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These lessons introduce best practices for processing and storing big data. They explore both forecasting for the future and analyzing earlier data. They also cover how to spot data inconsistencies, measure financial problems, and interpret your results. Finally, they introduce ways of testing for and correcting data variables.
Learning Objectives
It introduces best practices for processing and storing big data, covers forecasting for the future and analyzing earlier data, and explains how to spot data inconsistencies, measure financial problems, and interpret results.
You will build skills in Data Analysis, Data Systems, Process Modeling, and Quantitative Modeling.
Lessons cover Financial Regression Analysis, Applied Forecasting with Data, Types of Data Analysis, Detecting Anomalies, Quantifying Financial Problems, Interpreting Results, and Data Integrity, followed by a Test Your Knowledge assessment.
You will be able to identify the advantages of qualitative and quantitative data modeling, understand the five different data models, and identify and correct inconsistent data.