If z=x-iy and z1 / 3=p+i q, then (1/p2+q2)((x/p)+(y/q)) is equal to

Question

If z=x-iy and z1 / 3=p+i q, then (1/p2+q2)((x/p)+(y/q)) is equal to (A) -2 (B) -1 (C) 1 (D) 2

Tardigrade Admin · Accepted Answer

z=x-i y z1 / 3=p+i q z=p3+(i q)3+3 p2 i q+3 p i2 q2 x-i y=p3-3 p q2+i(3 p2 q-q3) x=p[p2-3 q2] x=p[p2-3 q2] y=q[q2-3 p2] (x/p)+(y/q)=p2+q2-3 p2-3 q2 (x/p)+(y/q)=-2(p2+q2) (1/p2+q2)((x/p)+(y/q))=-2

Q. If $z = x$ -iy and $z^{1/3} = p + i q$ , then $\frac{1}{p ^{2} + q ^{2}} (\frac{x}{p} + \frac{y}{q})$ is equal to

$- 2$

$- 1$

$1$

$2$

$0$

Q. If z=x-iy and z1/3=p+iq, then p2+q21​(px​+qy​) is equal to

−2

−1

1

2

0

z=x−iy z1/3=p+iq z=p3+(iq)3+3p2iq+3pi2q2 x−iy=p3−3pq2+i(3p2q−q3) x=p[p2−3q2] x=p[p2−3q2] y=q[q2−3p2] px​+qy​=p2+q2−3p2−3q2 px​+qy​=−2(p2+q2) p2+q21​(px​+qy​)=−2

Q. If $z = x$ -iy and $z^{1/3} = p + i q$ , then $\frac{1}{p ^{2} + q ^{2}} (\frac{x}{p} + \frac{y}{q})$ is equal to

$- 2$

$- 1$

$1$

$2$

$0$