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Computer Vision – ECCV 2022

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Cover of 'Computer Vision – ECCV 2022'

Table of Contents

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    Book Overview
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    Chapter 1 GOCA: Guided Online Cluster Assignment for Self-supervised Video Representation Learning
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    Chapter 2 Constrained Mean Shift Using Distant yet Related Neighbors for Representation Learning
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    Chapter 3 Revisiting the Critical Factors of Augmentation-Invariant Representation Learning
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    Chapter 4 CA-SSL: Class-Agnostic Semi-Supervised Learning for Detection and Segmentation
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    Chapter 5 Dual Adaptive Transformations for Weakly Supervised Point Cloud Segmentation
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    Chapter 6 Semantic-Aware Fine-Grained Correspondence
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    Chapter 7 Self-Supervised Classification Network
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    Chapter 8 Data Invariants to Understand Unsupervised Out-of-Distribution Detection
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    Chapter 9 Domain Invariant Masked Autoencoders for Self-supervised Learning from Multi-domains
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    Chapter 10 Semi-supervised Object Detection via VC Learning
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    Chapter 11 Completely Self-supervised Crowd Counting via Distribution Matching
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    Chapter 12 Coarse-To-Fine Incremental Few-Shot Learning
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    Chapter 13 Learning Unbiased Transferability for Domain Adaptation by Uncertainty Modeling
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    Chapter 14 Learn2Augment: Learning to Composite Videos for Data Augmentation in Action Recognition
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    Chapter 15 CYBORGS: Contrastively Bootstrapping Object Representations by Grounding in Segmentation
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    Chapter 16 PSS: Progressive Sample Selection for Open-World Visual Representation Learning
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    Chapter 17 Improving Self-supervised Lightweight Model Learning via Hard-Aware Metric Distillation
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    Chapter 18 Object Discovery via Contrastive Learning for Weakly Supervised Object Detection
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    Chapter 19 Stochastic Consensus: Enhancing Semi-Supervised Learning with Consistency of Stochastic Classifiers
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    Chapter 20 DiffuseMorph: Unsupervised Deformable Image Registration Using Diffusion Model
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    Chapter 21 Semi-Leak: Membership Inference Attacks Against Semi-supervised Learning
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    Chapter 22 OpenLDN: Learning to Discover Novel Classes for Open-World Semi-Supervised Learning
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    Chapter 23 Embedding Contrastive Unsupervised Features to Cluster In- And Out-of-Distribution Noise in Corrupted Image Datasets
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    Chapter 24 Unsupervised Few-Shot Image Classification by Learning Features into Clustering Space
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    Chapter 25 Towards Realistic Semi-supervised Learning
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    Chapter 26 Masked Siamese Networks for Label-Efficient Learning
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    Chapter 27 Natural Synthetic Anomalies for Self-supervised Anomaly Detection and Localization
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    Chapter 28 Understanding Collapse in Non-contrastive Siamese Representation Learning
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    Chapter 29 Federated Self-supervised Learning for Video Understanding
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    Chapter 30 Towards Efficient and Effective Self-supervised Learning of Visual Representations
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    Chapter 31 DSR – A Dual Subspace Re-Projection Network for Surface Anomaly Detection
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    Chapter 32 PseudoAugment: Learning to Use Unlabeled Data for Data Augmentation in Point Clouds
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    Chapter 33 MVSTER: Epipolar Transformer for Efficient Multi-view Stereo
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    Chapter 34 RelPose: Predicting Probabilistic Relative Rotation for Single Objects in the Wild
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    Chapter 35 R2L: Distilling Neural Radiance Field to Neural Light Field for Efficient Novel View Synthesis
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    Chapter 36 KD-MVS: Knowledge Distillation Based Self-supervised Learning for Multi-view Stereo
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    Chapter 37 SALVe: Semantic Alignment Verification for Floorplan Reconstruction from Sparse Panoramas
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    Chapter 38 RC-MVSNet: Unsupervised Multi-View Stereo with Neural Rendering
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    Chapter 39 Box2Mask: Weakly Supervised 3D Semantic Instance Segmentation using Bounding Boxes
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    Chapter 40 NeILF: Neural Incident Light Field for Physically-based Material Estimation
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    Chapter 41 ARF: Artistic Radiance Fields
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    Chapter 42 Multiview Stereo with Cascaded Epipolar RAFT
Attention for Chapter 39: Box2Mask: Weakly Supervised 3D Semantic Instance Segmentation using Bounding Boxes
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Chapter title
Box2Mask: Weakly Supervised 3D Semantic Instance Segmentation using Bounding Boxes
Chapter number 39
Book title
Computer Vision – ECCV 2022
Published by
Springer, Cham, January 2022
DOI 10.1007/978-3-031-19821-2_39
Book ISBNs
978-3-03-119820-5, 978-3-03-119821-2
Authors

Chibane, Julian, Engelmann, Francis, Anh Tran, Tuan, Pons-Moll, Gerard

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Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 18 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 18 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 5 28%
Student > Bachelor 3 17%
Student > Master 3 17%
Student > Postgraduate 2 11%
Student > Doctoral Student 1 6%
Other 1 6%
Unknown 3 17%
Readers by discipline Count As %
Computer Science 12 67%
Earth and Planetary Sciences 1 6%
Neuroscience 1 6%
Unknown 4 22%