JOURNAL ARTICLE

Dermoscopic interest point detector and descriptor

Abstract

Dermoscopy is an imaging technique dermatologists use to better visualize pigmented skin lesions (PSLs) and determine their malignancy. Dermoscopic features revealed by this technique have been shown to correlate with histopathology features, and are used as diagnosis indicators by many dermatologists. Hence, automated detection and classification of these features is the first step toward computer-aided diagnosis of melanoma in dermoscopy. In this paper, we present a novel scale- and rotation-invariant feature detector and descriptor specifically designed as a general visual vocabulary of dermoscopic features. We compare our feature detector and descriptor to the popular interest point detectors in the vision community, namely, SIFT, and a more recent fast variant, SURF. We demonstrate that our feature detector is more discriminative and reliable for dermoscopic features.

Keywords:
Scale-invariant feature transform Artificial intelligence Discriminative model Detector Computer science Pattern recognition (psychology) Feature (linguistics) Computer vision Vocabulary Feature extraction Interest point detection Feature vector Point of interest Point (geometry) Feature detection (computer vision) Mathematics Image processing Image (mathematics)

Metrics

25
Cited By
0.50
FWCI (Field Weighted Citation Impact)
13
Refs
0.66
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Cutaneous Melanoma Detection and Management
Health Sciences →  Medicine →  Oncology
AI in cancer detection
Physical Sciences →  Computer Science →  Artificial Intelligence
Remote Sensing and LiDAR Applications
Physical Sciences →  Environmental Science →  Environmental Engineering

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