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NSFW-API/NSFW_Wan_1.3b
NSFW_Wan_1.3b is a machine learning model from NSFW-API. Use it for the machine learning task on the model card, and read the license before you ship it in a product. The card lists the license as creativeml-openrail-m.
🚨 IMPORTANT UPDATE: New Experimental Checkpoints Available! 🚨 A new, experimental set of checkpoints (wan1.3Bexpe1 through wan1.3Bexpe14) has been released. These were trained using a revised methodology to fix sign…
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Updated Jun 25, 2025
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From the Hugging Face model README
🚨 IMPORTANT UPDATE: New Experimental Checkpoints Available! 🚨
A new, experimental set of checkpoints (
wan_1.3B_exp_e1throughwan_1.3B_exp_e14) has been released. These were trained using a revised methodology to fix significant image quality degradation issues (e.g., body horror, artifacts) found in the originale4-e20checkpoints.We strongly recommend new users start with the experimental
wan_1.3B_exp_e14.safetensorscheckpoint. For more details, see the new section below titled "The 'Fix' - Experimental Epochs 1-8". Your feedback on these new models is crucial and will help determine if they will replace the original series.
NSFW Wan 1.3b T2V is a powerful, 1.3 billion parameter text-to-video generation model, specifically fine-tuned for generating Not Safe For Work (NSFW) content. The model has undergone multiple training methodologies to create a model that has a solid understanding across the entire NSFW spectrum and can generate videos with coherent motion natively.
The primary goal of this model is to provide a research and creative tool capable of generating thematically relevant short video clips based on text prompts within the adult content domain. It aims to understand and render a wide array of NSFW scenarios, aesthetics, and actions described in natural language, now with improved temporal consistency.
After user feedback and internal review revealed significant image quality degradation and "body horror" artifacts in the original training run (specifically after epoch 3), a new training procedure was designed and executed.
The original two-phase approach, while sound in theory, suffered in practice. The initial image-only training phase (epochs 1-10) was too aggressive, causing "catastrophic forgetting" where the model's understanding of coherent anatomy (faces, hands, etc.) collapsed. The subsequent video-only training (epochs 11-20) could not fully recover from this damage, resulting in outputs that were often distorted or of low quality.
A new, single-run training configuration was developed to address these flaws from the ground up:
We strongly recommend using wan_1.3B_exp_e14.safetensors for all general use cases and LoRA training. This checkpoint represents the best trade-off between explicit content generation and visual coherence from the new, improved training run.
Note: This section describes the original training process, which resulted in the e1 through e20 checkpoints. This process had known flaws that led to quality degradation. For the best results, please use the new experimental models described above.
The model's original training was split into two distinct phases to first build a strong aesthetic foundation and then learn motion.
wan_1.3B_e20.safetensors is the best of this original series.The model was trained on a dataset comprising the top 1,000 posts from approximately 1,250 distinct NSFW subreddits. This dataset was carefully curated to capture a broad spectrum of adult themes, visual styles, character archetypes, specific kinks, and actions prevalent in these online communities. The second phase of training utilized a video dataset sourced from similar communities.
The captions associated with the training data leveraged the language and tagging conventions found within these subreddents. For insights into effective prompting strategies for specific styles or content, please refer to the prompting-guide.json file included in this repository.
Note: Due to the nature of the source material, the training dataset inherently contains explicit adult content.
wan_1.3B_exp_e1.safetensorswan_1.3B_exp_e14.safetensorswan_1.3B_e1.safetensorswan_1.3B_e20.safetensorsprompting-guide.json: This crucial JSON file contains an analysis of common keywords, phrases, and descriptive language associated with the content from various source subreddits. It is designed to help users craft more effective prompts.This model is intended for generating short video clips (typically a few seconds) from descriptive text prompts.
wan_1.3B_exp_e14.safetensors. This checkpoint is from the revised training run and offers superior visual quality and motion coherence.e11-e20 and all exp models), you do not need to use the old NSFW_Wan_1.3b_motion_helper LoRA. The model generates motion natively.prompting-guide.json: For best results, especially when targeting specific sub-community styles or niche fetishes, refer to the prompting-guide.json. This guide will provide insights into the terminology and phrasing most likely to elicit the desired output.While NSFW Wan 1.3B T2V is a capable standalone model, its greatest strength lies in its efficacy as a foundational base for training specialized LoRAs (Low-Rank Adaptations).
We highly recommend using the new wan_1.3B_exp_e14.safetensors as the base for all LoRA training.
Its improved and more stable training provides an even more robust understanding of:
Because this new base model is not "damaged," you don't need to waste training cycles teaching your LoRA to fix underlying anatomical problems. You can focus your LoRA training dataset exclusively on the specific niche concept, character, artistic style, or unique action you want to master. This leads to more efficient LoRA training and superior results.
Join our Discord server!
Connect with other users, share your creations, get help with prompting, discuss the new experimental models, and contribute to the community:
We encourage active participation and feedback to help improve future iterations and resources! Your feedback on the experimental models is especially valuable.
This model is intended for adult users (18+/21+ depending on local regulations) only.
We strongly recommend users familiarize themselves with responsible AI practices and the potential societal impacts of generative NSFW media.
Steal this model!
The outputs of this model are entirely synthetic and computer-generated. They do not depict real people or events unless explicitly prompted to do so with user-provided data (which is not the intended use of this pre-trained model). The developers of this model are not responsible for the outputs created by users.