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nnnxnsn/NSFW-Uncensored

nnnxnsn 2.6B image-gen
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  • classification m-uncensored
  • files 4
  • hub_downloads_all_time 73
  • author_summary 5 models
  • readme_text full
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Abliteration classifier · v1.0.0
M-U
Primary method

Uncensored (method unknown)

No other method signals detected in this model.
Confidence
LOW
Why this label 3 signals
Weak or ambiguous signals. Best guess based on catalog patterns; treat as tentative and check the evidence below.
  • 'uncensored' in name/tags but no 'abliterated' marker
  • method not identifiable from author declaration alone
  • may be DPO fine-tune, prompt engineering, or unknown technique
Refusal direction extraction

No specific extraction method could be identified for this model. The producer either did not document it or used a proprietary pipeline.

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Downloads · lifetime
73
37 last 30d - active
Likes
1
Model age
3mo ago
created 2026-06-22
Downloads over time
Now100→from13↑669%
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Jun 24 → Oct 11 · 55 snapshots · spans 109 days

Metadata

License
mit
Languages
en
Tags
diffusers safetensors stablediffusion uncensored nsfw image generation text-to-image en license:mit endpoints_compatible diffusers:StableDiffusionXLPipeline

Related

Total size
0 B
Files
4
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-06-22 07:03

Files by quantization

Auxiliary files 4 files 5.65 KB
README.md 2.09 KB 881b3551 download
.gitattributes 1.54 KB f7eaf496 download
test_app.py 1.33 KB 44582eac download
model_index.json 712 B 9079c108 download

README current version from Hugging Face


license: mit
language:

  • en
    pipeline_tag: text-to-image
    tags:
  • stablediffusion
  • uncensored
  • nsfw
  • image
  • generation
    widget:
    • text: >-
      TEST
      output:
      url: samples/nsfw1.webp
    • text: >-
      TEST
      output:
      url: samples/nsfw2.webp
    • text: >-
      TEST
      output:
      url: samples/nsfw3.webp
    • text: >-
      TEST
      output:
      url: samples/nsfw4.webp

NSFW-Uncensored

Uncensored Image Generation Model

Model Description

This model is a playground that minimizes censorship restrictions, allowing exploration of the technical possibilities of AI-based image generation. Through various prompts, you can test censorship boundaries and verify the actual performance of image generation AI.

Example code

# Basic usage example
from diffusers import DiffusionPipeline
import torch

# Load the model (with float16 precision for GPU)
pipe = DiffusionPipeline.from_pretrained(
    "Heartsync/NSFW-Uncensored",
    torch_dtype=torch.float16
)
pipe.to("cuda")  # Move to GPU

# Generate an image with a simple prompt
prompt = "Woman in an elegant dress standing by a window, detailed lighting, 8k"
negative_prompt = "low quality, blurry, deformed"

# Create the image
image = pipe(
    prompt=prompt,
    negative_prompt=negative_prompt,
    num_inference_steps=30,
    guidance_scale=7.5
).images[0]

# Save the image
image.save("generated_image.png")

# Advanced example - fixed seed and additional parameters
import numpy as np

# Set seed for reproducible results
seed = 42
generator = torch.Generator("cuda").manual_seed(seed)

# Advanced parameter settings
prompt = "A dramatic scene with explicit details, cinematic lighting, high resolution"
image = pipe(
    prompt=prompt,
    negative_prompt="ugly, deformed, disfigured, poor quality, low resolution",
    num_inference_steps=50,  # More steps for higher quality
    guidance_scale=8.0,     # Increase prompt fidelity
    width=768,              # Adjust image width
    height=768,             # Adjust image height
    generator=generator     # Fixed seed
).images[0]

image.save("high_quality_image.png")

README history 1 version

The author's README evolved over time. Click a version to see its content at that point.

  1. 2026-06-22Duplicate from Heartsync/NSFW-Uncensored94efb6a2.1 KB
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