T2Vs Meet VLMs: A Scalable Multimodal Dataset for Visual Harmfulness Recognition
–Neural Information Processing Systems
While widespread access to the Internet and the rapid advancement of generative models boost people's creativity and productivity, the risk of encountering inappropriate or harmful content also increases. To address the aforementioned issue, researchers managed to incorporate several harmful contents datasets with machine learning methods to detect harmful concepts. However, existing harmful datasets are curated by the presence of a narrow range of harmful objects, and only cover real harmful content sources. This restricts the generalizability of methods based on such datasets and leads to the potential misjudgment in certain cases.
Neural Information Processing Systems
Mar-22-2026, 12:46:18 GMT
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