Parallelism in Matrix Computations

Parallelism in Matrix Computations

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2016 · Angielski · Miękka okładka · 3 editions
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Opis

In the realm of scientific computation, the exploration of parallelism in matrix computations serves as a crucial focal point. This work delves into the fundamental theories and practical applications of matrix algorithms, illuminating how parallel processing can enhance performance and efficiency. The authors, esteemed experts in their fields, offer insights that bridge the gap between theoretical underpinnings and real-world implementations.

Readers are taken on a nuanced journey through the intricacies of matrix operations, examining how these mathematical structures can be manipulated to harness the power of contemporary computing architectures. Each chapter builds upon concepts that are relevant to a wide array of applications, from engineering to data analysis, thereby appealing to both academic researchers and industry practitioners.

The collaborative efforts of Gallopoulos, Philippe, and Sameh highlight diverse methodologies that optimize computational tasks. The text not only serves as a technical guide but also inspires new approaches to leveraging parallelism in future matrix computations, making it a valuable resource for anyone interested in the evolving landscape of scientific computing.

Szczegóły książki

Format Miękka okładka
Strony 503 stron
Język Angielski
Opublikowany Oct 23, 2016
Wydawca Springer
Wydanie Softcover reprint of the original 1st ed. 2016
Wydania 3 editions
ISBN-10 9402403175
ISBN-13 9789402403176

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