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SP-Guard: Selective Prompt-adaptive Guidance for Safe Text-to-Image Generation

Published: November 14, 2025 | arXiv ID: 2511.11014v1

By: Sumin Yu, Taesup Moon

Potential Business Impact:

Stops AI from making bad pictures.

Business Areas:
Visual Search Internet Services

While diffusion-based T2I models have achieved remarkable image generation quality, they also enable easy creation of harmful content, raising social concerns and highlighting the need for safer generation. Existing inference-time guiding methods lack both adaptivity--adjusting guidance strength based on the prompt--and selectivity--targeting only unsafe regions of the image. Our method, SP-Guard, addresses these limitations by estimating prompt harmfulness and applying a selective guidance mask to guide only unsafe areas. Experiments show that SP-Guard generates safer images than existing methods while minimizing unintended content alteration. Beyond improving safety, our findings highlight the importance of transparency and controllability in image generation.

Country of Origin
🇰🇷 Korea, Republic of

Page Count
9 pages

Category
Computer Science:
CV and Pattern Recognition