Robotics and Computer Vision Lab

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저 자 Jinsun Park, Kyungdon Joo, Zhe Hu, Chi-Kuei Liu, In So Kweon
학 회 European Conference on Computer Vision (ECCV)
논문일시(Year) 2020
논문일시(Month) 08

In this paper, we propose a robust and efficient end-to-end non-local spatial propagation network for depth completion. The proposed network takes RGB and sparse depth images as inputs and estimates non-local neighbors and their affinities of each pixel, as well as an initial depth map with pixel-wise confidences. The initial depth prediction is then iteratively refined by its confidence and non-local spatial propagation procedure based on the predicted non-local neighbors and corresponding affinities. Unlike previous algorithms that utilize fixed-local neighbors, the proposed algorithm effectively avoids irrelevant local neighbors and concentrates on relevant non-local neighbors during propagation. In addition, we introduce a learnable affinity normalization to better learn the affinity combinations compared to conventional methods. The proposed algorithm is inherently robust to the mixed-depth problem on depth boundaries, which is one of the major issues for existing depth estimation/completion algorithms. Experimental results on indoor and outdoor datasets demonstrate that the proposed algorithm is superior to conventional algorithms in terms of depth completion accuracy and robustness to the mixed-depth problem. Our implementation is publicly available on the project page.

 

Acknowledgement :

This work was partially supported by the National Information Society Agency for construction of training data for artificial intelligence (2100-2131-305-107-19).

 


List of Articles
399. MTMMC: A Large-Scale Real-World Multi-Modal Camera Tracking Benchmark
Sanghyun Woo*, Kwanyong Park*, Inkyu Shin*, Myungchul Kim*, In So Kweon
Conference on Computer Vision and Pattern Recognition (CVPR) 2024 / 06
398. ImageNet-D: Benchmarking Neural Network Robustness on Diffusion Synthetic Object
Chenshuang Zhang, Fei Pan, Junmo Kim, In So Kweon, Chengzhi Mao
Conference on Computer Vision and Pattern Recognition (CVPR) 2024 / 06
397. Video-kmax: A simple unified approach for online and near-online video panoptic segmentation
Inkyu Shin, Dahun Kim, Qihang Yu, Jun Xie, Hong-Seok Kim, Bradley Green, In So Kweon, Kuk-Jin Yoon, Liang-Chieh Chen
Winter Conference on Applications of Computer Vision (WACV) 2024 / 01
396. Blurry Video Compression: A Trade-off between Visual Enhancement and Data Compression
Dawit Mureja Argaw, Junsik Kim, In So Kweon
Winter Conference on Applications of Computer Vision (WACV) 2024 / 01
395. Simple Techniques are Sufficient for Boosting Adversarial Transferability
Chaoning Zhang, Philipp Benz, Adil Karjauv, In So Kweon, Choong Seon Hong
ACM International Conference on Multimedia (MM) 2023 / 10
394. MATE: Masked Autoencoders are Online 3D Test-Time Learners
Inkyu Shin*, Muhammad Jehanzeb Mirza*, Wei Lin*, Andreas Schriebl, Kunyang Sun, Jaesung Choe, Horst Possegger, Mateusz Kozinski, In So Kweon, Kuk-Jin Yoon, and Horst Bischof
IEEE / CVF International Conference on Computer Vision (ICCV) 2023 / 10
393. Spacetime Regularization for Neural Scene Reconstruction
Jaesung Choe, Christopher Choy, Jaesik Park, Anima Anandkumar, and In So Kweon
IEEE / CVF International Conference on Computer Vision (ICCV) 2023 / 10
392. Long-range Multimodal Pretraining for Movie Understanding
Dawit Mureja Argaw, Fabian Caba Heilbron, Joon-Young Lee, Markus Woodson, and In So Kweon
IEEE / CVF International Conference on Computer Vision (ICCV) 2023 / 10
391. ConvNeXt V2: Co-designing and Scaling ConvNets with Masked Autoencoders
Sanghyun Woo, Shoubhik Debnath, Ronghang Hu, Xinlei Chen, Zhuang Liu, In So Kweon, Saining Xie
Computer Vision and Pattern Recognition, CVPR 2023 / 06
390. Single View Scene Scale Estimation using Scale Field
Byeong-Uk Lee, Jianming Zhang, Yannick Hold-Geoffroy, In So Kweon
Computer Vision and Pattern Recognition, CVPR 2023 / 06
389. Deep Depth Estimation From Thermal Image
Ukcheol Shin, Jinsun Park, In So Kweon
Computer Vision and Pattern Recognition, CVPR 2023 / 06
388. Mask-guided Matting in the Wild
Kwanyong Park, Sanghyun Woo, Seoung Wug Oh, In So Kweon, Joon-Young Lee
Computer Vision and Pattern Recognition, CVPR 2023 / 06
387. Generative Bias for Robust Visual Question Answering
Jae Won Cho, Dong-Jin Kim, Hyeonggon Ryu, In So Kweon
Computer Vision and Pattern Recognition, CVPR 2023 / 06
386. TTA-COPE: Test-Time Adaptation for Category-Level Object Pose Estimation
Taeyeop Lee, Jonathan Tremblay, Valts Blukis, Bowen Wen, Byeong-Uk Lee, Inkyu Shin, Stan Birchfield, In So Kweon, Kuk-Jin Yoon
Computer Vision and Pattern Recognition, CVPR 2023 / 06
385. Memory-Efficient Continual Test-time Adaptation via Self-distilled Regularization
Junha Song, Jungsoo Lee, In So Kweon, Sungha Choi
Computer Vision and Pattern Recognition, CVPR 2023 / 06
384. Self-supervised Monocular Depth Estimation from Thermal Images via Adversarial Multi-spectral Adaptation
Ukcheol Shin, Kwanyong Park, Byeong-Uk Lee, Kyunghyun Lee, In So Kweon
IEEE/CVF Winter Conference on Applications of Computer Vision (WACV) 2023 / 01
383. Signing Outside the Studio: Benchmarking Background Robustness for Continuous Sign Language Recognition
Youngjoon Jang, Youngtaek Oh, Jae Won Cho, Dong-Jin Kim, Joon Son Chung, In So Kweon
British Machine Vision Conference (BMVC) 2022 / 11
382. PointMixer: MLP-Mixer for Point Cloud Understanding
Jaesung Choe*, Chunghyun Park*, Francois Rameau, Jaesik Park, In So Kweon
European Conference on Computer Vision (ECCV) 2022 / 10
381. Facial Depth and Normal Estimation using Single Dual-Pixel Camera
Minjun Kang, Jaesung Choe, Hyowon Ha, Hae-Gon Jeon, Sunghoon Im, In So Kweon, Kuk-Jin Yoon
European Conference on Computer Vision (ECCV) 2022 / 10
380. Fast Adversarial Contrastive Learning for Self-supervised Adversarial Robustness
Chaoning Zhang, Kang Zhang, Chenshuang Zhang, Axi Niu, Jiu Feng, Chang D. Yoo, In So Kweon
European Conference on Computer Vision (ECCV) 2022 / 10
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