Why is norm pdf 0 .3989?
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Wouldn't normpdf(0) be .5? The probability of getting below 0 given a mean of 0 for a normal standard distribution function should be .5.
2 Kommentare
Adam
am 15 Nov. 2019
What code are you using?
pdf( 0 )
is not valid syntax unless you have some 3rd party pdf function.
the cyclist
am 15 Nov. 2019
They mean normpdf(0), not the norm of pdf(0). It's a function from the Statistics and Machine Learning Toolbox.
Antworten (2)
Chase Weinberg
am 15 Nov. 2019
Bearbeitet: Chase Weinberg
am 15 Nov. 2019
3 Kommentare
the cyclist
am 15 Nov. 2019
Bearbeitet: the cyclist
am 15 Nov. 2019
I'm not sure this is the best forum for a probability lesson. :-)
One has to be careful not to confuse the probability density with the probability itself.
Assuming a normal distribution, the probability that the event happens in the interval [x1 x2] is given by the integral of
normpdf(x) * dx
over the interval [x1 x2].
normpdf is not the probability. It's the probability density. You have to integrate the density over an interval to get a probability.
So, the "practical explanation" of normpdf(0) is that if you wanted to know the probability of something happening in the interval, say, x = 0.00 to x = 0.01, it would be approximately
normpdf(0) * ((0.01) - (0.00))
= 0.3989 * 0.01
= 0.003989
This is only approximate, because the pdf itself actually also changes a tiny bit from 0.00 to 0.01.
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