The Complete Course: Artificial Intelligence From Scratch




The Complete Course: Artificial Intelligence From Scratch

Do you like to learn how to forecast economic time series like stock price or indexes with high accuracy?

Do you like to know how to predict weather data like temperature and wind speed with a few lines of codes?

Do you like to classify Handwritten digits more accurately ?

If you say Yes so read more ...


In computer science, Artificial intelligence (AI), sometimes called machine intelligence, is intelligence demonstrated by machines, in contrast to the natural intelligence displayed by humans and other animals. In this you are going to learn essential concepts of AI using Python:

Neural Networks

Classification Methods

Regression Analysis

Optimization Methods

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in the First, Second,Third sections you will learn Neural Networks

You will learn how to make Recurrent Neural Networks using Keras and LSTMs:

  • you'll learn how to use python and Keras to forecast google stock price .  


  • you'll know how to use python and Keras to predict NASDAQ Index precisely.


  • you'll learn how to use python and Keras to forecast New York temperature with low error. 


  • you'll know how to use python and Keras to predict New York Wind speed accurately.


In the next section you learn how to use python and sklearn MLPclassifier to forecast output of different datasets like 

  • Logic Gates

  • Vehicles Datasets

  • Generated Datasets

In the third section you can forecast output of different datasets using Keras library like

  • Random datasets

  • Forecast International Airline passengers

  • Los Angeles temperature forecasting

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Next you will learn how to classify well known datasets into with high accuracy using k-Nearest Neighbors, Bayes, Support Vector Machine and Logistic Regression.

In the 4th section you learn how to use python and k-Nearest Neighbors to estimate output of your system. In this section you can classify:

  • Python Dataset

  • IRIS Flowers

  • Make your own k Nearest Neighbors Algorithm

In the 5th section you learn how to use Bayes and python to classify output of your system with nonlinear structure .In this section you can classify:

  • IRIS Flowers

  • Pima Indians Diabetes Database

  • Make your own Naive Bayes  Algorithm

You can also learn how to classify datasets by by Support Vector Machines to find the correct class for data and reduce error. Next you go further  You will learn how to classify output of model by using Logistic Regression

In the 6th section you learn how to use python to estimate output of your system. In this section you can estimate output of:

  • Random dataset

  • IRIS Flowers

  • Handwritten Digits

In the 7th section you learn how to use python to classify output of your system with nonlinear structure .In this section you can estimate output of:

  • Blobs

  • IRIS Flowers

  • Handwritten Digits

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After it we are going to learn regression methods like Linear, Multi-Linear and Polynomial  Regression.

In the 8th section you learn how to use Linear Regression and python to estimate output of your system. In this section you can estimate output of:

  • Random Number

  • Diabetes

  • Boston House Price

  • Built in Dataset

In the 9th section you learn how to use python and Multi Linear Regression to estimate output of your system with multivariable inputs.In this section you can estimate output of:

  • Global Temprature

  • Total Sales of Advertising Campaign

  • Built in Dataset

In the 10th section you learn how to use python Polynomial Regression to estimate output of your system. In this section you can estimate output of:

  • Nonlinear Sine Function

  • Python Dataset

  • Temperature and CO2

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Finally I want to learn you theory behind bio inspired algorithms like Genetic Algorithm  and Particle Swarm Optimization Method. You'll learn basic genetic operators like mutation crossover and selection and how they are work. You'll learn basic concepts of Particle Swarm and how they are work.

In the 11th section you will learn how to use python and deap library to solve optimization problem and find Min/Max points for your desired functions using Genetic Algorithm.

  • you'll learn theory of Genetic Algorithm Optimization Method


  • you'll know how to use python and deap to optimize simple function precisely.


  • you'll learn how to use python and deap to find optimum point of complicated Trigonometric function


  • you'll know how to use python and deap to solve  Travelling Salesman Problem (TSP) accurately.


In the 12th section we go further you will learn how to use python and deap library to solve optimization problem using Particle Swarm Optimization

  • you'll learn theory of Particle Swarm Optimization Method


  • you'll know how to use python and deap to optimize simple function precisely.


  • you'll learn how to use python and deap to find optimum point of complicated Trigonometric function


  • you'll know how to use python and deap to solve  Rastrigin standard function accurately.

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Important information before you enroll:

  • In case you find the course useless for your career, don't forget you are covered by a 30 day money back guarantee, full refund, no questions asked!

  • Once enrolled, you have unlimited, lifetime access to the course!

  • You will have instant and free access to any updates I'll add to the course.

  • You will give you my full support regarding any issues or suggestions related to the course.

  • Check out the curriculum and FREE PREVIEW lectures for a quick insight.

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Music from Jukedeck - create your own at jukedeck com

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It's time to take Action!

Click the "Take This Course" button at the top right now!

...Don't waste time! Every second of every day is valuable...

I can't wait to see you in the course!

Best Regrads,

Sobhan

Learn the Essential Concepts of the AI like Neural Networks, Classification, Regression and Optimization Using Python.

Url: View Details

What you will learn
  • Learn the basic of Artificial Intelligence from scratch.
  • Learn how Neural Networks work.
  • Program Multilayer Perceptron Network from scratch in python.

Rating: 3.25

Level: All Levels

Duration: 14.5 hours

Instructor: Sobhan N.


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