Nature Inspired Optimization Techniques for Image Processing Applications

Nature Inspired Optimization Techniques for Image Processing Applications

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2018 · Английский · Мягкая обложка · 2 editions
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Описание

In a dynamic exploration of cutting-edge methodologies, this work delves into the innovative world of nature-inspired optimization techniques. The author presents a thorough examination of how these algorithms can enhance image processing applications, specifically focusing on medical imaging. The integration of Firefly Optimization and Fuzzy Clustering provides a refined approach to segmenting CT and MR images, offering improved accuracy and efficiency.

Additionally, the text covers the Bat Optimization Algorithm, showcasing its potential and effectiveness in tackling complex imaging challenges. Through practical examples and detailed analysis, the reader gains insight into the versatility and applicability of these techniques across various scenarios in image processing.

This research not only illuminates the significance of drawing inspiration from nature in computational problems but also serves as a valuable resource for professionals and academics seeking to enhance their understanding of optimization methods in the realm of medical imaging.

Детали книги

Формат Мягкая обложка
Страницы 312 страниц
Язык Английский
Опубликовано Sep 22, 2018
Издатель Springer
Издания 2 editions
ISBN-10 3319960032
ISBN-13 9783319960036

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