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Item Details | Price |
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Are your results 'Random' and does not 'Support' the output? Learn all about implementing Support Vector Machine and Random Forest.
Language: English
Instructors: AI Monks
Validity Period: 365 days
40% Cashback as Credits
Why this course?
Do you know that Classification is the most commonly applied machine learning method and is used to develop machine learning models that can classify large amounts of data to predict the required outcome? This is also one of the most popular problems to be asked in the data analytics and data scientist job interviews.
In this course, we will try to predict the trade calls in the stock market. There are many machine learning techniques available to do classification. We will cover the classification using Support Vector Machine and Random Forest.
Who should opt for this course?
Comprehensive Course Coverage
This course covers the implementation of Support Vector Machine and Random Forest for a classification problem – trade call prediction in the stock market, in great depth. It covers the following aspects:
In case of any query, please reach out to us at info@aimonks.com
Introduction to Predictive Modeling in the Stock Market | |||
Introduction to Predictive Modeling in the Stock Market | |||
Stock Market Prediction Using Support Vector Machine | |||
Fundamentals of Support Vector Machine | |||
Building Support Vector Machine Model in Python | |||
Stock Market Prediction Using Random Forest | |||
Fundamentals of Random Forest | |||
Building Random Forest Model in Python |
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