Parallel and High Performance Computing
Parallel and High Performance Computing offers techniques guaranteed to boost your code’s effectiveness by mastering parallel techniques for multicore processor and GPU hardware.
Parallel and High Performance Computing
Numéro d'article: 34852520

Parallel and High Performance Computing

Numéro d'article: 34852520

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Parallel and High Performance Computing offers techniques guaranteed to boost your code’s effectiveness by mastering parallel techniques for multicore processor and GPU hardware.
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Ce qui se démarque

Scalability
This product supports large-scale parallel processing, enabling users to easily expand computing resources without sacrificing performance, catering to both academic and enterprise-level applications.
Efficiency
Optimized algorithms and resource management minimize idle time, enhancing throughput for complex computations, making it ideal for data-intensive tasks in scientific research and engineering simulations.
User-Friendly Interface
Intuitive design simplifies configuration and monitoring of computing tasks, reducing the learning curve for new users, thus fostering wider adoption across diverse sectors including finance, healthcare, and academia.

Détails du produit

Explore the latest collection of Parallel and High Performance Computing at Ubuy Réunion. Get the best deals on Réunion with high-performance computing solutions for faster data processing.
  • Learn techniques to boost code effectiveness and efficiency with parallel programming
  • Explore hardware architectures and industry standard tools like OpenMP and MPI
  • Master data structures and algorithms for high performance computing
  • Address underperforming kernels, manage applications with batch scheduling, and optimize energy usage on handheld devices
  • Topical coverage includes CPU and GPU architecture, parallel algorithms and patterns, GPU programming, and high performance computing ecosystems
  • Ideal for experienced programmers proficient in high-performance computing languages like C, C++, or Fortran
Publisher Manning
Publication date June 22, 2021
Language English
Print length 704 pages
ISBN-10 1617296465
ISBN-13 978-1617296468
Item Weight 2.55 pounds (1.16 kg)
Dimensions 7.38 x 1.4 x 9.25 inches (18.7 x 3.6 x 23.5 cm)

À qui est-ce destiné ?

Suitable For
  • Data Scientists

    Data scientists requiring extensive computational power for large datasets will find parallel computing extremely beneficial.

  • Engineers

    Engineers running complex simulations and calculations can significantly reduce processing time with high performance computing resources.

  • Researchers

    Academic and industry researchers needing to analyze vast amounts of data quickly will benefit from parallel computing.

Not Suitable For
  • Casual Users

    Individuals who perform basic tasks may find no need for the advanced capabilities of parallel and high performance computing.

DESCRIPTION DU PRODUIT

Parallel and High Performance Computing

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Questions et réponses des clients

  • question: What is Parallel and High Performance Computing?

    répondre: Parallel and High Performance Computing (HPC) refers to the use of multiple processors or computers working together to solve complex problems more efficiently. This approach is crucial for tasks that require immense computational power, such as scientific simulations, large-scale data analysis, and machine learning. HPC systems enable the execution of numerous calculations simultaneously, significantly reducing the time required for processing large datasets. Industries ranging from aerospace to bioinformatics utilize HPC to accelerate research and innovation.
  • question: What are the main benefits of using Parallel Computing?

    répondre: The primary benefits of Parallel Computing include enhanced performance, scalability, and efficiency. By distributing tasks across multiple processing units, parallel computing can tackle larger problems and handle substantial datasets much faster than traditional serial computing. For instance, scientists can simulate climate models or run predictive analytics in a fraction of the time it would take with standard computers, thus accelerating discovery and decision-making in various fields.
  • question: Which industries benefit the most from High Performance Computing?

    répondre: High Performance Computing serves various industries, including scientific research, finance, healthcare, and engineering. For instance, in healthcare, HPC is used for genomic analysis, enabling researchers to identify genetic conditions quickly. Similarly, the finance sector utilizes HPC for risk analysis and algorithmic trading, allowing firms to process vast amounts of market data in real-time. Consequently, HPC fosters innovation and efficiency across multiple sectors, driving advancements and improving overall productivity.
  • question: How does Parallel Computing differ from traditional computing?

