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Stereo anything: Unifying stereo matching with large-scale mixed data

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

7 Pith papers citing it

fields

cs.CV 6 cs.RO 1

years

2026 5 2025 2

verdicts

UNVERDICTED 7

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representative citing papers

Lite Any Stereo: Efficient Zero-Shot Stereo Matching

cs.CV · 2025-11-20 · unverdicted · novelty 6.0

Lite Any Stereo delivers top-ranked zero-shot accuracy on four real-world stereo benchmarks using a lightweight backbone, hybrid cost aggregation, and three-stage training on million-scale data, at less than 1% of typical computational cost.

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Showing 2 of 2 citing papers after filters.

  • Lite Any Stereo: Efficient Zero-Shot Stereo Matching cs.CV · 2025-11-20 · unverdicted · none · ref 19

    Lite Any Stereo delivers top-ranked zero-shot accuracy on four real-world stereo benchmarks using a lightweight backbone, hybrid cost aggregation, and three-stage training on million-scale data, at less than 1% of typical computational cost.

  • ROVR-Open-Dataset: A Large-Scale Depth Dataset for Autonomous Driving cs.CV · 2025-08-19 · unverdicted · none · ref 4

    ROVR is a new diverse depth dataset for autonomous driving with 200K frames, released pipelines, and ablations showing sparse ground truth supports model training.