SOTAVerified

Video Semantic Segmentation

The goal of video semantic segmentation is to assign a predefined class to each pixel in all frames of a video. This requires the model not only to predict accurate segmentation masks but also to ensure that these masks remain temporally consistent across frames. This task has broad applications in areas such as autonomous driving, medical video analysis, and AR/VR.

Papers

Showing 701725 of 895 papers

TitleStatusHype
Fast Video Object Segmentation via Mask Transfer Network0
In defense of OSVOS0
RANet: Ranking Attention Network for Fast Video Object SegmentationCode0
An Empirical Study of Propagation-based Methods for Video Object Segmentation0
An Efficient 3D CNN for Action/Object Segmentation in Video0
Global Optimality Guarantees for Nonconvex Unsupervised Video Segmentation0
Spacetime Graph Optimization for Video Object Segmentation0
Dynamic Face Video Segmentation via Reinforcement Learning0
Proposal, Tracking and Segmentation (PTS): A Cascaded Network for Video Object SegmentationCode0
Key Instance Selection for Unsupervised Video Object Segmentation0
Learning Unsupervised Video Object Segmentation Through Visual AttentionCode0
SAIL-VOS: Semantic Amodal Instance Level Video Object Segmentation - A Synthetic Dataset and Baselines0
Object Instance Annotation With Deep Extreme Level Set EvolutionCode0
OVSNet : Towards One-Pass Real-Time Video Object Segmentation0
Fully Hyperbolic Convolutional Neural Networks0
U-Net Based Multi-instance Video Object Segmentation0
Self-supervised Learning for Video Correspondence FlowCode0
The 2019 DAVIS Challenge on VOS: Unsupervised Multi-Object Segmentation0
On guiding video object segmentation0
Fast User-Guided Video Object Segmentation by Interaction-and-Propagation NetworksCode0
Video Object Segmentation and Tracking: A Survey0
Discriminative Online Learning for Fast Video Object Segmentation0
MHP-VOS: Multiple Hypotheses Propagation for Video Object SegmentationCode0
VORNet: Spatio-temporally Consistent Video Inpainting for Object Removal0
MAIN: Multi-Attention Instance Network for Video Segmentation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1TMANet-50mIoU80.3Unverified
2TDNet-50 [9]mIoU79.9Unverified
3DeltaDist-DDRNet-39mIoU79.9Unverified
4PSPNet-101 [20]mIoU79.7Unverified
5PSPNet-50 [20]mIoU78.1Unverified
6LVS [12]mIoU76.8Unverified
7GRFP [15]mIoU73.6Unverified
8FCN-50 [14]mIoU70.1Unverified
9DFF [22]mIoU69.2Unverified
#ModelMetricClaimedVerifiedStatus
1TMANet-50Mean IoU76.5Unverified
2ETC-MobileNetMean IoU76.3Unverified
3TDNet-50Mean IoU76.2Unverified
4PSPNet-50Mean IoU76Unverified
5NetwarpMean IoU74.7Unverified
6GRFPMean IoU67.1Unverified
#ModelMetricClaimedVerifiedStatus
1DVIS++(VIT-L)mIoU63.8Unverified
2UniVS(Swin-L)mIoU59.8Unverified
3Tube-Link(Swin-large)mIoU59.6Unverified
4MRCFA(MiT-B5)mIoU49.9Unverified
5CFFM(MiT-B5)mIoU49.3Unverified
#ModelMetricClaimedVerifiedStatus
1WaSR-T (ResNet-101)Q60.1Unverified
2TMANet (ResNet-50)Q57.5Unverified
3CSANet (ResNet-101)Q49.1Unverified
#ModelMetricClaimedVerifiedStatus
1MVNet(DeepLabV3)mIoU54.52Unverified
2MVNet(PSPNet)mIoU54.36Unverified
3MVNet(FCN)mIoU53.9Unverified