Statistical Benchmarks for Neural Network Performance

Statistical Benchmarks for Neural Network Performance

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1992 · 英語 · ペーパーバック
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説明

Terrence L. Fine delves into the intricate world of neural networks, presenting a comprehensive exploration of statistical benchmarks vital for evaluating performance. He systematically outlines the criteria and methodologies that offer insights into the effectiveness of various neural network architectures.

Through methodical analysis, the author emphasizes the importance of robust statistical measures to assess neural networks, bridging the gap between theoretical foundations and practical implementations. Fine's work not only aids researchers in understanding the nuances of performance metrics but also guides practitioners in optimizing their models.

This book serves as an essential resource for anyone involved in artificial intelligence and machine learning, providing them with the tools needed to navigate the complexities of performance evaluation in neural networks successfully.

本の詳細

形式 ペーパーバック
言語 英語
公開されました Jan 1, 1992
出版社 PN
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