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Machine Learning with Python: k-Means Clustering

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Frederick Nwanganga

49:54

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  • 01 - Getting started with Python and k-means clustering.mp4
    00:50
  • 02 - What you should know.mp4
    01:08
  • 03 - The tools you need.mp4
    01:08
  • 04 - Using the exercise files.mp4
    01:43
  • 01 - What is clustering.mp4
    04:58
  • 02 - What is k-means clustering.mp4
    03:51
  • 03 - Choosing the right number of clusters.mp4
    08:38
  • 04 - Why and when to use k-means clustering.mp4
    02:30
  • 01 - How to segment data with k-means clustering in Python.mp4
    08:49
  • 02 - How to evaluate and visualize clusters in Python.mp4
    03:53
  • 03 - How to find the right number of clusters in Python.mp4
    04:57
  • 04 - How to interpret the results of k-means clustering in Python.mp4
    05:48
  • 01 - Next steps.mp4
    01:41
  • Description


    Clustering—an unsupervised machine learning approach used to group data based on similarity—is used for work in network analysis, market segmentation, search results grouping, medical imaging, and anomaly detection. K-means clustering is one of the most popular and easy to use clustering algorithms. In this course, Fred Nwanganga gives you an introductory look at k-means clustering—how it works, what it’s good for, when you should use it, how to choose the right number of clusters, its strengths and weaknesses, and more. Fred provides hands-on guidance on how to collect, explore, and transform data in preparation for segmenting data using k-means clustering, and gives a step-by-step guide on how to build such a model in Python.

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    Frederick Nwanganga
    Frederick Nwanganga
    Instructor's Courses
    Information Technology leader with over 15 years of experience in both private sector and higher education. Skilled in managing highly talented and technical staff. Subject matter competence in Data Analytics, Machine Learning and Optimizations for Big Data Applications.
    LinkedIn Learning is an American online learning provider. It provides video courses taught by industry experts in software, creative, and business skills. It is a subsidiary of LinkedIn. All the courses on LinkedIn fall into four categories: Business, Creative, Technology and Certifications. It was founded in 1995 by Lynda Weinman as Lynda.com before being acquired by LinkedIn in 2015. Microsoft acquired LinkedIn in December 2016.
    • language english
    • Training sessions 13
    • duration 49:54
    • Release Date 2023/01/18