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PhyBench: A physical com- monsense benchmark for evaluating text-to-image models

12 Pith papers cite this work. Polarity classification is still indexing.

12 Pith papers citing it

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PhysInOne: Visual Physics Learning and Reasoning in One Suite

cs.CV · 2026-04-10 · unverdicted · novelty 8.0

PhysInOne is a new dataset of 2 million videos across 153,810 dynamic 3D scenes covering 71 physical phenomena, shown to improve AI performance on physics-aware video generation, prediction, property estimation, and motion transfer.

Do Image Editing Models Understand Lighting?

cs.CV · 2026-06-25 · unverdicted · novelty 7.0

New 3DLP benchmark with real-world 1K HDR pairs shows state-of-the-art image editing models vary in physical lighting consistency, with best models close to reality but error-prone in low-light regions.

Training-Trajectory-Aware Token Selection

cs.CL · 2026-01-15 · unverdicted · novelty 6.0

Training-Trajectory-Aware Token Selection (T3S) reconstructs the token-level training objective to overcome a performance bottleneck in continual distillation of reasoning capabilities from large to small language models.

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