Convolutional Neural Network for Segmentation of Single Cell Gel Electrophoresis Assay

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1 Citazioni (Scopus)

Abstract

The single cell gel electrophoresis assay, which is also referred to as the comet assay, is a quantitative method by which visual evidence of DNA damage in individual cells may be measured. Since this assay is sensitive and simple to perform, it is widely used in several areas including human biomonitoring, genotoxicology, and ecological monitoring. In the last decades, various computer systems have implemented segmentation algorithms based on traditional threshold techniques rather than efficient deep learning methods to automatically identify cells in comet assay output images. This paper presents a fully convolutional neural network based system, named U-NetComet, to automate comets segmentation, minimizing user interaction and providing reproducible measurements. A comparison of our method with a commercial system has been performed, and results showed that our system is more efficient and reliable.

Lingua originaleEnglish
Titolo della pubblicazione ospiteIntelligent Computing Systems - 4th International Symposium, ISICS 2022, Proceedings
EditorCarlos Brito-Loeza, Anabel Martin-Gonzalez, Victor Castañeda-Zeman, Asad Safi
EditoreSpringer Science and Business Media Deutschland GmbH
Pagine57-68
Numero di pagine12
ISBN (stampa)9783030984564
DOI
Stato di pubblicazionePublished - 1 gen 2022
Evento4th International Symposium on Intelligent Computing Systems, ISICS 2022 - Santiago
Durata: 23 mar 202225 mar 2022

Serie di pubblicazioni

NomeCommunications in Computer and Information Science
Volume1569 CCIS
ISSN (stampa)1865-0929
ISSN (elettronico)1865-0937

Conference

Conference4th International Symposium on Intelligent Computing Systems, ISICS 2022
Paese/TerritorioChile
CittàSantiago
Periodo23/03/2225/03/22

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