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 576600 of 895 papers

TitleStatusHype
Object discovery and representation networksCode0
Revisiting Click-based Interactive Video Object SegmentationCode0
Efficient Video Segmentation Models with Per-frame Inference0
Box Supervised Video Segmentation Proposal NetworkCode0
Borrowing from yourself: Faster future video segmentation with partial channel updateCode0
Semantically Video Coding: Instill Static-Dynamic Clues into Structured Bitstream for AI Tasks0
Learning Pixel Trajectories with Multiscale Contrastive Random Walks0
YouMVOS: An Actor-Centric Multi-Shot Video Object Segmentation Dataset0
Multi-Level Representation Learning With Semantic Alignment for Referring Video Object Segmentation0
Real-Time, Accurate, and Consistent Video Semantic Segmentation via Unsupervised Adaptation and Cross-Unit Deployment on Mobile Device0
Siamese Network with Interactive Transformer for Video Object SegmentationCode0
Temporally Constrained Neural Networks (TCNN): A framework for semi-supervised video semantic segmentation0
Iteratively Selecting an Easy Reference Frame Makes Unsupervised Video Object Segmentation Easier0
A Discriminative Single-Shot Segmentation Network for Visual Object Tracking0
MUNet: Motion Uncertainty-aware Semi-supervised Video Object Segmentation0
Learning To Segment Dominant Object Motion From Watching Videos0
Hierarchical interaction network for video object segmentation from referring expressions0
FlowVOS: Weakly-Supervised Visual Warping for Detail-Preserving and Temporally Consistent Single-Shot Video Object Segmentation0
Video Salient Object Detection via Contrastive Features and Attention Modules0
SiamPolar: Semi-supervised Realtime Video Object Segmentation with Polar Representation0
Perceptual Consistency in Video Segmentation0
Multi-Object Tracking and Segmentation with a Space-Time Memory Network0
Temporally stable video segmentation without video annotations0
ViSeRet: A simple yet effective approach to moment retrieval via fine-grained video segmentation0
Space Time Recurrent Memory Network0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1TMANet-50mIoU80.3Unverified
2DeltaDist-DDRNet-39mIoU79.9Unverified
3TDNet-50 [9]mIoU79.9Unverified
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