Probability Distrinutions | Math for Data science | Telugu | coding nerchuko mawa
Автор: coding nerchuko mawa
Загружено: 2025-11-06
Просмотров: 1
Описание: The collected sources offer a comprehensive overview of *probability distributions* in data science and statistics, detailing common types like the *Normal (Gaussian), Uniform, Binomial, Poisson, and Exponential distributions**. Several texts explain the **properties and applications* of these distributions, such as using the *Binomial distribution* for analysing binary outcomes in *A/B testing**. Furthermore, the material explores the **mathematical techniques for generating these distributions* from uniformly distributed random numbers, highlighting the *Inverse Transformation Method* and the *Box–Muller transform* specifically for creating *normally distributed* variables. One source also addresses *misconceptions about the Normal distribution**, while others provide practical advice and **Python code examples* for simulating and statistically testing whether datasets conform to a specific distribution.
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