The.Hottest

Akhtar S. Khan, Sujian Huang ... 440 pages - Publisher: Wiley; 1st edition (February, 1995) ... Language: English - ISBN-10: 0471310433 - ISBN-13: 978-0471310433 ...

The only modern, up-to-date introduction to plasticity Despite phenomenal progress in plasticity research over the past fifty years, introductory books on plasticity have changed very little. To meet the need for an up-to-date introduction to the field, Akhtar S. Khan and Sujian Huang have written Continuum Theory of Plasticity--a truly modern text which offers a continuum mechanics approach as well as a lucid presentation of the essential classical contributions. The early chapters give the reader a review of elementary concepts of plasticity, the necessary background material on continuum mechanics, and a discussion of the classical theory of plasticity. Recent developments in the field are then explored in sections on the Mroz Multisurface model, the Dafalias and Popov Two Surface model, the non-linear kinematic hardening model, the endochronic theory of plasticity, and numerous topics in finite deformation plasticity theory and strain space formulation for plastic deformation. Final chapters introduce the fundamentals of the micromechanics of plastic deformation and the analytical coupling between deformation of individual crystals and macroscopic material response of the polycrystal aggregate. For graduate students and researchers in engineering mechanics, mechanical, civil, and aerospace engineering, Continuum Theory of Plasticity offers a modern, comprehensive introduction to the entire subject of plasticity. Uses a continuum mechanics approach to understanding and predicting the behavior of solids under deformation stress and strain. Presents a modern viewpoint of plasticity which covers the traditional topics of stress-strain relationships, loading and unloading behavior and the microscopic phenomena that occur during deformation. Features the latest developments in the field. 

Qiang He, Shit-Long Shen ... 298 pages - Publisher: ASCE; (May, 2010) ...
Language: English - ISBN-10: 0784411050 - ISBN-13: 978-0784411056 ...

Geoenvironmental Engineering and Geotechnics: Progress in Modeling and Applications (GSP 204), presents 39 papers that represent the latest developments in the application of soil, rock, and groundwater mechanics in geotechnical engineering modeling and practice including: the relationship between geotechnical engineering and sustainability; new evidence and research into the strength and deformational behavior of soil; and recent advances in characterization and modeling of groundwater flow in geological formations of diverse geotechnical properties. This Geotechnical Special Publication examines these and other important areas of geotechnical engineering using three main categories: Geoenvironmental Engineering, Geotechnics and Seepage and Porous Mechanics. These papers were presented at the GeoShanghai 2010 Conference, sponsored by the Geo-Institute of the American Society of Civil Engineers, held in Shanghai, China, June 35, 2010.

Justin Solomon ... 400 pages - Publisher: CRC Press; (July, 2015) ...
Language: English - ISBN-10: 1482251884 - ISBN-13: 978-1482251883 ... 

Numerical Algorithms: Methods for Computer Vision, Machine Learning, and Graphics presents a new approach to numerical analysis for modern computer scientists. Using examples from a broad base of computational tasks, including data processing, computational photography, and animation, the textbook introduces numerical modeling and algorithmic design from a practical standpoint and provides insight into the theoretical tools needed to support these skills.

The book covers a wide range of topics―from numerical linear algebra to optimization and differential equations―focusing on real-world motivation and unifying themes. It incorporates cases from computer science research and practice, accompanied by highlights from in-depth literature on each subtopic. Comprehensive end-of-chapter exercises encourage critical thinking and build students’ intuition while introducing extensions of the basic material.

The text is designed for advanced undergraduate and beginning graduate students in computer science and related fields with experience in calculus and linear algebra. For students with a background in discrete mathematics, the book includes some reminders of relevant continuous mathematical background.

Robert Y. Liang, Feng Zhang, Ke Yang ... 406 pages - Publisher: ASCE; (May, 2010) ... Language: English - ISBN-10: 0784411069 - ISBN-13: 978-0784411063 ...

This Geotechnical Special Publication, Deep Foundations and Geotechnical In Situ Testing (GSP 205), contains 49 papers examining the areas of deep foundations and in situ geotechnical testing and monitoring techniques. This proceedings offers the latest and most current thinking on topics such as piled raft system and soil-structure interaction; deep foundations; innovative foundations; and in situ testing. These papers were presented at the GeoShanghai 2010 Conference, sponsored by the Geo-Institute of the American Society of Civil Engineers, held in Shanghai, China, June 35, 2010.

Athanasios P. Dedousis, Thomas Bartzanas ... 230 pages - Publisher: Springer; (May, 2012) ...
Language: English - ISBN-10: 3642262449 - ISBN-13: 978-3642262449 ...

The agricultural world has been forced to adapt in recent years to the excessive use of heavy machinery, waste disposal, and the use of agrochemicals. This Soil Biology volume updates readers on several cutting-edge aspects of sustainable soil engineering.

Sergios Theodoridis ... 1062 pages - Publisher: Academic Press; 1st edition (April, 2015) ... Language: English - ISBN-10: 0128015225 - ISBN-13: 978-0128015223 ... 

This tutorial text gives a unifying perspective on machine learning by covering both probabilistic and deterministic approaches -which are based on optimization techniques – together with the Bayesian inference approach, whose essence lies in the use of a hierarchy of probabilistic models. The book presents the major machine learning methods as they have been developed in different disciplines, such as statistics, statistical and adaptive signal processing and computer science. Focusing on the physical reasoning behind the mathematics, all the various methods and techniques are explained in depth, supported by examples and problems, giving an invaluable resource to the student and researcher for understanding and applying machine learning concepts.The book builds carefully from the basic classical methods  to  the most recent trends, with chapters written to be as self-contained as possible, making the text suitable for  different courses: pattern recognition, statistical/adaptive signal processing, statistical/Bayesian learning, as well as short courses on sparse modeling, deep learning, and probabilistic graphical models. All major classical techniques: Mean/Least-Squares regression and filtering, Kalman filtering, stochastic approximation and online learning, Bayesian classification, decision trees, logistic regression and boosting methods. * The latest trends: Sparsity, convex analysis and optimization, online distributed algorithms, learning in RKH spaces, Bayesian inference, graphical and hidden Markov models, particle filtering, deep learning, dictionary learning and latent variables modeling. * Case studies - protein folding prediction, optical character recognition, text authorship identification, fMRI data analysis, change point detection, hyperspectral image unmixing, target localization, channel equalization and echo cancellation, show how the theory can be applied. * MATLAB code for all the main algorithms are available on an accompanying website, enabling the reader to experiment with the code.

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