Domain-Specific Computer Architectures for Emerging Applications : Machine Learning and Neural Networks
by
Chao Wang
Book Details
Format
Paperback / Softback
ISBN-10
1032768959
ISBN-13
9781032768953
Publisher
Taylor & Francis Ltd
Imprint
Chapman & Hall/CRC
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jul 19th, 2026
Print length
402 Pages
Weight
770 grams
Product Classification:
Automatic control engineeringDigital and Information technology: general topicsInformation technology: general issuesSupercomputersComputer programming / software developmentComputer programming / software engineeringDatabasesDatabases / Data managementComputer networking & communicationsComputer networking and communicationsComputer architecture & logic designComputer architecture and logic designNeural networks & fuzzy systemsNeural networks and fuzzy systems
Ksh 10,250.00
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This book explores the latest research in high performance domain-specific computer architectures for emerging applications, including Machine Learning and Neural Networks applications. The book discusses domain specific computing architectures and considers research issues related to the state-of-the art architectures in emerging domains.
With the end of Moore’s Law, domain-specific architecture (DSA) has become a crucial mode of implementing future computing architectures. This book discusses the system-level design methodology of DSAs and their applications, providing a unified design process that guarantees functionality, performance, energy efficiency, and real-time responsiveness for the target application. DSAs often start from domain-specific algorithms or applications, analyzing the characteristics of algorithmic applications, such as computation, memory access, and communication, and proposing the heterogeneous accelerator architecture suitable for that particular application. This book places particular focus on accelerator hardware platforms and distributed systems for various novel applications, such as machine learning, data mining, neural networks, and graph algorithms, and also covers RISC-V open-source instruction sets. It briefly describes the system design methodology based on DSAs and presents the latest research results in academia around domain-specific acceleration architectures. Providing cutting-edge discussion of big data and artificial intelligence scenarios in contemporary industry and typical DSA applications, this book appeals to industry professionals as well as academicians researching the future of computing in these areas.
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