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EvalCrafter: Benchmarking and Evaluating Large Video Generation Models

About

The vision and language generative models have been overgrown in recent years. For video generation, various open-sourced models and public-available services have been developed to generate high-quality videos. However, these methods often use a few metrics, e.g., FVD or IS, to evaluate the performance. We argue that it is hard to judge the large conditional generative models from the simple metrics since these models are often trained on very large datasets with multi-aspect abilities. Thus, we propose a novel framework and pipeline for exhaustively evaluating the performance of the generated videos. Our approach involves generating a diverse and comprehensive list of 700 prompts for text-to-video generation, which is based on an analysis of real-world user data and generated with the assistance of a large language model. Then, we evaluate the state-of-the-art video generative models on our carefully designed benchmark, in terms of visual qualities, content qualities, motion qualities, and text-video alignment with 17 well-selected objective metrics. To obtain the final leaderboard of the models, we further fit a series of coefficients to align the objective metrics to the users' opinions. Based on the proposed human alignment method, our final score shows a higher correlation than simply averaging the metrics, showing the effectiveness of the proposed evaluation method.

Yaofang Liu, Xiaodong Cun, Xuebo Liu, Xintao Wang, Yong Zhang, Haoxin Chen, Yang Liu, Tieyong Zeng, Raymond Chan, Ying Shan• 2023

Related benchmarks

TaskDatasetResultRank
Long Video Quality EvaluationVGoT
Spearman Correlation0.138
12
Long Video Quality EvaluationWan 2.2
Spearman Correlation0.204
12
Long Video Quality EvaluationVeo 3.1
Spearman Correlation0.189
12
Long Video Quality EvaluationOverall Aggregated Models
Spearman's Correlation0.092
12
Long Video Quality EvaluationStoryMem
Spearman Correlation0.072
12
Long Video Quality EvaluationSora 2
Spearman Corr0.002
12
Long Video Quality EvaluationHoloCine
Spearman Correlation-0.059
12
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