FLUX.Fill-dev(gguf)
Checkpoint
Flux.1 D
Checkpoint
Flux.1 D
Q5_K_M

FLUX.Fill-dev(gguf)

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About this model

🌊 FLUX.1-Fill-dev Quantized: Advanced Diffusion for Seamless Image Editing

πŸ“Œ Overview

FLUX.1-Fill-dev Quantized represents a breakthrough in efficient diffusion models for image editing. Built on Black Forest Labs' original architecture and optimized through GGUF quantization, it delivers professional-grade inpainting and outpainting capabilities while maintaining impressive performance even on consumer hardware.

πŸ”‘ Key Features

  • Optimized Performance: Multiple quantization options (Q8, Q5_K_M, Q4_K_M) to balance quality and speed

  • Versatile Editing: Excels at both inpainting (filling missing areas) and outpainting (extending images beyond boundaries)

  • Seamless Integration: Compatible with popular frameworks like ComfyUI and other diffusion workflows

  • Memory Efficient: Reduced model size without significant quality degradation

⚑ Available Versions

  • Q8 Quantization: Highest quality, larger model size (recommended for high-end GPUs)

  • Q5_K_M Quantization: Balanced performance and quality

  • Q4_K_M Quantization: Fastest performance, smallest size (ideal for lower-end hardware)

πŸ“‚ ComfyUI/
β”œβ”€β”€ πŸ“‚ models/
β”‚   β”œβ”€β”€ πŸ“‚ diffusion_models/
β”‚   β”‚   └── πŸ“„ fluxfill-dev-q8.gguf (or q5km or q4km)
β”‚   β”œβ”€β”€ πŸ“‚ text_encoders/
β”‚   β”‚   β”œβ”€β”€ πŸ“„ clip_l.safetensors
β”‚   β”‚   └── πŸ“„ t5xxl_fp8_e4m3fn.safetensors (fp16 or fp8 scaled)
β”‚   β”œβ”€β”€ πŸ“‚ vae/
β”‚   β”‚   └── πŸ“„ ae.safetensors

πŸš€ Getting Started

System Requirements

  • Minimum: 8GB VRAM (with Q4_K_M)

  • Recommended: 12GB+ VRAM (for Q8 version)

  • Optimal: 16GB+ VRAM (for complex workflows)

Installation Steps

  1. Download your preferred quantization version

  2. Place the model file in your ComfyUI/models/diffusion_models/ directory

  3. Download required text encoders from Hugging Face

  4. Download the VAE from Hugging Face

Note: You only need to choose ONE of the T5XXL options below based on your hardware capabilities

  • clip_l.safetensors - Core understanding model

  • T5XXL Options (choose only one):

    • t5xxl_fp16.safetensors - Highest quality, more demanding

    • t5xxl_fp8_e4m3fn.safetensors - Balanced performance

    • t5xxl_fp8_e4m3fn_scaled.safetensors - Optimized for speed

  • ae.safetensors

πŸ’Ž Optimal Workflows

  • 🎨 Professional Inpainting

    • FLUX.1-Fill-dev excels at seamlessly patching areas within images while maintaining perfect context awareness:

      1. Load your image into ComfyUI

      2. Create or upload a mask for the area to fill

      3. Use 20-30 steps with a sampling method like DPM++ 2M Karras

  • 🏞️ Creative Outpainting

    • Extend your images beyond their original boundaries with natural continuity:

      1. Load your image into ComfyUI

      2. Use the FluxFill outpainting workflow

      3. Choose the direction(s) to extend the image

πŸ™ Credits

  • Special thanks to Black Forest Labs for developing the original FLUX.1-Fill-dev model.

πŸ‘¨β€πŸ’» Developer Information

This workflow guide was created by Abdallah Al-Swaiti:

  • LinkedIn Profile

  • GitHub

  • Hugging Face

For additional tools and updates, check out the OllamaGemini Node: GitHub Repository

✨ Elevate Your Creative Vision ✨

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