Applied Statistics Real World Problem Solving

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Applied Statistics Real World Problem Solving, Applied Statistics Real World Problem Solving.

Course Description

Applied Statistics: Real World Problem Solving is a comprehensive course designed to equip you with the statistical tools and techniques needed to analyze real-world data and make informed decisions. Whether you’re a business analyst, data scientist, or simply looking to enhance your data analysis skills, this course will provide you with a solid foundation in applied statistics.

Key Topics Covered:

  • Introduction to Business Statistics: Understand the basics of data types and their relevance in business, along with the differences between quantitative and qualitative data.
  • Measures of Central Tendency: Learn about mean, median, and mode, and their importance in summarizing data.
  • Measures of Dispersion: Explore standard deviation, mean deviation, and quantile deviation to understand data variability.
  • Distributions and the Central Limit Theorem: Dive into different types of distributions and grasp the central limit theorem’s significance.
  • Sampling and Z-Scores: Understand the concepts of sampling from a uniform distribution and calculating Z-scores.
  • Hypothesis Testing: Learn about p-values, hypothesis testing, t-tests, confidence intervals, and ANOVA.
  • Correlation: Study the Pearson correlation coefficient and its advantages and challenges.
  • Advanced Statistical Concepts: Differentiate between correlation and causation, and perform in-depth hypothesis testing.
  • Data Cleaning and Preprocessing: Master techniques for cleaning and preprocessing data, along with plotting histograms and detecting outliers.
  • Statistical Analysis and Visualization: Summarize data with summary statistics, visualize relationships between variables using pair plots, and handle high correlations using heat maps.

What You’ll Gain:

  • Practical Skills: Apply statistical techniques to real-world problems, making data-driven decisions in your professional field.
  • Advanced Understanding: Develop a deep understanding of statistical concepts, from basic measures of central tendency to advanced hypothesis testing.
  • Hands-On Experience: Engage in practical exercises and projects to solidify your knowledge and gain hands-on experience.

Who This Course Is For:

  • Business Analysts: Looking to enhance their data analysis skills.
  • Data Scientists: Seeking to apply statistical techniques to solve complex problems.
  • Students and Professionals: Interested in mastering applied statistics for career advancement.

Prerequisites:

  • Basic Understanding of Mathematics: No prior programming experience needed.
  • Interest in Data Analysis: A keen interest in learning how to analyze and interpret data effectively.

By the end of this course, you will be equipped with the skills and knowledge to tackle real-world data problems using applied statistics. Enroll now and take the first step towards becoming proficient in statistical analysis!


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