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Datadriven Remaining Useful Life Prognosis Techniques Stochastic Models Methods And Applications 1st Edition Xiaosheng Si

  • SKU: BELL-5842554
Datadriven Remaining Useful Life Prognosis Techniques Stochastic Models Methods And Applications 1st Edition Xiaosheng Si
$ 31.00 $ 45.00 (-31%)

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Datadriven Remaining Useful Life Prognosis Techniques Stochastic Models Methods And Applications 1st Edition Xiaosheng Si instant download after payment.

Publisher: Springer-Verlag Berlin Heidelberg
File Extension: PDF
File size: 15.49 MB
Author: Xiao-Sheng Si, Zheng-Xin Zhang, Chang-Hua Hu (auth.)
ISBN: 9783662540282, 9783662540305, 3662540282, 3662540304
Language: English
Year: 2017
Edition: 1

Product desciption

Datadriven Remaining Useful Life Prognosis Techniques Stochastic Models Methods And Applications 1st Edition Xiaosheng Si by Xiao-sheng Si, Zheng-xin Zhang, Chang-hua Hu (auth.) 9783662540282, 9783662540305, 3662540282, 3662540304 instant download after payment.

This book introduces data-driven remaining useful life prognosis techniques, and shows how to utilize the condition monitoring data to predict the remaining useful life of stochastic degrading systems and to schedule maintenance and logistics plans. It is also the first book that describes the basic data-driven remaining useful life prognosis theory systematically and in detail.

The emphasis of the book is on the stochastic models, methods and applications employed in remaining useful life prognosis. It includes a wealth of degradation monitoring experiment data, practical prognosis methods for remaining useful life in various cases, and a series of applications incorporated into prognostic information in decision-making, such as maintenance-related decisions and ordering spare parts. It also highlights the latest advances in data-driven remaining useful life prognosis techniques, especially in the contexts of adaptive prognosis for linear stochastic degrading systems, nonlinear degradation modeling based prognosis, residual storage life prognosis, and prognostic information-based decision-making.

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