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2. Descriptive Statistics
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... (c) Convenience ...
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...  Distribution > Stack (this lays the histogram horizontally).  Shelf Life > Display Options > More Moments (this gives the variance, skewness, kurtosis, and coefficient of variation (CV))  Shelf Life > Histogram Options > Prob Axis (adds a relative frequency axis to the histogram)  Shelf Life > ...
Statistics
Statistics

... Statistics Introduction: ...
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Chapter 11 Practice Exam

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Confidence Intervals about a Population Mean

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Ultimate GCSE Statistics Revision Guide

... When organisations require data they either use data collected by somebody else (secondary data), or collect it themselves (primary data). This is usually done by SAMPLING that is collecting data from a representative SAMPLE of the population they are interested in. A POPULATION need not be human. I ...
Find the mean absolute deviation (MAD) of the following data sets
Find the mean absolute deviation (MAD) of the following data sets

< 1 ... 120 121 122 123 124 125 126 127 128 ... 382 >

Bootstrapping (statistics)



In statistics, bootstrapping can refer to any test or metric that relies on random sampling with replacement. Bootstrapping allows assigning measures of accuracy (defined in terms of bias, variance, confidence intervals, prediction error or some other such measure) to sample estimates. This technique allows estimation of the sampling distribution of almost any statistic using random sampling methods. Generally, it falls in the broader class of resampling methods.Bootstrapping is the practice of estimating properties of an estimator (such as its variance) by measuring those properties when sampling from an approximating distribution. One standard choice for an approximating distribution is the empirical distribution function of the observed data. In the case where a set of observations can be assumed to be from an independent and identically distributed population, this can be implemented by constructing a number of resamples with replacement, of the observed dataset (and of equal size to the observed dataset).It may also be used for constructing hypothesis tests. It is often used as an alternative to statistical inference based on the assumption of a parametric model when that assumption is in doubt, or where parametric inference is impossible or requires complicated formulas for the calculation of standard errors.
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