Answer to Question #297058 in Complex Analysis for Neena

Let us evaluate the integral "\u222e_c\\frac{dz}{(z-1)(z-2)(z-4)}" where "C" is "|z| = 3."

It follows that "z_1=1" and "z_2=2" are the simple poles containing in the inner part of the circle "|z|=3."

According to residue theorem

"\u222e_c\\frac{dz}{(z-1)(z-2)(z-4)}=2\\pi i(Res_{z=1}\\frac{1}{(z-1)(z-2)(z-4)}+Res_{z=2}\\frac{1}{(z-1)(z-2)(z-4)})\n\\\\\n=2\\pi i(\\frac{1}{(z-2)(z-4)}|_{z=1}+\\frac{1}{(z-1)(z-4)}|_{z=2})\n=2\\pi i(\\frac{1}{(1-2)(1-4)}+\\frac{1}{(2-1)(2-4)})\n\\\\=2\\pi i(\\frac{1}{3}-\\frac{1}{2})\n=2\\pi i(-\\frac{1}{6})=-\\frac{\\pi i}3."