Discrete Neural Computation: A Theoretical Foundation

Discrete Neural Computation: A Theoretical Foundation

Kai-Yeung Siu , Thomas Kailath
Brak ocen
2008 · Angielski · Miękka okładka
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Opis

Within the realm of neural computation, a novel perspective emerges through the collective insights of three distinguished experts. This work presents readers with a robust theoretical framework that underpins discrete neural computation, a crucial aspect of contemporary artificial intelligence and machine learning. The authors meticulously dissect complex concepts, making them accessible to a broader audience while retaining the depth required for advanced practitioners in the field.

Throughout the chapters, intricate mathematical models and principles are articulated with clarity, facilitating a deeper understanding of how discrete systems can emulate cognitive processes. By blending rigorous theoretical exploration with practical implications, the book serves both as a foundational text for newcomers and a valuable reference for seasoned researchers seeking to refine their knowledge.

Readers can expect a comprehensive examination of key topics, including the principles of computation, the role of discrete structures, and their application in various neural network paradigms. The discussions highlight not only the theoretical aspects but also the potential impact on future developments in technology.

In summary, this work stands as a significant contribution to the literature on discrete neural computation, offering well-rounded, detailed perspectives that foster an appreciation for this evolving field.

Szczegóły książki

Format Miękka okładka
Strony 432 stron
Język Angielski
Opublikowany Jan 17, 2008
Wydawca Pearson Technology Group
Wydanie Facsimile
ISBN-10 0133007081
ISBN-13 9780133007084

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