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INTRO TO DATA ANALYTICS EXAM STUDY GUIDE QUESTIONS AND ANSWERS

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INTRO TO DATA ANALYTICS EXAM STUDY GUIDE QUESTIONS AND ANSWERS

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INTRO TO DATA ANALYTICS EXAM
STUDY GUIDE QUESTIONS AND
ANSWERS
Time series analysis - ANSWER-A forecasting method that uses historical sales data
to discover patterns in the firm's sales over time and generally involves trend, cycle,
seasonal, and random factor analyses

Factor analysis - ANSWER-correlations among many variables are analyzed to
identify closely related clusters of variables

Association rules analysis - ANSWER-specify a relation between attributes that
appears more frequently than expected if the attributes were independent.

Text analysis - ANSWER-A process for extracting value from large quantities of
unstructured text data.

Principal component analysis - ANSWER-a statistical method to simplify the
description of a set of interrelated variables. Its general objectives are data reduction
and interpretation; there is no separation into dependent and independent variables;
the original set of correlated variables is transformed into a smaller set of
uncorrelated variables called the principal components. Often used as the first step
in a factor analysis.

Multiple regression - ANSWER-a statistical technique that computes the relationship
between a predictor variable and a criterion variable, controlling for other predictor
variables

Logistic regression - ANSWER-A statistical analysis which determines an individual's
risk of the outcome as a function of a risk factor. The outcome of interest has two
categories.

standard deviation - ANSWER-a computed measure of how much scores vary
around the mean score

coefficient of determination - ANSWER-a measure of the amount of variation in the
dependent variable about its mean that is explained by the regression equation

p-value - ANSWER-The probability level which forms basis for deciding if results are
statistically significant (not due to chance).

The probability of observing a test statistic as extreme as, or more extreme than, the
statistic obtained from a sample, under the assumption that the null hypothesis is
true.

Linear regression - ANSWER-a statistical method used to fit a linear model to a
given data set

, Nonlinear regression - ANSWER-Used if a hypothesis exists that suggests a
curvilinear relationship between the predictor variables and the criterion variable.

Random forest - ANSWER-An algorithm used for regression or classification that
uses a collection of tree data structures trees "vote" on the best model

Naive Bayes - ANSWER-Classification predictive
Training data classify new data points
ie red, round, Apple, yellow, oblong,banana
If new obj red then more likely Apple

SPSS modeler - ANSWER-It is used for applying the trained model to new data for
predictions
model execution phase

Feature selection - ANSWER-the process of selecting attributes which are most
predictive of the class we are predicting

Cross-validation - ANSWER-Verifying the results obtained from a validation study by
administering a test or test battery to a different sample (drawn from the same
population)

Data preprocessing - ANSWER-A tedious process of converting raw data into an
analytic ready state.

Model Deployment - ANSWER-the process of putting machine learning models into
production

Result analysis - ANSWER-detailed description of the results obtained through
experimentation.

Data post-processing - ANSWER-simple way of applying mathematical expressions,
logic arithmetic and conditional functions to data

Operationalization - ANSWER-the process of assigning a precise method for
measuring a term being examined for use in a particular study

Ruby - ANSWER-Has a dynamic type system and automatic memory management.

Swift - ANSWER-powerful and intuitive programming language optimized when
running on iOS, macOS, and other Apple platforms

MATLAB - ANSWER-used for a variety of mathematical calculations and tasks

Data scientist - ANSWER-extracts knowledge from data by performing statistical
analysis, data mining, and advanced analytics on big data to identify trends, market
changes, and other relevant information

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