Machine Learning using Python

Learning using Python

Machine Learning using Python

This training is an introduction to the concept of machine learning, its algorithms and application using Python.

What you’ll learn

  • Understand Decision Trees, Random Forest, Neural Networks, K-Means Clustering, Apriori algorithm
  • Learn about Classification Algorithms, Regression Algorithms, Linear Regression, Logistic Regression, Naive Bayes Classifier.
  • Learn machine learning, its algorithms and application using Python.
  • Learn about Python Packages for Machine Learning

Requirements

  • No prior knowledge of machine learning required
  • Basic knowledge of Python

Description

Machine learning is a scientific discipline that explores the construction and study of algorithms that can learn from data. Such algorithms operate by building a model from example inputs and using that to make predictions or decisions, rather than following strictly static program instructions. Machine learning is closely related to and often overlaps with computational statistics; a discipline that also specializes in prediction-making.

This training is an introduction to the concept of machine learning, its algorithms and application using Python.

The training will include the following;

  • What is Machine Learning? (Intro – why its used, Data Science defined)
  • Analytics Defined (Predictive, Prescriptive etc.,)
  • Data Mining Flow(Phases defined – with MOdeling phase that involves ML)
  • Explanation on Data Set
  • Supervised Learning
  • Unsupervised Learning
  • Classification Algorithms
  • Regression Algorithms
  • Linear Regression
  • Logistic Regression
  • Naive Bayes Classifier
  • Anonymous Detection
  • Decision Trees
  • Random Forest Learning using Python
  • Neural Networks Learning using Python Learning using Python
  • K-Means Clustering
  • Apriori algorithm
  • Feature Selection
  • Support Ventor Machine
  • Basic explanation on Use Cases
  • Basic Functions defines (Cost function, likelihood function, normalization, trade off etc.,)
  • Primary tools/ Softwares used for ML
  • Python Packages for Machine Learning

Who this course is for:

  • Anyone who wants to learn about data and analytics
  • Data Engineers
  • Analysts
  • Architects
  • Software Engineers
  • IT operations
  • Technical managers

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