CUDA Fortran for Scientists and Engineers

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CUDA Fortran for Scientists and Engineers shows how high-performance application developers can leverage the power of GPUs using Fortran, the familiar language of scientific computing and supercomputer performance benchmarking. The authors presume no prior parallel computing experience, and cover the basics along with best practices for efficient GPU computing using CUDA Fortran.

To help you add CUDA Fortran to existing Fortran codes, the book explains how to understand the target GPU architecture, identify computationally intensive parts of the code, and modify the code to manage the data and parallelism and optimize performance. All of this is done in Fortran, without having to rewrite in another language. Each concept is illustrated with actual examples so you can immediately evaluate the performance of your code in comparison.


Autorentext
Greg Ruetsch is a Senior Applied Engineer at NVIDIA, where he works on CUDA Fortran and performance optimization of HPC codes. He holds a Bachelor's degree in mechanical and aerospace engineering from Rutgers University and a Ph.D. in applied mathematics from Brown University. Prior to joining NVIDIA, he has held research positions at Stanford University's Center for Turbulence Research and Sun Microsystems Laboratories. Massimiliano Fatica is the Director of the HPC Benchmarking Group at NVIDIA where he works in the area of GPU computing (high-performance computing and clusters). He holds a laurea in Aeronautical Engineering and a PhD in Theoretical and Applied Mechanics from the University of Rome La Sapienza”. Prior to joining NVIDIA, he was a research staff member at Stanford University where he worked at the Center for Turbulence Research and Center for Integrated Turbulent Simulations on applications for the Stanford Streaming Supercomputer.

Klappentext
CUDA Fortran for Scientists and Engineers shows how high-performance application developers can leverage the power of GPUs using Fortran, the familiar language of scientific computing and supercomputer performance benchmarking. The authors presume no prior parallel computing experience, and cover the basics along with best practices for efficient GPU computing using CUDA Fortran. In order to add CUDA Fortran to existing Fortran codes, they explain how to understand the target GPU architecture, identify computationally intensive parts of the code, and modify the code to manage the data and parallelism and optimize performance - all in Fortran, without having to rewrite in another language. Each concept is illustrated with actual examples so you can immediately evaluate the performance of your code in comparison.



Zusammenfassung
Shows how high-performance application developers can leverage the power of GPUs using Fortran, the familiar language of scientific computing and supercomputer performance benchmarking. This book explains how to understand the target GPU architecture, identify computationally intensive parts of the code, and modify the code to manage the data.

Inhalt

I CUDA Fortran Programming

  1. Introduction
  2. Performance Measurement and Metrics
  3. Optimization
  4. Multi-GPU Programming
    II Case Studies
  5. Monte Carlo Method
  6. Finite Difference Method
  7. Applications of Fast Fourier Transform
    III Appendices
    A. Tesla Specifications
    B. System and Environment Management
    C. Calling CUDA C from CUDA Fortran
    D. Source Code

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09780124169708
    • Sprache Englisch
    • Größe H235mm x B16mm x T191mm
    • Jahr 2013
    • EAN 9780124169708
    • Format Kartonierter Einband
    • ISBN 978-0-12-416970-8
    • Veröffentlichung 24.10.2013
    • Titel CUDA Fortran for Scientists and Engineers
    • Autor Gregory Ruetsch , Massimiliano Fatica
    • Untertitel Best Practices for Efficient CUDA Fortran Programming
    • Gewicht 711g
    • Herausgeber Elsevier LTD, Oxford
    • Anzahl Seiten 338
    • Genre Informatik

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