This course provides a foundational understanding of machine learning models (logistic regression, multilayer perceptrons, convolutional neural networks, natural language processing, etc.) and demonstrates how they can solve complex problems in various industries, from medical diagnostics to image recognition to text prediction. Through hands-on practice exercises, you'll implement these data science models on datasets, gaining proficiency in machine learning algorithms with PyTorch, used by leading tech companies like Google and NVIDIA.

Introduction to Machine Learning

Introduction to Machine Learning



Instructors: Lawrence Carin
Access provided by Prince of Songkla University
240,475 already enrolled
3,809 reviews
What you'll learn
Explain various machine learning models and how they can solve complex problems in multiple industries from medical diagnostics to text prediction.
Implement data science models on datasets through hands-on practice exercises.
Skills you'll gain
- Computer Vision
- Transfer Learning
- Medical Imaging
- Applied Machine Learning
- Deep Learning
- Image Analysis
- Logistic Regression
- Machine Learning
- Recurrent Neural Networks (RNNs)
- Reinforcement Learning
- Convolutional Neural Networks
- Unsupervised Learning
- Artificial Neural Networks
- Supervised Learning
- Natural Language Processing
Tools you'll learn
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There are 6 modules in this course
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Reviewed on May 7, 2021
The course gave a very clear understanding of machine learning from the basics to the key technology. Furthermore, this knowledge is made practical via Lab videos and assignment
Reviewed on Jun 26, 2021
Thanks to Coursera I now know the basic machine learning models as well as how I can implement them to solve real world problems. Excellent instructors and learning resources!
Reviewed on Aug 4, 2020
I felt that I took the best descition in taking this course, because the professors took this course with atmost clarity and made even the difficult concepts understand easily.Thank you Professors
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