$\Gamma(z)=(z-1)!=\displaystyle\int_0^\infty t^{z-1}e^{-t}dt\implies \Gamma\left(\frac32\right)=\frac12!=\displaystyle\int_0^\infty t^{\frac12}e^{-t}dt$
$ t^{\frac12}=x\implies \quad2\displaystyle\int_0^\infty x^2e^{-x^2}dx$ (2 carpanini unutmayalin en sonda)
$\displaystyle\int_0^\infty x^2e^{-x^2}dx\implies x=u, \quad\displaystyle\int xe^{-x^2}dx=\int dv\implies -\dfrac12 e^{-x^2}=v$
$\displaystyle\int_0^\infty udv=uv\Bigg|_0^\infty-\int_0^\infty vdu\implies$
$\displaystyle\int_0^\infty x^2e^{-x^2}dx=-\dfrac x2 e^{-x^2}\Bigg|_0^\infty+\dfrac12 \int_0^\infty e^{-x^2}dx=0+\dfrac12\dfrac{\sqrt{\pi}}{2}$
$\displaystyle\Gamma\left(\frac32\right)=\frac12!=\int_0^\infty t^{\frac12}e^{-t}dt=2\dfrac{\sqrt{\pi}}{4}=\dfrac{\sqrt{\pi}}{2}$
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Hata fonksiyonun tam degeri, bazi ozel sinirlar disinda, bulunamaz.
$\displaystyle\text{Erf}(x)=\dfrac{2}{\sqrt{\pi}}\int_0^xe^{-t^2}dt\implies$
$\displaystyle\text{Erf}(\infty)=\dfrac{2}{\sqrt{\pi}}\int_0^\infty e^{-t^2}dt=1\implies\int_0^\infty e^{-t^2}dt=\dfrac{\sqrt{\pi}}{2}$
$\boxed{\displaystyle\int_0^\infty e^{-t^2}dt=\dfrac{\sqrt{\pi}}{2}}$ oldugunu gostermek cok kolay degil ve surada gosterilmis.