Automated Software Engineering: A Deep Learning-Based Approach

Automated Software Engineering: A Deep Learning-Based Approach

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2021 · 英語 · ペーパーバック · 3 editions
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説明

This book delves into the evolving landscape of software engineering, focusing on the challenges and opportunities presented by automation. It explores how deep learning can be harnessed to improve efficiency and effectiveness in software development processes. Through a comprehensive analysis, the authors tackle critical concerns that arise in the field, from code generation to bug detection, shedding light on the intricate relationship between automation and software quality.

In presenting their findings, the authors emphasize contemporary tools and techniques that can significantly enhance software engineering practices. They illustrate the potential of deep learning algorithms to address various open issues, providing insights into how these innovations can streamline workflows and reduce human error. Readers are encouraged to consider the implications of these advancements for future projects and the broader industry.

By weaving together theoretical foundations and practical applications, the book serves as a valuable resource for researchers, practitioners, and students alike. It inspires a deeper understanding of the intersection between deep learning and software engineering, paving the way for future explorations in automated systems and intelligent development methodologies.

本の詳細

形式 ペーパーバック
ページ数 132ページ
言語 英語
公開されました Jan 8, 2021
出版社 Springer
ISBN-10 3030380084
ISBN-13 9783030380083

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