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FasciumZ-Image turbo

Updated: Apr 27, 2026

base model

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1 variant available

fp8 SafeTensor

8-bit, smaller file (pruned) β€’ 5.73 GB

Verified:

Type

Checkpoint Merge

Stats

181

Reviews

Published

Dec 15, 2025

Base Model

ZImageTurbo

Hash

AutoV2
04EF793C2D
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FASCIUM

License:

Apache 2.0

Cinematic Photorealism Turbo Checkpoint

Ultra-realistic generation optimized for speed, precision, and material fidelity.
Delivers professional-grade photography results in as few as 9 steps. Fully compatible with FP8 quantization.


πŸ“˜ Overview

This is a high-fidelity photorealism checkpoint built for creators who refuse to compromise between quality and generation speed. Fine-tuned on diverse real-world imagery, it excels at capturing natural skin textures, anatomically accurate human forms, complex material interactions, and cinematic lighting. Optimized for modern inference pipelines, it maintains stunning detail even at low step counts and minimal CFG.


✨ Key Features

  • 🧴 True-to-Life Skin & Imperfections: Visible pores, peach fuzz, natural freckles, and subsurface scattering. Zero "plastic" or airbrushed look.

  • 🀲 Reliable Anatomy & Dynamics: Stable hands, facial features, and complex poses (jumping, dancing, object interaction). No fused fingers or distorted joints.

  • 🧡 Material Mastery: Accurate rendering of silk, denim, leather, wet surfaces, metal, glass, and macro textures. Clear separation between contrasting materials.

  • πŸ’‘ Advanced Lighting & Color Grading: Handles golden hour, neon nights, volumetric light, and high-contrast scenes without banding, noise, or color shifts.

  • ⚑ Turbo-Optimized Workflow: Performs exceptionally at 9–15 steps with CFG 1.0–1.5, drastically reducing VRAM usage and generation time.

  • πŸ”§ FP8 Ready: Official FP8 variant retains >95% visual fidelity. Ideal for lower VRAM setups, batch processing, or real-time workflows.


Parameter

Value

Sampler

DPM++ 2s a RF (or DPM++ 2M Karras)

Steps

9 (Turbo) / 20–30 (High Detail)

CFG Scale

1.0 (Turbo) / 5.0–7.0 (Standard)

Scheduler

KL Optimal

Resolution

1024x1536 (or native aspect ratio)

VAE

Built-in / vae-ft-mse-840000

Clip Skip

1

Seed

Fixed for consistency, or -1 for variation


πŸ“ Prompting Guide

Style: Use photography-focused descriptors. The model responds best to clear, technical prompts rather than artistic/stylized keywords.

βœ… Positive Prompt Examples:

text

1

text

1

🚫 Negative Prompt:

text

1


πŸ”§ FP8 Quantization Notes

  • FP8 variant uses float8_e4m3fn per-tensor scaling.

  • Tested across macro, portrait, material, night-scene, and dynamic pose benchmarks with negligible quality loss.

  • Recommended for: VRAM-constrained GPUs, batch generation, turbo workflows.

  • Keep CFG ≀ 1.5 and Steps β‰₯ 9 for optimal FP8 stability.


πŸ§ͺ Validation & Testing

Rigorously benchmarked across 10+ scenarios: βœ… Macro eye/portrait (skin, lashes, reflections)
βœ… Hand-object interaction & anatomy
βœ… Mechanical macro (gears, metal, glass)
βœ… Interior reflections & wet surfaces
βœ… Material contrast (denim, leather, wood)
βœ… Night neon & dynamic range
βœ… Fashion editorial & fabric dynamics
βœ… Sports/action poses & muscle definition
βœ… Dance & flowing fabric physics
βœ… FP16 ↔ FP8 visual parity verification


πŸ“œ Credits & License

  • Base Architecture: [e.g., SDXL / Z-Image Turbo / Custom]

  • Trained/Fine-tuned by: [Your Handle/Name]

  • License: [e.g., CreativeML Open RAIL-M / CC BY-NC 4.0 / Custom]

  • ⚠️ Disclaimer: This model is intended for creative, artistic, and research purposes. Users are responsible for complying with local laws and ethical guidelines. Generated content does not represent real individuals unless explicitly stated.


πŸ’‘ Tip: If you experience minor contrast shifts in FP8, switch to e5m2 dtype or increase steps to 12–15. For maximum realism, keep CFG at 1.0 and let the model’s native priors guide composition.