproj) required by llama.cpp for vision inputs

Model details

  • Base model: Qwen3-VL-8B-Instruct (VLM)
  • Fine-tuning: Unsloth (LoRA / efficient finetuning workflow)
  • Export: llama.cpp GGUF conversion via Unsloth
  • Quantization: Q4_K_M (balanced quality/speed)

Intended use

  • Primary: Assistive analysis of cattle vulval imagery for estrus-related visual signs (educational/research workflow support).
  • Not a medical device: Outputs should not be used as the sole basis for veterinary diagnosis, treatment, or critical farm management decisions.

Output format (what you should expect)

The model is trained to generate:

  • A structured, human-readable symptom list (mucus color, swelling severity, redness severity, moisture level, mucus viscosity, tissue turgidity)
  • A single confidence-style score (0–100%)
  • A JSON structured summary of all observed symptoms

How to run (llama.cpp)

1) Text-only prompt (sanity check)

llama-cli -hf prapaa/eastrus-vl-qwen3-8b-gguf --jinja -p "Is there eastrus?"