Building Computer Vision Projects with OpenCV 4 and C++ - Escrivá, David Millán Millán
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Présentation Building Computer Vision Projects With Opencv 4 And C++ Format Broché
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Résumé :
Delve into practical computer vision and image processing projects and get up to speed with advanced object detection techniques and machine learning algorithms Key Features: - Discover best practices for engineering and maintaining OpenCV projects - Explore important deep learning tools for image classification - Understand basic image matrix formats and filters Book Description: OpenCV is one of the best open source libraries available and can help you focus on constructing complete projects on image processing, motion detection, and image segmentation. This Learning Path is your guide to understanding OpenCV concepts and algorithms through real-world examples and activities. Through various projects, you'll also discover how to use complex computer vision and machine learning algorithms and face detection to extract the maximum amount of information from images and videos. In later chapters, you'll learn to enhance your videos and images with optical flow analysis and background subtraction. Sections in the Learning Path will help you get to grips with text segmentation and recognition, in addition to guiding you through the basics of the new and improved deep learning modules. By the end of this Learning Path, you will have mastered commonly used computer vision techniques to build OpenCV projects from scratch. This Learning Path includes content from the following Packt books: - Mastering OpenCV 4 - Third Edition by Roy Shilkrot and David Mill?n Escriv? - Learn OpenCV 4 By Building Projects - Second Edition by David Mill?n Escriv?, Vin?cius G. Mendon?a, and Prateek Joshi What You Will Learn: - Stay up-to-date with algorithmic design approaches for complex computer vision tasks - Work with OpenCV s most up-to-date API through various projects - Understand 3D scene reconstruction and Structure from Motion (SfM) - Study camera calibration and overlay augmented reality (AR) using the ArUco module - Create CMake scripts to compile your C++ application - Explore segmentation and feature extraction techniques - Remove backgrounds from static scenes to identify moving objects for surveillance - Work with new OpenCV functions to detect and recognize text with Tesseract Who this book is for: If you are a software developer with a basic understanding of computer vision and image processing and want to develop interesting computer vision applications with OpenCV, this Learning Path is for you. Prior knowledge of C++ and familiarity with mathematical concepts will help you better understand the concepts in this Learning Path....
Sommaire:
David Mill?n Escriv? was 8 years old when he wrote his first program on an 8086 PC in Basic, which enabled the 2D plotting of basic equations. In 2005, he finished his studies in IT with honors, through the Universitat Polit?cnica de Valencia, in human-computer interaction supported by computer vision with OpenCV (v0.96). He has worked with Blender, an open source, 3D software project, and on its first commercial movie, Plumiferos, as a computer graphics software developer. David has more than 10 years' experience in IT, with experience in computer vision, computer graphics, pattern recognition, and machine learning, working on different projects, and at different start-ups, and companies. He currently works as a researcher in computer vision....