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Sampling in Python

Descripción

Add sampling to your statistical toolbox to draw more accurate conclusions with less data.

Sampling in Python is the cornerstone of inference statistics and hypothesis testing. It's a powerful skill used in survey analysis and experimental design to draw conclusions without surveying an entire population. In this Sampling in Python course, you’ll discover when to use sampling and how to perform common types of sampling—from simple random sampling to more complex methods like stratified and cluster sampling. Using real-world datasets, including coffee ratings, Spotify songs, and employee attrition, you’ll learn to estimate population statistics and quantify uncertainty in your estimates by generating sampling distributions and bootstrap distributions.Lee mas.

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Relevancia profesional por rol de datos

Las técnicas y herramientas cubiertas en Sampling in Python son muy similares a los requisitos que se encuentran en los anuncios de trabajo de Científico de datos.

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