An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip

Abstract Conventional biomedical analysers are replaced by digital microfluidic biochips and they are adequate to integrate different biomedical functions, essential for diverse bioassay operations. From the last decade, microfluidic biochips are getting plenty of acceptances in the field of miscell...

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Autores principales: Basudev Saha, Mukta Majumder
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Lenguaje:EN
Publicado: Wiley 2021
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Acceso en línea:https://doaj.org/article/03205e423b12488998420d3f981d3459
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spelling oai:doaj.org-article:03205e423b12488998420d3f981d34592021-11-17T13:28:44ZAn optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip1751-861X1751-860110.1049/cdt2.12004https://doaj.org/article/03205e423b12488998420d3f981d34592021-01-01T00:00:00Zhttps://doi.org/10.1049/cdt2.12004https://doaj.org/toc/1751-8601https://doaj.org/toc/1751-861XAbstract Conventional biomedical analysers are replaced by digital microfluidic biochips and they are adequate to integrate different biomedical functions, essential for diverse bioassay operations. From the last decade, microfluidic biochips are getting plenty of acceptances in the field of miscellaneous healthcare sectors like DNA analysis, drug discovery and clinical diagnosis. These devices are also bearing a vital role in the area of safety critical applications such as food safety testing, air quality monitoring etc. As these devices are used in safety critical applications, clinical diagnosis and real‐time biomolecular assay operations, these must have properties like precision, reliability and robustness. To accept it for discriminating purposes, the microfluidic device must endorse its preciseness and strength by following sublime testing strategy. Here, an optimized droplet traversal technique is proposed to investigate the multiple defective electrodes of a digital microfluidic biochip by embedding boundary cum row traversal and KNIGHT traversal procedure (based on the famous Knight Tour Problem). The proposed approach also enumerates the traversal time for a fault‐free biochip. In addition to identifying the faulty electrodes, a Module Sequencing Graph based reconfiguration technique is proposed here to reinstate the device for normal bioassay operation.Basudev SahaMukta MajumderWileyarticleComputer engineering. Computer hardwareTK7885-7895Electronic computers. Computer scienceQA75.5-76.95ENIET Computers & Digital Techniques, Vol 15, Iss 1, Pp 1-11 (2021)
institution DOAJ
collection DOAJ
language EN
topic Computer engineering. Computer hardware
TK7885-7895
Electronic computers. Computer science
QA75.5-76.95
spellingShingle Computer engineering. Computer hardware
TK7885-7895
Electronic computers. Computer science
QA75.5-76.95
Basudev Saha
Mukta Majumder
An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip
description Abstract Conventional biomedical analysers are replaced by digital microfluidic biochips and they are adequate to integrate different biomedical functions, essential for diverse bioassay operations. From the last decade, microfluidic biochips are getting plenty of acceptances in the field of miscellaneous healthcare sectors like DNA analysis, drug discovery and clinical diagnosis. These devices are also bearing a vital role in the area of safety critical applications such as food safety testing, air quality monitoring etc. As these devices are used in safety critical applications, clinical diagnosis and real‐time biomolecular assay operations, these must have properties like precision, reliability and robustness. To accept it for discriminating purposes, the microfluidic device must endorse its preciseness and strength by following sublime testing strategy. Here, an optimized droplet traversal technique is proposed to investigate the multiple defective electrodes of a digital microfluidic biochip by embedding boundary cum row traversal and KNIGHT traversal procedure (based on the famous Knight Tour Problem). The proposed approach also enumerates the traversal time for a fault‐free biochip. In addition to identifying the faulty electrodes, a Module Sequencing Graph based reconfiguration technique is proposed here to reinstate the device for normal bioassay operation.
format article
author Basudev Saha
Mukta Majumder
author_facet Basudev Saha
Mukta Majumder
author_sort Basudev Saha
title An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip
title_short An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip
title_full An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip
title_fullStr An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip
title_full_unstemmed An optimized knight traversal technique to detect multiple faults and Module Sequence Graph based reconfiguration of microfluidic biochip
title_sort optimized knight traversal technique to detect multiple faults and module sequence graph based reconfiguration of microfluidic biochip
publisher Wiley
publishDate 2021
url https://doaj.org/article/03205e423b12488998420d3f981d3459
work_keys_str_mv AT basudevsaha anoptimizedknighttraversaltechniquetodetectmultiplefaultsandmodulesequencegraphbasedreconfigurationofmicrofluidicbiochip
AT muktamajumder anoptimizedknighttraversaltechniquetodetectmultiplefaultsandmodulesequencegraphbasedreconfigurationofmicrofluidicbiochip
AT basudevsaha optimizedknighttraversaltechniquetodetectmultiplefaultsandmodulesequencegraphbasedreconfigurationofmicrofluidicbiochip
AT muktamajumder optimizedknighttraversaltechniquetodetectmultiplefaultsandmodulesequencegraphbasedreconfigurationofmicrofluidicbiochip
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