Misconceptions about the normal distribution

Template:Short description Students of statistics and probability theory sometimes develop misconceptions about the normal distribution, ideas that may seem plausible but are mathematically untrue. For example, it is sometimes mistakenly thought that two linearly uncorrelated, normally distributed random variables must be statistically independent. However, this is untrue, as can be demonstrated by counterexample. Likewise, it is sometimes mistakenly thought that a linear combination of normally distributed random variables will itself be normally distributed, but again, counterexamples prove this wrong.^[1][2]

To say that the pair ${\displaystyle (X,Y)}$ of random variables has a bivariate normal distribution means that every linear combination ${\displaystyle aX+bY}$ of ${\displaystyle X}$ and ${\displaystyle Y}$ for constant (i.e. not random) coefficients ${\displaystyle a}$ and ${\displaystyle b}$ (not both equal to zero) has a univariate normal distribution. In that case, if ${\displaystyle X}$ and ${\displaystyle Y}$ are uncorrelated then they are independent.^[3] However, it is possible for two random variables ${\displaystyle X}$ and ${\displaystyle Y}$ to be so distributed jointly that each one alone is marginally normally distributed, and they are uncorrelated, but they are not independent; examples are given below.

Suppose ${\displaystyle X}$ has a normal distribution with expected value 0 and variance 1. Let ${\displaystyle W}$ have the Rademacher distribution, so that ${\displaystyle W=1}$ or ${\displaystyle W=-1}$, each with probability 1/2, and assume ${\displaystyle W}$ is independent of ${\displaystyle X}$. Let ${\displaystyle Y=WX}$. Then ${\displaystyle X}$ and ${\displaystyle Y}$ are uncorrelated, as can be verified by calculating their covariance. Moreover, both have the same normal distribution. And yet, ${\displaystyle X}$ and ${\displaystyle Y}$ are not independent.^[4][1][5]

To see that ${\displaystyle X}$ and ${\displaystyle Y}$ are not independent, observe that ${\displaystyle |Y|=|X|}$ or that ${\displaystyle \mathrm{Pr}(Y>1|-1/2<X<1/2)=\mathrm{Pr}(X>1|-1/2<X<1/2)=0}$.

Finally, the distribution of the simple linear combination ${\displaystyle X+Y}$ concentrates positive probability at 0: ${\displaystyle \mathrm{Pr}(X+Y=0)=1/2}$. Therefore, the random variable ${\displaystyle X+Y}$ is not normally distributed, and so also ${\displaystyle X}$ and ${\displaystyle Y}$ are not jointly normally distributed (by the definition above).^[4]

Suppose ${\displaystyle X}$ has a normal distribution with expected value 0 and variance 1. Let $${\displaystyle Y=\{\begin{array}{cc}X& \text{if }\left|X\right|\le c\\ -X& \text{if }\left|X\right|>c\end{array}}$$ where ${\displaystyle c}$ is a positive number to be specified below. If ${\displaystyle c}$ is very small, then the correlation ${\displaystyle \mathrm{corr}(X,Y)}$ is near ${\displaystyle -1}$ if ${\displaystyle c}$ is very large, then ${\displaystyle \mathrm{corr}(X,Y)}$ is near 1. Since the correlation is a continuous function of ${\displaystyle c}$, the intermediate value theorem implies there is some particular value of ${\displaystyle c}$ that makes the correlation 0. That value is approximately 1.54.^[2]Template:NoteTag In that case, ${\displaystyle X}$ and ${\displaystyle Y}$ are uncorrelated, but they are clearly not independent, since ${\displaystyle X}$ completely determines ${\displaystyle Y}$.

