ai.hackcv
论文精选 82arXiv

Evaluating the Diversity of AI-Generated Content with Diversity Profiles· 评估AI生成内容的多样性

Diversity is a fundamental criterion for evaluating generative artificial intelligence (AI) systems, yet its measurement remains inherently ambiguous. Existing approaches typically represent generated samples in an embedding space, compute pairwise distances or similarities, and aggregate them into a single scalar score. Such scalar summaries are convenient, but they often encode different inductive biases and may yield contradictory rankings of the same sample sets. In this paper, we argue that diversity evaluation for AI-generated content is intrinsically under-specified when reduced to a single number. We first review representative diversity metrics, and then diagnose their limitations from two complementary perspectives: an axiomatic analysis showing that no representative scalar metr

领域:cs.AI作者:Xiuyuan Hu、Xuege Hou、Guoqing Liu
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