Probability in Data (PID01)
Learn about the role of probability in data analysis. This course covers probability distributions, hypothesis testing, and statistical inference, enabling you to make informed decisions based on data.
1.1 - Introduction
1.2 - Probability in the Real World
1.3 - Why Probability Matters
1.4 - Probability in Action
1.5 - The Nuances of Probability
1.6 - Conclusion
2.1 - Understanding Probability
2.2 - Basic Probability Terms
2.3 - Probability Axioms
2.4 - Addition and Multiplication Rules in Probability
2.5 - Conditional Probability
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3.1 - Bayes Theorem
3.2 - Random Variables in Probability
3.3 - Probability Distributions
3.4 - Joint Probability and Independence
3.5 - Conditional Probability Continued
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4.1 - Covariance and Correlation
4.2 - Law of Large Numbers and Central Limit Thoerem
4.3 - Bayesian Inference
4.4 - Markov Chains
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5.1 - The Probability Scale
5.2 - Probability in Descriptive and Inferential Statistics
5.3 - Examples of Probability in Data Analysis
5.4 - Why Do We Need Probability in Data Analysis?
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