Fr. 110.00

Mathematical Foundations of System Safety Engineering - A Road Map for the Future

English · Hardback

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Description

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This graduate-level textbook elucidates low-risk and fail-safe systems in mathematical detail.  It addresses, in particular, problems where mission-critical performance is paramount, such as in aircraft, missiles, nuclear reactors and weapons, submarines, and many other types of systems where "failure" can result in overwhelming loss of life and property. The book is divided into four parts: Fundamentals, Electronics, Software, and Dangerous Goods. The first part on Fundamentals addresses general concepts of system safety engineering that are applicable to any type of system.  The second part, Electronics, addresses the detection and correction of electronic hazards.  In particular, the Bent Pin Problem, Sneak Circuit Problem, and related electrical problems are discussed with mathematical precision.  The third part on Software addresses predicting software failure rates as well as detecting and correcting deep software logical flaws (called defects).  Thefourth part on Dangerous Goods presents solutions to three typical industrial chemical problems faced by the system safety engineer during the design, storage, and disposal phases of a dangerous goods' life cycle.
 

List of contents

Introduction.- Decomposition of the Failure Histogram.- Bounding the "Black Swan" Probability.- The Risk Surface.- The Bent Pin Problem-I: Computer Search Methods.- The Bent Pin Problem-II: Matrix Methods.- The Bent Pin Problem-III: Number Theory Methods.- The Bent Pin Problem-IV: Limit Methods.- The Bent Pin Problem-V: Experimental Methods .- "Sneak Circuits" and Related System Safety Electrical Problems-I: Matrix Methods .- "Sneak Circuits" and Related System Safety Electrical Problems-II: Computer Search.- Methods.- Predicting Software Performance.- Alternative Flowcharts for a Mathematical Analysis of Logic.- Fail-Safe Control Software.- Design Phase Elimination of Beryllium.- Accelerated Age Testing of Explosives and Propellants.- The Movement of Inorganic Cadmium Through the Environment.- Epilogue .- GLOSSARY.- APPENDIX A "Long Tailed" Distribution.- APPENDIX B.- APPENDIX C.- APPENDIX D.- APPENDIX E.- APPENDIX F.- APPENDIX G.- APPENDIX H.- INDEX.

Summary

This graduate-level textbook elucidates low-risk and fail-safe systems in mathematical detail.  It addresses, in particular, problems where mission-critical performance is paramount, such as in aircraft, missiles, nuclear reactors and weapons, submarines, and many other types of systems where “failure” can result in overwhelming loss of life and property. The book is divided into four parts: Fundamentals, Electronics, Software, and Dangerous Goods. The first part on Fundamentals addresses general concepts of system safety engineering that are applicable to any type of system.  The second part, Electronics, addresses the detection and correction of electronic hazards.  In particular, the Bent Pin Problem, Sneak Circuit Problem, and related electrical problems are discussed with mathematical precision.  The third part on Software addresses predicting software failure rates as well as detecting and correcting deep software logical flaws (called defects).  Thefourth part on Dangerous Goods presents solutions to three typical industrial chemical problems faced by the system safety engineer during the design, storage, and disposal phases of a dangerous goods’ life cycle.
 

Product details

Authors Richard R. Zito
Publisher Springer, Berlin
 
Languages English
Product format Hardback
Released 21.11.2019
 
EAN 9783030262402
ISBN 978-3-0-3026240-2
No. of pages 347
Dimensions 159 mm x 245 mm x 26 mm
Weight 690 g
Illustrations XVI, 347 p. 192 illus., 83 illus. in color.
Subjects Natural sciences, medicine, IT, technology > Physics, astronomy

B, engineering, quality control, Control and Systems Theory, Industrial and Production Engineering, reliability, Systems analysis & design, Engineering mathematics, Maths for engineers, Control engineering, Industrial safety, Quality Control, Reliability, Safety and Risk, Automatic control engineering, Computer system failures, System Performance and Evaluation

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