Can covariance be infinite?

The correlation measures both the strength and direction of the linear relationship between two variables. Covariance values are not standardized. Therefore, the covariance can range from negative infinity to positive infinity.
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What are limits for covariance?

Covariance can take on practically any number while a correlation is limited: -1 to +1. Because of it's numerical limitations, correlation is more useful for determining how strong the relationship is between the two variables. Correlation does not have units.
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Is covariance always zero?

Covariance can be positive, zero, or negative.
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Can a variance be infinite?

What is Infinite Variance? Models with infinite variance have right tails that extend to infinity. Variance is a measure of how spread out a distribution is. Distributions with infinite variance have fat upper tails that decrease at an extremely slow rate.
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Is covariance constant?

The covariance is a combinative as is obvious from the definition. Rule 4. The covariance of a random variable with a constant is zero.
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Covariance, Clearly Explained!!!



What does it mean when covariance is 0?

A Correlation of 0 means that there is no linear relationship between the two variables. We already know that if two random variables are independent, the Covariance is 0.
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What are the limitation of the covariance explain through example?

Limitations of Covariance

While we can gauge the directional relationship between the variables, the magnitude in itself, is not very informative. From the above example, a covariance of 0.91 does not tell us how strong the relationship between the returns of Stock X and Y is, and as such, our conclusions are limited.
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Is variance always finite?

For any real set of data the variance is bound to be a finite number, but for some theoretical distributions, notably power-law distributions, if you mathematically calculate variance it is infinite. This does impact practical statistics.
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Can a distribution have infinite mean?

Not possible. A distribution with finite mean and infinite variance.
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Does variance always exist?

The sample mean and variance will always exist (the sample consists of a finite collection of numbers, for which the sample quantities will be well-defined), it's the things that they estimate that are not finite (either infinite or undefined), and as such the sample estimates can't really convey useful information ...
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Is the covariance always between 1 and 1?

Both correlation and covariance are positive when the variables move in the same direction, and negative when they move in opposite directions. However, a correlation coefficient must always be between -1 and +1, with the extreme values indicating a strong relationship.
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What does it mean if covariance is 1?

Covariance measures the linear relationship between two variables. The covariance is similar to the correlation between two variables, however, they differ in the following ways: Correlation coefficients are standardized. Thus, a perfect linear relationship results in a coefficient of 1.
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Why is covariance 0 but not independent?

However, a zero covariance does not imply that two random variables are independent. The magnitude of covariance depends on the variables since it is not a normalized measure. As a result, the values themselves are not a clear indication of how strong the linear relationship is.
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What are the three different types of covariance?

Types of Covariance
  • Positive Covariance.
  • Negative Covariance.
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Is covariance bounded?

The bounds are that the covariance cannot be greater than the product of the standard deviations (and cannot be less than the negative of the same value). However for a covariance matrix of more than 2 terms there is an additional limit, the matrix has to be positive semi-definite (or positive definite in some cases).
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Why is covariance difficult to interpret?

It tells us how much two variables vary together, and is computed as follows: The covariance is difficult to interpret, because it is not normalized. The bigger the covariance, does not necessarily mean the stronger the relationship. For clearer interpretation, we need to standardize the covariance.
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What is a finite level of variance?

If the smaller tail index is greater than 2, then the random variable has a finite variance, when it is between 1 and 2, the random variable has a finite mean but an infinite variance, and when it is less than 1, the random variable does not have a finite mean.
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Does finite variance imply finite mean?

The variance is not defined if the mean is not finite. As pointed out above, if the second moment is finite then the mean is finite. Thanks.
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What does infinite mean in statistics?

On the other hand, infinite statistics are those calculated from infinite sets. For example, a probability density function has, for practical purposes, an infinite number of data points under its curve.
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Can variance diverge?

Yes, but variance is a measure of the square of the deviation.
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What is a finite variable?

A discrete random variable is finite if its list of possible values has a fixed (finite) number of elements in it (for example, the number of smoking ban supporters in a random sample of 100 voters has to be between 0 and 100). One very common finite random variable is obtained from the binomial distribution.
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Does variance is always positive?

Variance is always nonnegative, since it's the expected value of a nonnegative random variable. Moreover, any random variable that really is random (not a constant) will have strictly positive variance.
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What is covariant risk?

”Covariance risk” is the risk that a project will have a strong (typically negative) relationship between generation and price — so an hour of abnormally high generation will correspond to a low power price, and vice versa.
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What is difference between variance and covariance?

Variance and covariance are mathematical terms frequently used in statistics and probability theory. Variance refers to the spread of a data set around its mean value, while a covariance refers to the measure of the directional relationship between two random variables.
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What covariance tells us?

Covariance indicates the relationship of two variables whenever one variable changes. If an increase in one variable results in an increase in the other variable, both variables are said to have a positive covariance. Decreases in one variable also cause a decrease in the other.
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