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Research PaperResearchia:202610.05050

LoGo: Local-Global Rewards for Consistent Long-Horizon Video Generation

Ziqi Ma

Abstract

Camera-controlled video models are rapidly advancing toward long generation horizons and complex camera control. A key failure mode is 3D inconsistency: as the camera moves, objects lose permanence and scene structures shift. Existing post-training techniques, which assign a single scalar reward to the entire generation, are poorly suited to correcting these inconsistencies over long horizons. We introduce LoGo, which blends global and spatially localized rewards for camera-controlled video mode...

Submitted: October 5, 2026Subjects: AI; Artificial Intelligence

Description / Details

Camera-controlled video models are rapidly advancing toward long generation horizons and complex camera control. A key failure mode is 3D inconsistency: as the camera moves, objects lose permanence and scene structures shift. Existing post-training techniques, which assign a single scalar reward to the entire generation, are poorly suited to correcting these inconsistencies over long horizons. We introduce LoGo, which blends global and spatially localized rewards for camera-controlled video models. The local reward provides fine-grained credit assignment, which substantially improves 3D consistency, while the global reward preserves camera following and video quality. Across three base models, LoGo shows a clear advantage on DL3DV and TrajectoryBench, a new benchmark for long-horizon, complex-camera-control generation that current evaluations lack. LoGo effectively reduces local object shifts, artifacts, and global scene changes, illustrating the importance of credit assignment in post-training video models. Project website: https://ziqi-ma.github.io/logo-website/


Source: arXiv:2610.03636v1 - http://arxiv.org/abs/2610.03636v1 PDF: https://arxiv.org/pdf/2610.03636v1 Original Link: http://arxiv.org/abs/2610.03636v1

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Submission Info
Date:
Oct 5, 2026
Topic:
Artificial Intelligence
Area:
AI
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