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Elementary Differential Equations with Boundary Value Problems (6th Edition)

Elementary Differential Equations with Boundary Value Problems (6th Edition)

Elementary Differential Equations with Boundary Value Problems (6th Edition)
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Elementary Differential Equations with Boundary Value Problems (6th Edition) Hardback - 2007 - 6th Edition

by Edwards, C. Henry; Penney, David E

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Pearson. 6. Acceptable. The item might be beaten up but readable. May contain markings or highlighting, as well as stains, bent corners, or any other major defect, but the text is not obscured in any way.
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Details

  • Title Elementary Differential Equations with Boundary Value Problems (6th Edition)
  • Author Edwards, C. Henry; Penney, David E
  • Binding Hardback
  • Edition number 6th
  • Edition 6
  • Condition Used - Acceptable
  • Pages 760
  • Volumes 1
  • Language ENG
  • Publisher Pearson, Lebanon, Indiana, U.S.A.
  • Publication date December 10, 2007
  • Illustrated Yes
  • Bookseller's Inventory # 0136006132-7-1
  • ISBN 9780136006138 / 0136006132
  • Weight 3.41 lbs (1.55 kg)
  • Dimensions 10.28 x 8.2 x 1.34 in (26.11 x 20.83 x 3.40 cm)
  • Category Mathematics
  • Library of Congress subjects Differential equations, Boundary value problems
  • Library of Congress Catalogue Number 2008274390
  • Dewey Decimal Code 515.35
  • Quantity available 2

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Reader reviews for Elementary Differential Equations with Boundary Value Problems (6th Edition)

From the publisher

For briefer traditional courses in elementary differential equations that science, engineering, and mathematics students take following calculus.

The Sixth Edition of this widely adopted book remains the same classic differential equations text it's always been, but has been polished and sharpened to serve both instructors and students even more effectively.Edwards and Penney teach students to first solve those differential equations that have the most frequent and interesting applications. Precise and clear-cut statements of fundamental existence and uniqueness theorems allow understanding of their role in this subject. A strong numerical approach emphasizes that the effective and reliable use of numerical methods often requires preliminary analysis using standard elementary techniques.

About the author

C. Henry Edwards is emeritus professor of mathematics at the University of Georgia. He earned his Ph.D. at the University of Tennessee in 1960, and recently retired after 40 years of classroom teaching (including calculus or differential equations almost every term) at the universities of Tennessee, Wisconsin, and Georgia, with a brief interlude at the Institute for Advanced Study (Princeton) as an Alfred P. Sloan Research Fellow. He has received numerous teaching awards, including the University of Georgia's honoratus medal in 1983 (for sustained excellence in honors teaching), its Josiah Meigs award in 1991 (the institution's highest award for teaching), and the 1997 statewide Georgia Regents award for research university faculty teaching excellence. His scholarly career has ranged from research and dissertation direction in topology to the history of mathematics to computing and technology in the teaching and applications of mathematics. In addition to being author or co-author of calculus, advanced calculus, linear algebra, and differential equations textbooks, he is well-known to calculus instructors as author of The Historical Development of the Calculus (Springer-Verlag, 1979). During the 1990s he served as a principal investigator on three NSF-supported projects: (1) A school mathematics project including Maple for beginning algebra students, (2) A Calculus-with-Mathematica program, and (3) A MATLAB-based computer lab project for numerical analysis and differential equations students.

David E. Penney, University of Georgia, completed his Ph.D. at Tulane University in 1965 (under the direction of Prof. L. Bruce Treybig) while teaching at the University of New Orleans. Earlier he had worked in experimental biophysics at Tulane University and the Veteran's Administration Hospital in New Orleans under the direction of Robert Dixon McAfee, where Dr. McAfee's research team's primary focus was on the active transport of sodium ions by biological membranes. Penney's primary contribution here was the development of a mathematical model (using simultaneous ordinary differential equations) for the metabolic phenomena regulating such transport, with potential future applications in kidney physiology, management of hypertension, and treatment of congestive heart failure. He also designed and constructed servomechanisms for the accurate monitoring of ion transport, a phenomenon involving the measurement of potentials in microvolts at impedances of millions of megohms. Penney began teaching calculus at Tulane in 1957 and taught that course almost every term with enthusiasm and distinction until his retirement at the end of the last millennium. During his tenure at the University of Georgia he received numerous University-wide teaching awards as well as directing several doctoral dissertations and seven undergraduate research projects. He is the author of research papers in number theory and topology and is the author or co-author of textbooks on calculus, computer programming, differential equations, linear algebra, and liberal arts mathematics.

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