GPU Acceleration with CUDA Advanced Libraries
Accelerate your applications by mastering Thrust, CuFFT, cuDNN, and cuTensor for high-performance mathematical and deep learning computations.
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Tungkol sa kursong ito
Maximizing the power of GPU hardware does not always require writing complex custom CUDA kernels from scratch. By leveraging pre-optimized libraries, you can dramatically accelerate mathematical computations and machine learning workflows with minimal code. This text-based course guides you from the fundamental concepts of GPU-accelerated libraries to implementing them in real-world scenarios, helping you offload heavy computations and manage memory efficiently.
What you'll learn:
- Understand the foundational architecture and configuration of CUDA Toolkit libraries.
- Implement high-performance data structures and parallel algorithms using the Thrust library.
- Perform complex mathematical transformations and frequency analysis with CuFFT.
- Accelerate linear algebra operations using core GPU-optimized math libraries.
- Configure cuDNN and cuTensor to power modern deep learning and neural network computations.
- Apply modern performance optimization techniques, including mixed-precision arithmetic for tensor cores.
We begin with essential terminology and foundational definitions of GPU memory interfaces before moving on to practical library integration. You will read clear code explanations and complete written analysis exercises designed to solidify your understanding of library APIs. This course is designed for developers, data scientists, and researchers with a basic grasp of C or C++ who want to leverage GPU acceleration. Start reading today to unlock the full computational potential of your hardware.
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2 oras 42 min ng practical content
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