If `|z_1/z_2|=1` and `arg (z_1z_2)=0` , thenA. `z_(1) = z_(2)`B. `|z_(2)|^(2) = z_(1)z_(2)`C. `z_(1)z_(2)= 1`D. more than 8

If `|z_1/z_2|=1` and `arg (z_1z_2)=0` , thenA. `z_(1) = z_(2)`B. `|z_(

1.	If `\|z_1/z_2\|=1` and `arg (z_1z_2)=0` , thenA. `z_(1) = z_(2)`B. `\|z_(2)\|^(2) = z_(1)z_(2)`C. `z_(1)z_(2)= 1`D. more than 8
Answer» Correct Answer - B Let `z_(1)=\|z_(1)\|(costheta_(1)+I sintheta_(1))`. Now, `\|(z_(1))/(z_(2))\|=1rArr\|z_(1)\|=\|z_(2)\|` Also, `arg(z_(1)z_(2))=0orarg(z_(1)+arg(z_(2))=0` `rArr arg(z_(2))=-theta_(1)` `rArr z_(2)=\|z_(2)\|(cos(-theta_(1))+i sin(-theta_(1)))` `=\|z_(1)\|(costheta_(1)-isintheta_(1))=barz_(1)` `rArr \|z_(2)\|=bar((barz_(1)))=z_(1)` `rArr\|z_(2)\|^(2)=z_(1)z_(2)`

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If `|z_1/z_2|=1` and `arg (z_1z_2)=0` , thenA. `z_(1) = z_(2)`B. `|z_(2)|^(2) = z_(1)z_(2)`C. `z_(1)z_(2)= 1`D. more than 8

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