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dc.contributor.editorLi, Yongbo
dc.contributor.editorGu, Fengshou
dc.contributor.editorLiang, Xihui
dc.date.accessioned2022-05-06T11:26:53Z
dc.date.available2022-05-06T11:26:53Z
dc.date.issued2022
dc.identifierONIX_20220506_9783036532080_152
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/81086
dc.description.abstractCondition monitoring of machinery is one of the most important aspects of many modern industries. With the rapid advancement of science and technology, machines are becoming increasingly complex. Moreover, an exponential increase of demand is leading an increasing requirement of machine output. As a result, in most modern industries, machines have to work for 24 hours a day. All these factors are leading to the deterioration of machine health in a higher rate than before. Breakdown of the key components of a machine such as bearing, gearbox or rollers can cause a catastrophic effect both in terms of financial and human costs. In this perspective, it is important not only to detect the fault at its earliest point of inception but necessary to design the overall monitoring process, such as fault classification, fault severity assessment and remaining useful life (RUL) prediction for better planning of the maintenance schedule. Information theory is one of the pioneer contributions of modern science that has evolved into various forms and algorithms over time. Due to its ability to address the non-linearity and non-stationarity of machine health deterioration, it has become a popular choice among researchers. Information theory is an effective technique for extracting features of machines under different health conditions. In this context, this book discusses the potential applications, research results and latest developments of information theory-based condition monitoring of machineries.
dc.languageEnglish
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issuesen_US
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issues::TBX History of engineering and technologyen_US
dc.subject.otherfault detection
dc.subject.otherdeep learning
dc.subject.othertransfer learning
dc.subject.otheranomaly detection
dc.subject.otherbearing
dc.subject.otherwind turbines
dc.subject.othermisalignment
dc.subject.otherfault diagnosis
dc.subject.otherinformation fusion
dc.subject.otherimproved artificial bee colony algorithm
dc.subject.otherLSSVM
dc.subject.otherD–S evidence theory
dc.subject.otheroptimal bandwidth
dc.subject.otherkernel density estimation
dc.subject.otherJS divergence
dc.subject.otherdomain adaptation
dc.subject.otherpartial transfer
dc.subject.othersubdomain
dc.subject.otherrotating machinery
dc.subject.othergearbox
dc.subject.othersignal interception
dc.subject.otherpeak extraction
dc.subject.othercubic spline interpolation envelope
dc.subject.othercombined fault diagnosis
dc.subject.otherempirical wavelet transform
dc.subject.othergrey wolf optimizer
dc.subject.otherlow pass FIR filter
dc.subject.othersupport vector machine
dc.subject.othersatellite momentum wheel
dc.subject.otherHuffman-multi-scale entropy (HMSE)
dc.subject.othersupport vector machine (SVM)
dc.subject.otheradaptive particle swarm optimization (APSO)
dc.subject.otherrail surface defect detection
dc.subject.othermachine vision
dc.subject.otherYOLOv4
dc.subject.otherMobileNetV3
dc.subject.othermulti-source heterogeneous fusion
dc.subject.othern/a
dc.titleInformation Theory and Its Application in Machine Condition Monitoring
dc.typebook
oapen.identifier.doi10.3390/books978-3-0365-3209-7
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783036532080
oapen.relation.isbn9783036532097
oapen.pages194
oapen.place.publicationBasel


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