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    Home»Development»Machine Learning»ETVA: Evaluation of Text-to-Video Alignment via Fine-grained Question Generation and Answering

    ETVA: Evaluation of Text-to-Video Alignment via Fine-grained Question Generation and Answering

    June 27, 2025

    Precisely evaluating semantic alignment between text prompts and generated videos remains a challenge in Text-to-Video (T2V) Generation. Existing text-to-video alignment metrics like CLIPScore only generate coarse-grained scores without fine-grained alignment details, failing to align with human preference. To address this limitation, we propose ETVA, a novel Evaluation method of Text-to-Video Alignment via fine-grained question generation and answering. First, a multi-agent system parses prompts into semantic scene graphs to generate atomic questions. Then we design a knowledge-augmented…

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