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Visual Saliency: From Pixel-Level to Object-Level Analysis, Jianming Zhang; Filip Malmberg; Stan Sclaroff


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Автор: Jianming Zhang; Filip Malmberg; Stan Sclaroff
Название:  Visual Saliency: From Pixel-Level to Object-Level Analysis
ISBN: 9783030048303
Издательство: Springer
Классификация:



ISBN-10: 3030048306
Обложка/Формат: Soft cover
Страницы: 138
Вес: 0.32 кг.
Дата издания: 2019
Язык: English
Издание: 1st ed. 2019
Иллюстрации: 44 illustrations, color; 3 illustrations, black and white; vii, 138 p. 47 illus., 44 illus. in color.
Размер: 234 x 213 x 8
Читательская аудитория: Professional & vocational
Основная тема: Computer Science
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: This book will provide an introduction to recent advances in theory, algorithms and application of Boolean map distance for image processing. Applications include modeling what humans find salient or prominent in an image, and then using this for guiding smart image cropping, selective image filtering, image segmentation, image matting, etc.
In this book, the authors present methods for both traditional and emerging saliency computation tasks, ranging from classical low-level tasks like pixel-level saliency detection to object-level tasks such as subitizing and salient object detection. For low-level tasks, the authors focus on pixel-level image processing approaches based on efficient distance transform. For object-level tasks, the authors propose data-driven methods using deep convolutional neural networks. The book includes both empirical and theoretical studies, together with implementation details of the proposed methods. Below are the key features for different types of readers. For computer vision and image processing practitioners:Efficient algorithms based on image distance transforms for two pixel-level saliency tasks;Promising deep learning techniques for two novel object-level saliency tasks;Deep neural network model pre-training with synthetic data;Thorough deep model analysis including useful visualization techniques and generalization tests;Fully reproducible with code, models and datasets available.For researchers interested in the intersection between digital topological theories and computer vision problems:Summary of theoretic findings and analysis of Boolean map distance;Theoretic algorithmic analysis;Applications in salient object detection and eye fixation prediction.Students majoring in image processing, machine learning and computer vision:This book provides up-to-date supplementary reading material for course topics like connectivity based image processing, deep learning for image processing;Some easy-to-implement algorithms for course projects with data provided (as links in the book);Hands-on programming exercises in digital topology and deep learning.

Дополнительное описание: 1 Overview.- 2 Boolean Map Saliency: A Surprisingly Simple Method.- 3 A Distance Transform Perspective.- 4 Efficient Distance Transform for Salient Region Detection.- 5 Salient Object Subitizing.- 6 Unconstrained Salient Object Detection.- 7 Conclusion an



Visual Saliency Computation

Автор: Jia Li; Wen Gao
Название: Visual Saliency Computation
ISBN: 3319056417 ISBN-13(EAN): 9783319056418
Издательство: Springer
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Цена: 8803.00 р.
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Описание: This book covers fundamental principles and computational approaches relevant to visual saliency computation. and progressively explore the problems in detecting salient locations, extracting salient objects, learning prior knowledge, evaluating performance, and using saliency in real-world applications.

Low-Power CMOS Digital Pixel Imagers for High-Speed Uncooled PbSe IR Applications

Автор: Josep Maria Margarit
Название: Low-Power CMOS Digital Pixel Imagers for High-Speed Uncooled PbSe IR Applications
ISBN: 3319499610 ISBN-13(EAN): 9783319499611
Издательство: Springer
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Цена: 18167.00 р.
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Описание: Introduction.- Frame-Based Smart IR Imagers.- Frame-Free Compact-Pitch IR Imagers.- Pixel Test Chips in 0.35mm and 0.15mm CMOS Technologies.- Imager Test Chips in 2.5mm, 0.35mm and 0.15mm CMOS Technologies.- Conclusions.


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