Cumulative density function: Difference between revisions
Delusion23 (talk | contribs) adding link |
mNo edit summary |
||
(18 intermediate revisions by 9 users not shown) | |||
Line 1: | Line 1: | ||
'''''Cumulative density function''''' is a self-contradictory phrase resulting from confusion between: |
|||
{{Orphan|date=November 2013}} |
|||
* [[probability density function]], and |
|||
A '''cumulative density function''' ('''CDF''') has the same x-axis as a [[probability density function]] (PDF), but the y-axis is the probability of being at that point or lower. |
|||
* [[cumulative distribution function]]. |
|||
The two words ''cumulative'' and ''density'' contradict each other. The value of a density function in an interval about a point depends only on probabities of sets in arbitrarily small neighborhoods of that point, so it is not cumulative. |
|||
That is to say, if values are taken from a population of values described by the density function, and plotted as points on a linear axis, the density function reflects the density with which the plotted points will accumulate. The probability of finding a point between {{math|''x''<sub>1</sub>}} and {{math|''x''<sub>2</sub>}} is the integral of the probability density function over this range. |
|||
{{math-stub}} |
|||
{{Uncategorized stub|date=November 2013}} |
|||
This is related to the [[probability mass function]], which is the equivalent for variables that assign positive probability to individual points. The probability mass function is therefore sometimes referred to as the ''discrete density function''. |
|||
In both cases, the cumulative distribution function is the integral (or, in the discrete case, the sum) for all values less than or equal to the current value of {{math|''x''}}, and so shows the accumulated probability so far. This is the sense in which it is ''cumulative''. Thus the probability density function of the [[normal distribution]] is a bell-curve, while the corresponding cumulative distribution function is a strictly increasing function that visually looks similar to a [[sigmoid function]], which approaches 0 at −∞ and approaches 1 at +∞. |
|||
{{disambig}} |
Latest revision as of 22:14, 20 June 2023
Cumulative density function is a self-contradictory phrase resulting from confusion between:
The two words cumulative and density contradict each other. The value of a density function in an interval about a point depends only on probabities of sets in arbitrarily small neighborhoods of that point, so it is not cumulative.
That is to say, if values are taken from a population of values described by the density function, and plotted as points on a linear axis, the density function reflects the density with which the plotted points will accumulate. The probability of finding a point between x1 and x2 is the integral of the probability density function over this range.
This is related to the probability mass function, which is the equivalent for variables that assign positive probability to individual points. The probability mass function is therefore sometimes referred to as the discrete density function.
In both cases, the cumulative distribution function is the integral (or, in the discrete case, the sum) for all values less than or equal to the current value of x, and so shows the accumulated probability so far. This is the sense in which it is cumulative. Thus the probability density function of the normal distribution is a bell-curve, while the corresponding cumulative distribution function is a strictly increasing function that visually looks similar to a sigmoid function, which approaches 0 at −∞ and approaches 1 at +∞.