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LiteMatch: Lightweight Zero-Shot Stereo Matching via Cost Volume Stabilization

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Despite rapid progress in learning-based stereo matching, high accuracy is often achieved at the cost of heavy backbones and computationally intensive 3D cost volume processing, resulting in substantial memory and runtime overhead. More critically, these methods frequently struggle to generalize across domains, limiting their practical deployment. We present \textit{LiteMatch}, a lightweight stereo matching framework that achieves strong zero-shot generalization through cost volume stabilization-without expensive 3D convolutions. LiteMatch employs two complementary encoders: a Cross-View Correspondence Encoder (CVCE) to capture global cross-view interactions, and a High-Frequency Encoder (HFE) that enhances fine structural details via FFT-based frequency cues. To stabilize the cost volume, we introduce the \textit{Cost Volume Consistency Loss (CVC-Loss)}, a voxel-wise binary cross-entropy objective applied to softmax-normalized cost distributions. By encouraging sharp and unimodal disparity probabilities, CVC-Loss promotes stable cost distributions and enables rapid convergence. A lightweight refinement module further produces sharp full-resolution disparities with low-iteration updates, avoiding heavy recurrent refinement. With a flexible design ranging from 3.36M to 9.58M parameters, LiteMatch achieves exceptional zero-shot generalization, delivering competitive EPE and D1 performance across Scene Flow, KITTI, Middlebury, ETH3D, and DrivingStereo. Our results establish that lightweight architectures can indeed generalize across domains without sacrificing accuracy. \href{https://mdraqibkhan.github.io/Litematch}{\textcolor{blue}{Code}}

Md Raqib Khan, Santosh Kumar Vipparthi, Subrahmanyam Murala• 2026

Related benchmarks

TaskDatasetResultRank
Stereo MatchingKITTI 2015--
142
Stereo MatchingKITTI 2012--
108
Stereo MatchingETH3D
bad 1.00.33
95
Stereo MatchingETH3D (non-occluded)
Bad 1.0 Error0.35
52
Stereo MatchingDrivingStereo Zero-shot generalization
Error Rate (Sunny)2.01
27
Stereo MatchingETH3D (All)
D1 Error0.52
19
Stereo MatchingMiddlebury-F
Bad Pixel Rate (Error > 2.0)4.6
12
Stereo MatchingScene Flow In-Domain (test)
End Point Error (EPE)0.39
12
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