Answer to Question #338128 in Complex Analysis for Mathematician

Question #338128

Let f(z)=1/z^5 . Use the polar form of the Cauchy Riemann equations to determine where f is differentiable

1
Expert's answer
2022-05-08T14:45:48-0400

"z=re^{i\\theta}," where "r>0" and "\\theta\\in[0,2\\pi)". This is the polar form of the complex variable. "f=r^{-5}e^{-5i\\theta}." Remind that "e^{i\\theta}=cos(\\theta)+i\\,sin(\\theta)". We receive: "f=r^{-5}(cos(5\\theta)-i\\,sin(5\\theta))=u+iv," where "u=r^{-5}cos(5\\theta)", "v=-r^{-5}sin(5\\theta)". Cauchy-Riemann equations in polar coordinates have the following form: "\\frac{\\partial u}{\\partial r}=\\frac{1}{r}\\frac{\\partial v}{\\partial\\theta}", "\\frac{\\partial v}{\\partial r}=-\\frac1r\\frac{\\partial u}{\\partial\\theta}". "\\frac{\\partial u}{\\partial r}=-5r^{-6}cos(5\\theta)," "\\frac{\\partial u}{\\partial \\theta}=-5r^{-5}sin(5\\theta)", "\\frac{\\partial v}{\\partial r}=5r^{-6}sin(5\\theta)," "\\frac{\\partial v}{\\partial\\theta}=-5r^{-5}cos(5\\theta)". As we can see, the Cauchy-Riemann equations are satisfied at all points, except "r=0" . Functions "u,v" are continuously differentiable at all points, except "r=0". Thus, due to the respective Theorem from complex analysis, the function "f" is differentiable at all points except .


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