CVCLAug 22, 2023

StoryBench: A Multifaceted Benchmark for Continuous Story Visualization

Tsinghua
arXiv:2308.11606v224 citationsh-index: 71
Originality Synthesis-oriented
AI Analysis

This provides a new benchmark for researchers in video generation, but it is incremental as it builds on existing datasets and annotations.

The authors tackled the problem of evaluating text-to-video models by introducing StoryBench, a multifaceted benchmark with three tasks of increasing difficulty, and showed benefits from training on algorithmically generated story-like data.

Generating video stories from text prompts is a complex task. In addition to having high visual quality, videos need to realistically adhere to a sequence of text prompts whilst being consistent throughout the frames. Creating a benchmark for video generation requires data annotated over time, which contrasts with the single caption used often in video datasets. To fill this gap, we collect comprehensive human annotations on three existing datasets, and introduce StoryBench: a new, challenging multi-task benchmark to reliably evaluate forthcoming text-to-video models. Our benchmark includes three video generation tasks of increasing difficulty: action execution, where the next action must be generated starting from a conditioning video; story continuation, where a sequence of actions must be executed starting from a conditioning video; and story generation, where a video must be generated from only text prompts. We evaluate small yet strong text-to-video baselines, and show the benefits of training on story-like data algorithmically generated from existing video captions. Finally, we establish guidelines for human evaluation of video stories, and reaffirm the need of better automatic metrics for video generation. StoryBench aims at encouraging future research efforts in this exciting new area.

Code Implementations1 repo
Foundations

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