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Open AccessJournal ArticleDOI

Iterative Tensor Voting for Perceptual Grouping of Ill-Defined Curvilinear Structures

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TLDR
A novel approach is proposed for perceptual grouping and localization of ill-defined curvilinear structures by gradually shifting from an exploratory to an exploitative mode and compared to prior methods on synthetic and annotated real data, showing high precision rates.
Abstract
In this paper, a novel approach is proposed for perceptual grouping and localization of ill-defined curvilinear structures. Our approach builds upon the tensor voting and the iterative voting frameworks. Its efficacy lies on iterative refinements of curvilinear structures by gradually shifting from an exploratory to an exploitative mode. Such a mode shifting is achieved by reducing the aperture of the tensor voting fields, which is shown to improve curve grouping and inference by enhancing the concentration of the votes over promising, salient structures. The proposed technique is validated on delineating adherens junctions that are imaged through fluorescence microscopy. However, the method is also applicable for screening other organisms based on characteristics of their cell wall structures. Adherens junctions maintain tissue structural integrity and cell-cell interactions. Visually, they exhibit fibrous patterns that may be diffused, heterogeneous in fluorescence intensity, or punctate and frequently perceptual. Besides the application to real data, the proposed method is compared to prior methods on synthetic and annotated real data, showing high precision rates.

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Journal ArticleDOI

Automated Road Information Extraction From Mobile Laser Scanning Data

TL;DR: This paper describes the development of automated algorithms for extracting road features (road surfaces, road markings, and pavement cracks) from MLS point cloud data and concludes that MLS is a reliable and cost-effective alternative for rapid road inspection.
Journal ArticleDOI

Iterative Tensor Voting for Pavement Crack Extraction Using Mobile Laser Scanning Data

TL;DR: This paper presents a novel framework, called ITVCrack, for automated crack extraction based on iterative tensor voting (ITV), from high-density point clouds collected by a mobile laser scanning system, demonstrating much better crack extraction performance when quantitatively compared to existing methods on synthetic data and pavement images.
Journal ArticleDOI

Using Mobile LiDAR Data for Rapidly Updating Road Markings

TL;DR: Weighted neighboring difference histogram (WNDH)-based dynamic thresholding and multiscale tensor voting (MSTV) are proposed to segment and extract road markings from the noisy corrupted GRF images.
Journal ArticleDOI

A multi-scale tensor voting approach for small retinal vessel segmentation in high resolution fundus images

TL;DR: A new hybrid method for the segmentation of the smallest vessels is proposed, which improves the detection of the vasculature by 7.8% against the original multi-scale line detection method.
Journal ArticleDOI

Morphometic Analysis of TCGA Glioblastoma Multiforme

TL;DR: A tumor-centric analytical pipeline to process tissue sections stained with hematoxylin and eosin for visualization and cell-by-cell quantitative analysis is developed, and one subtype, corresponding to the extreme high cellularity, has shown to be a predictor of survival as a result of a more aggressive therapeutic regime.
References
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Laws of organization in perceptual forms.

TL;DR: Theoretically I might say there were 327 brightnesses and nuances of colour, and do I have "327"? No. It is impossible to achieve "327 " as such.
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Early processing of visual information

TL;DR: It is argued that "non-attentive" vision is in practice implemented by these grouping operations and first order discriminations acting on the primal sketch, and implies that such knowledge should influence the control of, rather than interfering with, the actual data-processing that is taking place lower down.
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