By the end of this course, learners will be able to design, build, train, and evaluate Convolutional Neural Networks (CNNs) using Python, gaining hands-on experience in one of the most in-demand deep learning skills. You will learn to set up both local and cloud-based environments, preprocess and augment image datasets, implement CNN architectures, and assess model accuracy and performance.

您将学到什么
Explain CNN fundamentals and apply Python for model building.
Preprocess and augment image datasets for training workflows.
Design, implement, and evaluate CNNs for image classification.
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要了解的详细信息

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作业
7 项作业
授课语言:英语(English)
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October 2025
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本课程是 Deep Learning with Python: CNN, ANN & RNN 专项课程 专项课程的一部分
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人们为什么选择 Coursera 来帮助自己实现职业发展

Felipe M.
自 2018开始学习的学生
''能够按照自己的速度和节奏学习课程是一次很棒的经历。只要符合自己的时间表和心情,我就可以学习。'

Jennifer J.
自 2020开始学习的学生
''我直接将从课程中学到的概念和技能应用到一个令人兴奋的新工作项目中。'

Larry W.
自 2021开始学习的学生
''如果我的大学不提供我需要的主题课程,Coursera 便是最好的去处之一。'

Chaitanya A.
''学习不仅仅是在工作中做的更好:它远不止于此。Coursera 让我无限制地学习。'
学生评论
- 5 stars
78.94%
- 4 stars
15.78%
- 3 stars
0%
- 2 stars
5.26%
- 1 star
0%
显示 3/19 个
SP
已于 Jan 8, 2026审阅
Helped me transition from theory to real-world CNN implementation with Python effectively.
PN
已于 Jan 4, 2026审阅
From theory to deployment-ready models — this course covers the full lifecycle of professional CNN development exceptionally well.
AP
已于 Dec 28, 2025审阅
This course stands out for its clarity, practical Python exercises, and structured approach to training and evaluating CNN models efficiently for modern deep learning workflows.







