Current Practices and Future Trends in Deep Foundations

Current Practices and Future Trends in Deep Foundations
Title Current Practices and Future Trends in Deep Foundations PDF eBook
Author Jerry A. DiMaggio
Publisher
Pages 514
Release 2004
Genre Technology & Engineering
ISBN 9780784407431

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GSP 125 contains 26 papers on state-of-the-art developments in deep foundation collected in honor of George G. Goble, Ph.D., P.E.

An Introduction to Deep Reinforcement Learning

An Introduction to Deep Reinforcement Learning
Title An Introduction to Deep Reinforcement Learning PDF eBook
Author Vincent Francois-Lavet
Publisher Foundations and Trends (R) in Machine Learning
Pages 156
Release 2018-12-20
Genre
ISBN 9781680835380

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Deep reinforcement learning is the combination of reinforcement learning (RL) and deep learning. This field of research has recently been able to solve a wide range of complex decision-making tasks that were previously out of reach for a machine. Deep RL opens up many new applications in domains such as healthcare, robotics, smart grids, finance, and many more. This book provides the reader with a starting point for understanding the topic. Although written at a research level it provides a comprehensive and accessible introduction to deep reinforcement learning models, algorithms and techniques. Particular focus is on the aspects related to generalization and how deep RL can be used for practical applications. Written by recognized experts, this book is an important introduction to Deep Reinforcement Learning for practitioners, researchers and students alike.

Analysis and Design of Shallow and Deep Foundations

Analysis and Design of Shallow and Deep Foundations
Title Analysis and Design of Shallow and Deep Foundations PDF eBook
Author Lymon C. Reese
Publisher John Wiley & Sons
Pages 608
Release 2005-11-25
Genre Technology & Engineering
ISBN 0471431591

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One-of-a-kind coverage on the fundamentals of foundation analysis and design Analysis and Design of Shallow and Deep Foundations is a significant new resource to the engineering principles used in the analysis and design of both shallow and deep, load-bearing foundations for a variety of building and structural types. Its unique presentation focuses on new developments in computer-aided analysis and soil-structure interaction, including foundations as deformable bodies. Written by the world's leading foundation engineers, Analysis and Design of Shallow and Deep Foundations covers everything from soil investigations and loading analysis to major types of foundations and construction methods. It also features: * Coverage on computer-assisted analytical methods, balanced with standard methods such as site visits and the role of engineering geology * Methods for computing the capacity and settlement of both shallow and deep foundations * Field-testing methods and sample case studies, including projects where foundations have failed, supported with analyses of the failure * CD-ROM containing demonstration versions of analytical geotechnical software from Ensoft, Inc. tailored for use by students in the classroom

Soil Dynamics and Foundation Modeling

Soil Dynamics and Foundation Modeling
Title Soil Dynamics and Foundation Modeling PDF eBook
Author Junbo Jia
Publisher Springer
Pages 741
Release 2017-11-26
Genre Technology & Engineering
ISBN 3319403583

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This book presents a comprehensive topical overview on soil dynamics and foundation modeling in offshore and earthquake engineering. The spectrum of topics include, but is not limited to, soil behavior, soil dynamics, earthquake site response analysis, soil liquefactions, as well as the modeling and assessment of shallow and deep foundations. The author provides the reader with both theory and practical applications, and thoroughly links the methodological approaches with engineering applications. The book also contains cutting-edge developments in offshore foundation engineering such as anchor piles, suction piles, pile torsion modeling, soil ageing effects and scour estimation. The target audience primarily comprises research experts and practitioners in the field of offshore engineering, but the book may also be beneficial for graduate students.

Contemporary Topics in Deep Foundations

Contemporary Topics in Deep Foundations
Title Contemporary Topics in Deep Foundations PDF eBook
Author Magued Iskander
Publisher
Pages 0
Release 2009
Genre Electronic books
ISBN 9780784410219

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GSP 185 contains 80 papers presented at the International Foundation Congress and Equipment Expo held in Orlando, Florida, March 15-19, 2009.

An Introduction to Deep Foundations and Sheet-piling

An Introduction to Deep Foundations and Sheet-piling
Title An Introduction to Deep Foundations and Sheet-piling PDF eBook
Author Donovan Henry Lee
Publisher
Pages 280
Release 1961
Genre Caissons
ISBN

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Introduction to Deep Learning

Introduction to Deep Learning
Title Introduction to Deep Learning PDF eBook
Author Eugene Charniak
Publisher MIT Press
Pages 187
Release 2019-01-29
Genre Computers
ISBN 0262039516

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A project-based guide to the basics of deep learning. This concise, project-driven guide to deep learning takes readers through a series of program-writing tasks that introduce them to the use of deep learning in such areas of artificial intelligence as computer vision, natural-language processing, and reinforcement learning. The author, a longtime artificial intelligence researcher specializing in natural-language processing, covers feed-forward neural nets, convolutional neural nets, word embeddings, recurrent neural nets, sequence-to-sequence learning, deep reinforcement learning, unsupervised models, and other fundamental concepts and techniques. Students and practitioners learn the basics of deep learning by working through programs in Tensorflow, an open-source machine learning framework. “I find I learn computer science material best by sitting down and writing programs,” the author writes, and the book reflects this approach. Each chapter includes a programming project, exercises, and references for further reading. An early chapter is devoted to Tensorflow and its interface with Python, the widely used programming language. Familiarity with linear algebra, multivariate calculus, and probability and statistics is required, as is a rudimentary knowledge of programming in Python. The book can be used in both undergraduate and graduate courses; practitioners will find it an essential reference.