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dc.contributor.editorLuo, Suhuai
dc.contributor.editorShaukat, Kamran
dc.date.accessioned2023-02-20T16:46:10Z
dc.date.available2023-02-20T16:46:10Z
dc.date.issued2022
dc.identifierONIX_20230220_9783036551166_75
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/97472
dc.description.abstractOver the past decade, computational methods, including machine learning (ML) and deep learning (DL), have been exponentially growing in their development of solutions in various domains, especially medicine, cybersecurity, finance, and education. While these applications of machine learning algorithms have been proven beneficial in various fields, many shortcomings have also been highlighted, such as the lack of benchmark datasets, the inability to learn from small datasets, the cost of architecture, adversarial attacks, and imbalanced datasets. On the other hand, new and emerging algorithms, such as deep learning, one-shot learning, continuous learning, and generative adversarial networks, have successfully solved various tasks in these fields. Therefore, applying these new methods to life-critical missions is crucial, as is measuring these less-traditional algorithms' success when used in these fields.
dc.languageEnglish
dc.subject.classificationthema EDItEUR::U Computing and Information Technologyen_US
dc.subject.otherfintech
dc.subject.otherfinancial technology
dc.subject.otherblockchain
dc.subject.otherdeep learning
dc.subject.otherregtech
dc.subject.otherenvironment
dc.subject.othersocial sciences
dc.subject.othermachine learning
dc.subject.otherlearning analytics
dc.subject.otherstudent field forecasting
dc.subject.otherimbalanced datasets
dc.subject.otherexplainable machine learning
dc.subject.otherintelligent tutoring system
dc.subject.otheradversarial machine learning
dc.subject.othertransfer learning
dc.subject.othercognitive bias
dc.subject.otherstock market
dc.subject.otherbehavioural finance
dc.subject.otherinvestor’s profile
dc.subject.otherTeheran Stock Exchange
dc.subject.otherunsupervised learning
dc.subject.otherclustering
dc.subject.otherbig data frameworks
dc.subject.otherfault tolerance
dc.subject.otherstream processing systems
dc.subject.otherdistributed frameworks
dc.subject.otherSpark
dc.subject.otherHadoop
dc.subject.otherStorm
dc.subject.otherSamza
dc.subject.otherFlink
dc.subject.othercomparative analysis
dc.subject.othera survey
dc.subject.otherdata science
dc.subject.othereducational data mining
dc.subject.othersupervised learning
dc.subject.othersecondary education
dc.subject.otheracademic performance
dc.subject.othertext-to-SQL
dc.subject.othernatural language processing
dc.subject.otherdatabase
dc.subject.othermachine translation
dc.subject.othermedical image segmentation
dc.subject.otherconvolutional neural networks
dc.subject.otherSE block
dc.subject.otherU-net
dc.subject.otherDeepLabV3plus
dc.subject.othercyber-security
dc.subject.othermedical services
dc.subject.othercyber-attacks
dc.subject.otherdata communication
dc.subject.otherdistributed ledger
dc.subject.otheridentity management
dc.subject.otherRAFT
dc.subject.otherHL7
dc.subject.otherelectronic health record
dc.subject.otherHyperledger Composer
dc.subject.othercybersecurity
dc.subject.otherpassword security
dc.subject.otherbrowser security
dc.subject.othersocial media
dc.subject.otherANOVA
dc.subject.otherSPSS
dc.subject.otherinternet of things
dc.subject.othercloud computing
dc.subject.othercomputational models
dc.subject.othermetaheuristics
dc.subject.otherphishing detection
dc.subject.otherwebsite phishing
dc.titleComputational Methods for Medical and Cyber Security
dc.typebook
oapen.identifier.doi10.3390/books978-3-0365-5115-9
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783036551166
oapen.relation.isbn9783036551159
oapen.pages228
oapen.place.publicationBasel


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