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OpenCV 4 for Secret Agents

OpenCV 4 for Secret Agents

By : Joseph Howse, Ponnusamy
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OpenCV 4 for Secret Agents

OpenCV 4 for Secret Agents

By: Joseph Howse, Ponnusamy

Overview of this book

OpenCV 4 is a collection of image processing functions and computer vision algorithms. It is open source, supports many programming languages and platforms, and is fast enough for many real-time applications. With this handy library, you’ll be able to build a variety of impressive gadgets. OpenCV 4 for Secret Agents features a broad selection of projects based on computer vision, machine learning, and several application frameworks. To enable you to build apps for diverse desktop systems and Raspberry Pi, the book supports multiple Python versions, from 2.7 to 3.7. For Android app development, the book also supports Java in Android Studio, and C# in the Unity game engine. Taking inspiration from the world of James Bond, this book will add a touch of adventure and computer vision to your daily routine. You’ll be able to protect your home and car with intelligent camera systems that analyze obstacles, people, and even cats. In addition to this, you’ll also learn how to train a search engine to praise or criticize the images that it finds, and build a mobile app that speaks to you and responds to your body language. By the end of this book, you will be equipped with the knowledge you need to advance your skills as an app developer and a computer vision specialist.
Table of Contents (16 chapters)
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Free Chapter
1
Section 1: The Briefing
4
Section 2: The Chase
9
Section 3: The Big Reveal
12
Making WxUtils.py Compatible with Raspberry Pi
13
Learning More about Feature Detection in OpenCV
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14
Running with Snakes (or, First Steps with Python)

Learning More about Feature Detection in OpenCV

In Chapter 4, Controlling a Phone App with Your Suave Gestures, we used the Good Features to Track algorithm to detect trackable features in images. OpenCV offers implementations of several more feature-detection algorithms. Two of the other algorithms, called minimum eigenvalue corners and Harris Corners, are precursors to Good Features to Track, which improves upon them. An official tutorial illustrates the use of eigenvalue corners and Harris Corners in a code sample at https://docs.opencv.org/master/d9/dbc/tutorial_generic_corner_detector.html.

Some of the other, more-advanced feature-detection algorithms in OpenCV are named FAST, ORB, SIFT, SURF, and FREAK. Compared to Good Features to Track, these more-advanced alternatives evaluate a much larger set of potential features, at a much greater computational cost. They are overkill...

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