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Artificial Intelligence Bootcamp 44 projects Ivy League pro

Be a Machine Learning, Matplotlib, NumPy, and TensorFlow pro. Use AI for programming, business or science!

3.8 / 5.0
13544 students13 hours 24 minutes

Created by Gopal Shangari, offered on Udemy

bestcourses score™

Student feedback

5.9/10

To make sure that we score courses properly, we pay a lot of attention to the reviews students leave on courses and how many students are taking a course in the first place. This course has a total of 13544 students which left 80 reviews at an average rating of 3.8, which is average.

Course length

9/10

We analyze course length to see if courses cover all important aspects of a topic, taking into account how long the course is compared to the category average. This course has a length of 13 hours 24 minutes, which is pretty short. This might not be a bad thing, but we've found that longer courses are often more detailed & comprehensive. The average course length for this entire category is 7 hours 54 minutes.

Overall score

5.6/10

This course currently has a bestcourses score of 5.6/10, which makes it an average course. Overall, there are probably better courses available for this topic on our platform.

Description

My name is Gopal.  I used AI to classify brain tumors.  I have 11 publications on pubmed talking about that.  I went to Cornell University and taught at Cornell, Amherst and UCSF.  I worked at UCSF and NIH.

AI and Data Science are taking over the world!  Well sort of, and not exactly yet.  This is the perfect time to hone you skills in AI, data analysis, and robotics, Artificial Intelligence has taken the world by storm as a major field of research and development. Python has surfaced as the dominant language in intelligence and machine learning programming because of its simplicity and flexibility, in addition to its great support for open source libraries and TensorFlow.

This video course is built for those with a NO understanding of artificial intelligence or Calculus and linear Algebra.  We will introduce you to advanced artificial intelligence projects and techniques that are valuable for engineering, biological research, chemical research, financial, business, social, analytic, marketing (KPI), and so many more industries.  Knowing how to analyze data will optimize your time and your money.  There is no field where having an understanding of AI will be a disadvantage.  AI really is the future.  

We have many projects, such natural language processing , handwriting recognition, interpolation, compression, bayesian analysis, hyperplanes (and other linear algebra concepts).  ALL THE CODE IS INCLUDED AND EASY TO EXECUTE.  You can type along or just execute code in Jupyter if you are pressed for time and would like to have the satisfaction of having the course hold your hand.  

I use the AI I created in this course to trade stock.  You can use AI to do whatever you want.  These are the projects which we cover.  

For Data Science / Machine Learning / Artificial Intelligence

  • 1. Machine Learning

  • 2. Training Algorithm 

  • 3. SciKit 

  • 4. Data Preprocessing 

  • 5. Dimesionality Reduction 

  • 6. Hyperparemeter Optimization 

  • 7. Ensemble Learning 

  • 8. Sentiment Analysis

  • 9.  Regression Analysis

  • 10.Cluster Analysis

  • 11. Artificial Neural Networks 

  • 12. TensorFlow 

  • 13. TensorFlow Workshop 

  • 14. Convolutional Neural Networks 

  • 15. Recurrent Neural Networks 

Traditional statistics and Machine Learning

  • 1. Descriptive Statistics

  • 2.Classical Inference Proportions 

  • 3. Classical InferenceMeans

  • 4. Bayesian Analysis

  • 5. Bayesian Inference Proportions

  • 6. Bayesian Inference Means

  • 7. Correlations

  • 11. KNN

  • 12. Decision Tree 

  • 13. Random Forests 

  • 14. OLS 

  • 15. Evaluating Linear Model 

  • 16. Ridge Regression

  • 17.  LASSO Regression

  • 18. Interpolation 

  • 19. Perceptron Basic

  • 20.  Training Neural Network 

  • 21. Regression Neural Network 

  • 22. Clustering

  • 23. Evaluating Cluster Model

  • 24. kMeans

  • 25. Hierarchal 26. Spectral 

  • 27. PCA 

  • 28. SVD 

  • 29. Low Dimensional 

What you will learn

  • Code for image recognition, handwriting recognition, data analysis, and create recurrent neural networks.

Requirements

  • Some experience with Python is needed. Statistics would be helpful but not required.
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Frequently asked questions

  • Price: $94.99
  • Platform: Udemy
  • Language: English
  • 13 hours 24 minutes
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bestcourses score: 5.6/10

There might be better courses available for this topic.