Let `omega` be a complex cube root unity with `omega!=1.` A fair die is thrown three times. If `r_1, r_2a n dr_3` are the numbers obtained on the die, then the probability that `omega^(r1)+omega^(r2)+omega^(r3)=0` is `1//18` b. `1//9` c. `2//9` d. `1//36`

Let omega be a complex cube root unity with omega!=1. A fair die is thrown three xx.If r_(1),r_(2) and r_(3) are the numbers obtained on the die,then the probability that omega^(r1)+omega^(r2)+omega^(r3)=0 is (a) (1)/(18) (b) (1)/(9)(c)(2)/(9) (d) (1)/(36)

Let omega be a cube of unity . If r_1,r_2,and r_3 be the numbers obtained on the die. Then probability of omega^(r_1)+omega^(r_2)+omega^(r_3)=0 is

Let omega be a complex cube root of unity with 0

If omega ne 1 is a cube root of unity, then 1, omega, omega^(2)

If omega is a complex cube root of unity, then (1-omega+omega^(2))^(6)+(1-omega^(2)+omega)^(6)=