arXiv:2607.00047cs.MMcs.CV2026-07中稿 · Ars Electronica EX…

用少量帧重建希区柯克电影,揭示生成模型中的经典电影潜规则。

Vertigo Vertigo: Reconstructing a Cinematic Ideal through its Predictive AI Double

论文配图:Vertigo Vertigo: Reconstructing a Cinematic Ideal through its Predictive AI Double
图 1 · 摘自论文原文
  • 仅用2.78%原片帧作为锚点,通过扩散模型插值生成完整影片。
  • 73.1%画面可辨认,仅3.6%严重失真,显示模型内蕴经典影像规律。
  • 适合关注生成艺术、电影理论与人工智能感知的读者。

Vertigo Vertigo 是对希区柯克1958年电影《迷魂记》的逐场景AI重建,仅使用原片2.78%的帧作为关键帧锚点,通过大型视频扩散模型进行首尾帧插值,预测中间序列。该作品探讨了经典电影中对人造理想的执着重构,将这一主题投射至生成系统本身,视经典文本为探测生成模型中编码的古典电影规范的探针。经计算分析及媒体理论家(利夫·曼诺维奇、肖恩·登森、凯文·L·费尔格森)评估,重建结果结构保真度高:73.1%的帧可被识别为合理的《迷魂记》再现,仅有3.6%出现灾难性失败。这表明电影规范已深度压缩于模型的潜在先验中。美学上,重建呈现原片与其预测影子之间不稳定的叠加,持续引发观众对真实性的怀疑——一种21世纪的眩晕感。论文主张,生成媒体并非取代电影,而是加速其欲望与虚假真实性的逻辑,从经典好莱坞延续至今,重塑当代感知环境。

原文摘要 · Abstract (English)

Vertigo Vertigo is a scene-for-scene AI reconstruction of Hitchcock's Vertigo (1958), generated from only 2.78% of the original film's frames. Using this sparse set of keyframe anchors, we perform first-last frame interpolation via a large video diffusion model to predict the intervening sequences. Vertigo is itself a film about the obsessive reconstruction of an artificial ideal; Vertigo Vertigo extends this logic to the material of the film, treating the canonical text as a probe for the normative conventions of classical cinema encoded within generative systems. Evaluated through computational analysis and critical feedback from media theorists (Lev Manovich, Shane Denson, Kevin L. Ferguson), the artifact demonstrates remarkable structural fidelity: 73.1% of frames are recognizable as plausible renditions of Vertigo and only 3.6% fail catastrophically. This fidelity suggests that cinematic norms are deeply compressed within the model's latent priors. Aesthetically, the reconstruction is rendered as an unstable overlay between the original film and its predictive shadow, fueling a persistent doubt in the viewer's perception of authenticity -- a 21st-century vertigo. The work argues that generative media is not a paradigm shift from cinema but an acceleration of its logic of desire and false authenticity, extending from classical Hollywood through to the predictive media environments now reshaping contemporary perception.

生成艺术电影重建扩散模型感知研究

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