用真实物理实验视频评估生成模型是否懂牛顿力学
Evaluating Newtonian Mechanics in Video Generative Models with Real Physical Systems
- 构建130段真实物理实验视频作为条件,测试生成视频的物理合理性
- 发现顶级生成模型虽画面美观,却仍难准确遵循牛顿力学规律
- 适合关注视频生成模型物理理解能力的研究者与工程师
图像和视频生成技术的进步让人们期待这些模型具备世界建模能力——生成符合物理规律的真实视频。这可能推动机器人、自动驾驶和科学模拟的发展。然而,在将它们视为世界模型前,必须验证其是否遵守物理定律。现有评估依赖主观判断或轨迹匹配,难以有效衡量物理推理能力,因为多种生成结果都可能看似合理。为此,我们提出 Morpheus,首个面向物理规律的视频生成模型评估框架,包含130段真实世界视频,记录由守恒定律指导的物理现象。以这些视频为条件,利用可解释指标,基于每种物理情境下已知的绝对守恒定律,结合物理信息神经网络和视觉-语言基础模型,评估生成视频的物理合理性。Morpheus聚焦受控的牛顿刚体场景,支持量化检验。结果表明,即使使用先进提示和视频条件,当前模型仍难以准确编码物理原理。
原文摘要 · Abstract (English)
Recent advances in image and video generation raise hopes that these models possess world modeling capabilities-the ability to generate realistic, physically plausible videos. This could revolutionize applications in robotics, autonomous driving, and scientific simulation. However, before treating these models as world models, we must ask: Do they adhere to physical laws? Current evaluation methods rely on subjective judgments or trajectory matching, limiting their usage for physical reasoning estimation, where many generations could be physically plausible. Thus, we introduce Morpheus, one of the first physics-informed evaluation frameworks for measuring the ability of video generation models to comprehend Newtonian dynamics. Morpheus features 130 real-world videos capturing physical phenomena, guided by conservation laws. Using those as conditioning for video generation, we assess physical plausibility leveraging interpretable metrics evaluated with respect to infallible conservation laws known per physical setting, leveraging advances in physics-informed neural networks and vision-language foundation models. Importantly, Morpheus targets controlled Newtonian rigid-body settings to enable quantitative checks. Our findings reveal that even with advanced prompting and video conditioning, contemporary models struggle to encode physical principles despite generating aesthetically pleasing videos.
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