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Build Decision Trees, SVMs, and Artificial Neural Networks

There are numerous types of machine learning algorithms, each of which has certain characteristics that might make it more or less suitable for solving a particular problem. Decision trees and support-vector machines (SVMs) are two examples of algorithms that can both solve regression and classification problems, but which have different applications. Likewise, a more advanced approach to machine learning, called deep learning, uses artificial neural networks (ANNs) to solve these types of problems and more. Adding all of these algorithms to your skillset is crucial for selecting the best tool for the job. This fourth and final course within the Certified Artificial Intelligence Practitioner (CAIP) professional certificate continues on from the previous course by introducing more, and in some cases, more advanced algorithms used in both machine learning and deep learning. As before, you'll build multiple models that can solve business problems, and you'll do so within a workflow. Ultimately, this course concludes the technical exploration of the various machine learning algorithms and how they can be used to build problem-solving models.

状态:Natural Language Processing
状态:Artificial Intelligence and Machine Learning (AI/ML)
中级课程小时

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4.0评论日期:Feb 11, 2023

This was a very intense course. I am glad I was able to see it through to the end

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显示:3/3

Tanuj Nimgade
5.0
评论日期:May 12, 2023
RITISH SINGH
5.0
评论日期:Apr 21, 2024
Nana Addo-Obiri
4.0
评论日期:Feb 12, 2023