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Superpixels

Superpixel techniques segment an image into regions based on similarity measures that utilize perceptual features, effectively grouping pixels that appear similar. The motivation behind this approach is to generate regions that provide meaningful descriptions while significantly reducing the data volume compared to using every individual pixel. By decreasing the number of primitives, these techniques reduce redundancy and simplify the complexity of recognition tasks. Superpixels replace the rigid structure of individual pixels with delineated regions that preserve meaningful content in the image, thereby aiding the interpretation of the scene’s structure and simplifying subsequent processing tasks. Generally, superpixel techniques rely on measures that evaluate color similarities and the shapes of regions, incorporating edges or significant changes in intensity to define these regions.

Papers

Showing 251275 of 371 papers

TitleStatusHype
Unsupervised Video Segmentation via Spatio-Temporally Nonlocal Appearance Learning0
USegMix: Unsupervised Segment Mix for Efficient Data Augmentation in Pathology Images0
Vessel Segmentation and Catheter Detection in X-Ray Angiograms Using Superpixels0
Visual Chunking: A List Prediction Framework for Region-Based Object Detection0
Visual Object Tracking by Segmentation with Graph Convolutional Network0
Voxel Cloud Connectivity Segmentation - Supervoxels for Point Clouds0
Warping Residual Based Image Stitching for Large Parallax0
Weakly-Supervised Dual Clustering for Image Semantic Segmentation0
Weakly Supervised Image Annotation and Segmentation with Objects and Attributes0
Weakly Supervised Learning for Salient Object Detection0
What is a salient object? A dataset and a baseline model for salient object detection0
What Properties are Desirable from an Electron Microscopy Segmentation Algorithm0
3D Based Landmark Tracker Using Superpixels Based Segmentation for Neuroscience and Biomechanics Studies0
YouTube-Occ: Learning Indoor 3D Semantic Occupancy Prediction from YouTube Videos0
A Blind Multiscale Spatial Regularization Framework for Kernel-based Spectral Unmixing0
A Bottom-Up Approach for Automatic Pancreas Segmentation in Abdominal CT Scans0
A Bottom-up Approach for Pancreas Segmentation using Cascaded Superpixels and (Deep) Image Patch Labeling0
Action recognition in still images by latent superpixel classification0
Adaptive strategy for superpixel-based region-growing image segmentation0
A Data Dependent Multiscale Model for Hyperspectral Unmixing With Spectral Variability0
A Deep Learning Based Fast Image Saliency Detection Algorithm0
A differentiable Gaussian Prototype Layer for explainable Segmentation0
A Feature Clustering Approach Based on Histogram of Oriented Optical Flow and Superpixels0
GASP, a generalized framework for agglomerative clustering of signed graphs and its application to Instance Segmentation0
A Higher-Order CRF Model for Road Network Extraction0
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