To see that ${\displaystyle Y}$ is normally distributed—indeed, that its distribution is the same as that of ${\displaystyle X}$ —one may compute its cumulative distribution function:^[6] $${\displaystyle \begin{array}{cc}\mathrm{Pr}(Y\le x)& =\mathrm{Pr}(\{|X|\le c\text{ and }X\le x\}\text{ or }\{|X|>c\text{ and }-X\le x\})\\ & =\mathrm{Pr}(|X|\le c\text{ and }X\le x)+\mathrm{Pr}(|X|>c\text{ and }-X\le x)\\ & =\mathrm{Pr}(|X|\le c\text{ and }X\le x)+\mathrm{Pr}(|X|>c\text{ and }X\le x)\\ & =\mathrm{Pr}(X\le x),\end{array}}$$

where the next-to-last equality follows from the symmetry of the distribution of ${\displaystyle X}$ and the symmetry of the condition that ${\displaystyle |X|\le c}$.

In this example, the difference ${\displaystyle X-Y}$ is nowhere near being normally distributed, since it has a substantial probability (about 0.88) of it being equal to 0. By contrast, the normal distribution, being a continuous distribution, has no discrete part—that is, it does not concentrate more than zero probability at any single point. Consequently ${\displaystyle X}$ and ${\displaystyle Y}$ are not jointly normally distributed, even though they are separately normally distributed.^[2]

Suppose that the coordinates ${\displaystyle (X,Y)}$ of a random point in the plane are chosen according to the probability density function $${\displaystyle p(x,y)=\frac{1}{2\pi \sqrt{3}}[\exp (-\frac{2}{3}(x^2+xy+y^2))+\exp (-\frac{2}{3}(x^2-xy+y^2))].}$$Then the random variables ${\displaystyle X}$ and ${\displaystyle Y}$ are uncorrelated, and each of them is normally distributed (with mean 0 and variance 1), but they are not independent.^[7]Template:Rp

It is well-known that the ratio ${\displaystyle C}$ of two independent standard normal random deviates ${\displaystyle X_i}$ and ${\displaystyle Y_i}$ has a Cauchy distribution.^[8][9][7]Template:Rp One can equally well start with the Cauchy random variable ${\displaystyle C}$ and derive the conditional distribution of ${\displaystyle Y_i}$ to satisfy the requirement that ${\displaystyle X_i=C{Y}_i}$ with ${\displaystyle X_i}$ and ${\displaystyle Y_i}$ independent and standard normal. It follows that $${\displaystyle Y_i=W_i\sqrt{\frac{{\chi }_i^2(k=2)}{1+C^2}}}$$ in which ${\displaystyle W_i}$ is a Rademacher random variable and ${\displaystyle {\chi }_i^2(k=2)}$ is a Chi-squared random variable with two degrees of freedom.

Consider two sets of ${\displaystyle (X_i,Y_i)}$, ${\displaystyle i\in \{1,2\}}$. Note that ${\displaystyle C}$ is not indexed by ${\displaystyle i}$ – that is, the same Cauchy random variable ${\displaystyle C}$ is used in the definition of both ${\displaystyle (X_1,Y_1)}$ and ${\displaystyle (X_2,Y_2)}$. This sharing of ${\displaystyle C}$ results in dependences across indices: neither ${\displaystyle X_1}$ nor ${\displaystyle Y_1}$ is independent of ${\displaystyle Y_2}$. Nevertheless all of the ${\displaystyle X_i}$ and ${\displaystyle Y_i}$ are uncorrelated as the bivariate distributions all have reflection symmetry across the axes.Template:Cn

The figure shows scatterplots of samples drawn from the above distribution. This furnishes two examples of bivariate distributions that are uncorrelated and have normal marginal distributions but are not independent. The left panel shows the joint distribution of ${\displaystyle X_1}$ and ${\displaystyle Y_2}$; the distribution has support everywhere but at the origin. The right panel shows the joint distribution of ${\displaystyle Y_1}$ and ${\displaystyle Y_2}$; the distribution has support everywhere except along the axes and has a discontinuity at the origin: the density diverges when the origin is approached along any straight path except along the axes.

• Correlation and dependence

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Notes

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