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Tushar Anand

3 accepted papers

2026

DenVisCoM: Dense Vision Correspondence Mamba for Efficient and Real-Time Optical Flow and Stereo Estimation

ICRA 2026poster

In this work, we propose a novel Mamba block DenVisCoM, as well as a novel hybrid architecture specifically tailored for accurate and real-time estimation of optical flow and disparity estimation. Given that such multi-view geometry and motion tasks are fundamentally related, we propose a unified ar…

2026

DensePercept-NCSSD: Vision Mamba towards Real-Time Dense Visual Perception with Non-Causal State Space Duality

ICRA 2026poster

In this work, we propose an accurate and real-time optical flow and disparity estimation model by fusing pairwise input images in the proposed non-causal selective state space for dense perception tasks. We propose a non-causal Mamba block-based model that is fast and efficient and aptly manages the…

2025

ViM-Disparity: Bridging the Gap of Speed, Accuracy and Memory for Disparity Map Generation

ICASSP 2025accepted

In this work we propose a Visual Mamba (ViM) based architecture, to dissolve the existing trade-off for real-time and accurate model with low computation overhead for disparity map generation (DMG). Moreover, we proposed a performance measure that can jointly evaluate the inference speed, computatio…

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