Udemy

Complete Machine Learning & Reinforcement learning 2023

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  • 1,486 Students
  • Updated 7/2023
4.3
(176 Ratings)
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Course Information

Registration period
Year-round Recruitment
Course Level
Study Mode
Duration
9 Hour(s) 0 Minute(s)
Language
English
Taught by
SkyHub Academy, Ahmed Attia
Rating
4.3
(176 Ratings)
1 views

Course Overview

Complete Machine Learning & Reinforcement learning 2023

Start Machine Learning & Data Science era with Python ,Math & Libraries like: SKlearn , Pandas , NumPy, Matplotlib & Gym

Humans learn from past experience, so why not machine learn as well?

Hello there,

  • If the word 'Machine Learning' baffles your mind and you want to master it, then this Machine Learning course is for you.

  • If you want to start your career in Machine Learning and make money from it, then this Machine Learning course is for you.

  • If you want to learn how to manipulate things by learning the Math beforehand and then write a code with python, then this Machine Learning course is for you.

  • If you get bored of the word 'this Machine Learning course is for you', then this Machine Learning course is for you.

Well, machine learning is becoming a widely-used word on everybody's tongue, and this is reasonable as data is everywhere, and it needs something to get use of it and unleash its hidden secrets, and since humans' mental skills cannot withstand that amount of data, it comes the need to learn machines to do that for us.

So we introduce to you the complete ML course that you need in order to get your hand on Machine Learning and Data Science, and you'll not have to go to other resources, as this ML course collects most of the knowledge that you'll need in your journey.

We believe that the brain loves to keep the information that it finds funny and applicable, and that's what we're doing here in SkyHub Academy, we give you years of experience from our instructors that have been gathered in just one an interesting dose.

Our course is structured as follows:

  1. An intuition of the algorithm and its applications.

  2. The mathematics that lies under the hood.

  3. Coding with python from scratch.

  4. Assignments to get your hand dirty with machine learning.

  5. Learn more about different Python Data science libraries like Pandas, NumPy & Matplotlib.

  6. Learn more about different Python Machine learning libraries like SK-Learn & Gym.

The topics in this course come from an analysis of real requirements in data scientist job listings from the biggest tech employers. We'll cover the following: 

  • Simple Linear Regression

  • Multiple Linear Regression

  • Polynomial Regression

  • Lasso Regression

  • Ridge Regression

  • Logistic Regression

  • K-Nearest Neighbors (K-NN)

  • Support Vector Machines (SVM)

  • Kernel SVM

  • Naive Bayes

  • Decision Tree Classification

  • Random Forest Classification

  • Evaluating Models' Performance

  • Hierarchical  Clustering

  • K-Means Clustering

  • Principle Component Analysis (PCA)

  • Pandas  (Python Library for Handling Data)

  • Matplotlib (Python Library for Visualizing Data)

Note: this course is continuously updated ! So new algorithms and assignments are added in order to cope with the different problems from the outside world and to give you a huge arsenal of algorithms to deal with. Without any other expenses.

And as a bonus, this course includes Python code templates which you can download and use on your own projects.

Course Content

  • 10 section(s)
  • 188 lecture(s)
  • Section 1 Introduction
  • Section 2 .................. Supervised Learning ..................
  • Section 3 ----------------- Regression -----------------
  • Section 4 Simple Linear Regression
  • Section 5 Multiple Linear Regression
  • Section 6 Ridge & Lasso Regression
  • Section 7 Polynomial Regression
  • Section 8 Decision Trees & Random Forests Regression
  • Section 9 ----------------- CLASSIFICATION -----------------
  • Section 10 Logistic Regression Classifier

What You’ll Learn

  • Achieve the mastery in machine learning from simple linear regression to advanced reinforcement learning projects.
  • Get a deeper intuition about different Machine Learning nomenclatures.
  • Be able to manipulate different algorithms with the power of Mathematics.
  • Write different kinds of algorithms from scratch with Python.
  • Be able to preprocess any kind of Datasets.
  • Solve and Deal with different real-life and businesses problems from the outside world.
  • Deal with different machine learning and data science libraries like: Sikit-Learn, Pandas , NumPy & Matplotlib.
  • Explore the Data science world by handling, prepossessing and visualizing any kind of data set .
  • Make designs with advanced ML algorithms like the Reinforcement Leaning and handle different projects with the Gym library .

Reviews

  • R
    Robert Brozewicz
    5.0

    Just started but I can say that thte energetic voice, clear information and promise of comprehensive instruction and training is definitely alluring. I am joyfully listening to the lectures.

  • N
    Nwachukwu Ikenna Josiah
    4.0

    The course outline was educative and informative. Thanks.

  • S
    Sundaravaradhan Rengarajan
    5.0

    The instructor is enthusiastic in teaching. So far the concepts are easily understandable

  • N
    Nahid Hasan
    5.0

    It's a great course to start Machine Learning

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