Detailed information about "Data Science: Machine Learning Fundamentals"


Key info
Offered byUniversity of California, San Diego
Description

Do you want to build systems that learn from experience? Or exploit data to create simple predictive models of the world?

In this course, part of the Data Science MicroMasters program, you will learn a variety of supervised and unsupervised learning algorithms, and the theory behind those algorithms.

Using real-world case studies, you will learn how to classify images, identify salient topics in a corpus of documents, partition people according to personality profiles, and automatically capture the semantic structure of words and use it to categorize documents.

Armed with the knowledge from this course, you will be able to analyze many different types of data and to build descriptive and predictive models.

All programming examples and assignments will be in Python, using Jupyter notebooks.

What you'll learn

  • Classification, regression, and conditional probability estimation
  • Generative and discriminative models
  • Linear models and extensions to nonlinearity using kernel methods
  • Ensemble methods: boosting, bagging, random forests
  • Representation learning: clustering, dimensionality reduction, autoencoders, deep nets

Accredited byedX - online learning platform
URL https://www.edx.org/course/machine-learning-fundamentals-2


Additional info
Provider typeacademic center
Typecourse is part of the program
Synchronous / asynchronousasynchronous online course
Type of deliveryblended (practical training and lecture)
Formonline
Length10 weeks
LanguageEnglish
Dates available16 July 2024
CostFREE (without a certificate of completion) / 350 USD
Has certificateYES
Registration / Access controlYES
User feedback 
ID153



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