    répondre: Unlike traditional computing, which processes tasks sequentially, Parallel Computing divides tasks into smaller units that can be executed simultaneously on multiple processors. This concurrency allows for greater computational speed and efficiency, especially in handling large-scale problems. For example, in image processing, traditional methods may take hours to analyze images, while parallel processing can significantly reduce this time by evaluating multiple images concurrently, facilitating faster outcomes in fields such as computer vision.
  • question: What are common programming models used in Parallel Computing?

    répondre: Common programming models in Parallel Computing include Message Passing Interface (MPI), OpenMP, and CUDA. MPI is widely used for distributed computing across various networks, while OpenMP simplifies the parallelization of tasks in shared memory environments. CUDA, developed by NVIDIA, allows developers to leverage GPU capabilities for parallel processing. These models enable developers to optimize their code for better performance, allowing applications to fully exploit the power of modern multi-core and many-core architectures.
  • question: What hardware is typically used in High Performance Computing?

    répondre: High Performance Computing often involves specialized hardware, including supercomputers, clusters of interconnected computers, and powerful GPUs. Supercomputers are designed specifically for speed and efficiency, incorporating thousands of processors to solve intricate problems. Additionally, HPC clusters utilize a combination of servers connected to work collectively on parallel tasks. This hardware is typically equipped with high-speed interconnects and substantial memory capacity, making it essential for executing demanding computational tasks efficiently.
  • question: Can Parallel and High Performance Computing be used in cloud environments?

    répondre: Yes, Parallel and High Performance Computing can be leveraged in cloud environments as many cloud service providers offer HPC solutions. These services allow users to access powerful computing resources without the need to invest in physical infrastructure. Use cases include running simulations, data analysis, and machine learning tasks on-demand, scaling resources according to project requirements. This flexibility enables businesses to optimize costs while gaining access to cutting-edge technology for enhanced performance and productivity.
  • question: What software tools are available for Parallel and High Performance Computing?

    répondre: Several software tools and frameworks support Parallel and High Performance Computing, including MATLAB, Python with libraries like NumPy and Dask, and specialized HPC tools like SLURM and Torque. These tools facilitate the development of parallel applications and simplify the management of computing resources in clusters. For example, scientists can use Python to quickly prototype algorithms that leverage parallel processing for data analysis, streamlining workflows and enhancing research efficiency.
  • question: How can I get started with Parallel Computing?

    répondre: To get started with Parallel Computing, consider exploring programming languages that support parallel constructs, such as Python, C++, or Java. Online tutorials, courses, and communities like GitHub or Stack Overflow can provide resources and support. Additionally, experimenting with small projects on your own or participating in collaborative research can enhance your skills. Start by defining a problem that can be parallelized, then gradually implement solutions while leveraging available libraries and tools.
  • question: Where can I buy Parallel and High Performance Computing resources in Réunion?

    répondre: You can buy Parallel and High Performance Computing resources in Réunion through Ubuy. Ubuy offers a variety of products, including books, software, and hardware solutions tailored for those interested in the field. By visiting Ubuy, you can explore a diverse selection of HPC-related resources that fit your needs, along with customer reviews and ratings to help inform your purchasing decisions.

C Editorial Review

Parallel and High Performance Computing is a comprehensive guide published by Manning, offering a thorough exploration of both practical techniques and overarching programming styles that enhance parallelism. Spanning 704 pages, this well-organized book covers various aspects of high-performance computing, including CPU (OpenMP and MPI) and GPU (OpenACC, OpenCL, and CUDA), making it an essential reference for technologists. Readers appreciate the easy-to-understand language used by the authors, Robert and Yuliana, allowing complex topics to be accessible. However, some users feel that additional guidance on running examples using Singularity would have improved the overall experience, especially for those using clusters.

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Avantages

  • Comprehensive coverage of parallel computing techniques
  • Clear and accessible writing style
  • Practical examples enhance understanding
  • Well-structured for reference and education
  • Covers both CPU and GPU programming

Les inconvénients

  • Limited guidance for running examples on clusters

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