A die is thrown `31` times. The probability of getting `2,4` or `5` at most `15` times is
A
`(1)/(3)`
B
`(1)/(4)`
C
`(1)/(5)`
D
`(1)/(2)`
Text Solution
Verified by Experts
The correct Answer is:
D
`(d)` The probability of getting `2` or `4` or `5` in a single trial is `p=(1)/(6)+(1)/(6)+(1)/(6)=(1)/(2)` `:.q=(1)/(2)` The probability of getting `2` or `4` or `5` at most `15` times while throwing a die `31` times `="^(31)C_(0)*q^(31)+^(31)C_(1)*pq^(30)+^(31)C_(2)p^(2)q^(29)+....+^(31)C_(15)p^(15)q^(16)` `=("^(31)C_(0)+^(31)C_(1)+....+^(31)C_(15))(1)/(2^(31)) ( :' p=q=(1)/(2))` `=(1)/(2)("^(31)C_(0)+^(31)C_(1)+....+^(31)C_(31))(1)/(2^(31))` ( `:' ^(31)C_(16)=^(31)C_(15)` etc.) `=(1)/(2)*2^(31)*(1)/(2^(31))=(1)/(2)`
