Answer to Question #261408 in Complex Analysis for Bre

Question #261408

This problem features the art of finding complex square roots as well as solving a quadratic equation using a resulting formulation based on completing the quadratic square.

(a) Given that u²=-60+32i , express u in the form a+bi where a,b=R

(b) Hence, solve the equation z²-(3_2i)z+5-5i=0

Expert's answer

(a) Let "u=a+bi." Then

"u^2=(a+bi)^2=a^2-b^2+2abi"

Given "u^2=-60+32i." Substitute

"a^2-b^2+2abi=-60+32i"

"\\begin{matrix}\n a^2-b^2=-60 \\\\\n ab=16\n\\end{matrix}"

"\\begin{matrix}\n a^2-\\dfrac{256}{a^2}=-60 \\\\\n b=\\dfrac{16}{a}\n\\end{matrix}"

"a^4+60a^2-256=0"

"D=(60)^2-4(1)(-256)=4624"

"a^2=\\dfrac{-60\\pm\\sqrt{4624}}{2(1)}=-30\\pm34"

Since "a\\in \\R," we take "a^2=-30+34=4"

"\\begin{matrix}\n a=-2 \\\\\n b=-8\\end{matrix}"

"\\begin{matrix}\n a=2 \\\\\n b=8\\end{matrix}"

"u=-2-8i\\ or\\ u=2+8i"

"z\u00b2-(3-2i)z+5-5i=0"

"D=(3-2i)^2-4(1)(5-5i)=9-4-12i-20+20i"

"=9-4-12i-20+20i=-15+8i"

"z=\\dfrac{-(3-2i)\\pm\\sqrt{D}}{2(1)}"

Let "u=a+bi." Then

"u^2=(a+bi)^2=a^2-b^2+2abi"

Suppose that "u^2=D=-15+8i." Substitute

"a^2-b^2+2abi=-15+8i"

"\\begin{matrix}\n a^2-b^2=-15 \\\\\n ab=4\n\\end{matrix}"

"\\begin{matrix}\n a^2-\\dfrac{16}{a^2}=-15 \\\\\n b=\\dfrac{4}{a}\n\\end{matrix}"

"a^4+15a^2-16=0"

"D=(15)^2-4(1)(-16)=289"

"a^2=\\dfrac{-15\\pm\\sqrt{289}}{2(1)}=\\dfrac{-15\\pm17}{2}"

Since "a\\in \\R," we take "a^2=\\dfrac{-15+17}{2}=1"

"\\begin{matrix}\n a=-1 \\\\\n b=-4\\end{matrix}"

"\\begin{matrix}\n a=1 \\\\\n b=4\\end{matrix}"

"u=-1-4i\\ or\\ u=1+4i"

"z=\\dfrac{-(3-2i)\\pm\\sqrt{(-1-4i)^2}}{2(1)}"

"=\\dfrac{-3+2i\\pm(-1-4i)}{2}"

"z_1=\\dfrac{-3+2i+1+4i}{2}=-1+3i"

"z_2=\\dfrac{-3+2i-1-4i}{2}=-2-i"

"z=\\dfrac{-(3-2i)\\pm\\sqrt{(1+4i)^2}}{2(1)}"

"=\\dfrac{-3+2i\\pm(1+4i)}{2}"

"z_3=\\dfrac{-3+2i-1-4i}{2}=-2-i"

"z_2=\\dfrac{-3+2i+1+4i}{2}=-1+3i"

"z=-2-i\\ or\\ z=-1+3i"

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Answer to Question #261408 in Complex Analysis for Bre

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