Computer Vision Basics

所在平台: CourseraArchive

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大学或机构: CourseraNew

课程主页: https://www.coursera.org/archive/computer-vision-basics

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课程大纲

Computer Vision Overview
Color, Light, & Image Formation
Low-, Mid- & High-Level Vision
Mathematics for Computer Vision

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By the end of this course, learners will understand what computer vision is, as well as its mission of making computers see and interpret the world as humans do, by learning core concepts of the field and receiving an introduction to human vision capabilities. They are equipped to identify some key application areas of computer vision and understand the digital imaging process. The course covers crucial elements that enable computer vision: digital signal processing, neuroscience and artificial intelligence. Topics include color, light and image formation; early, mid- and high-level vision; and mathematics essential for computer vision. Learners will be able to apply mathematical techniques to complete computer vision tasks. This course is ideal for anyone curious about or interested in exploring the concepts of computer vision. It is also useful for those who desire a refresher course in mathematical concepts of computer vision. Learners should have basic programming skills and experience (understanding of for loops, if/else statements), specifically in MATLAB (Mathworks provides the basics here: https://www.mathworks.com/learn/tutorials/matlab-onramp.html). Learners should also be familiar with the following: basic linear algebra (matrix vector operations and notation), 3D co-ordinate systems and transformations, basic calculus (derivatives and integration) and basic probability (random variables). Material includes online lectures, videos, demos, hands-on exercises, project work, readings and discussions. Learners gain experience writing computer vision programs through online labs using MATLAB* and supporting toolboxes. * A free license to install MATLAB for the duration of the course is available from MathWorks.

计算机视觉基础知识:在本课程结束时,学习者将通过学习该领域的核心概念并获得有关人类视觉的介绍,来理解计算机视觉的含义,以及使计算机像人类一样理解和解释世界的使命。能力。它们可以识别计算机视觉的一些关键应用领域,并了解数字成像过程。该课程涵盖实现计算机视觉的关键要素:数字信号处理,神经科学和人工智能。主题包括颜色,光线和图像形成;早期,中期和高层的愿景;和计算机视觉必不可少的数学。学习者将能够应用数学技术来完成计算机视觉任务。 对于对计算机视觉概念感兴趣或感兴趣的任何人,本课程都是理想的选择。对于希望在计算机视觉数学概念上进修的人来说,它也很有用。学习者应具有基本的编程技能和经验(了解for循环,if / else语句),尤其是在MATLAB中(Mathworks在此处提供了基础知识:https://www.mathworks.com/learn/tutorials/matlab-onramp.html) 。学习者还应熟悉以下内容:基本线性代数(矩阵向量运算和符号),3D坐标系和转换,基本演算(导数和积分)和基本概率(随机变量)。 资料包括在线讲座,视频,演示,动手练习,项目工作,阅读和讨论。通过使用MATLAB *和支持工具箱的在线实验室,学习者可以获得编写计算机视觉程序的经验。  * MathWorks提供了在课程期间免费安装MATLAB的许可证。

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