The problem is asking for the probability of rolling exactly one '6' when rolling a fair dice three times. This is a binomial probability problem. The probability of rolling a '6' on a fair die is \( \frac{1}{6} \), and the probability of not rolling a '6' is \( \frac{5}{6} \). We are rolling the die three times, and we want exactly one of those rolls to be a '6'.
The binomial probability formula is given by: \[ P(X = k) = \binom{n}{k} p^k (1-p)^{n-k} \] where:
\( n \) is the number of trials (3 rolls),
\( k \) is the number of successful outcomes (exactly one '6'),
\( p \) is the probability of success on a single trial (\( \frac{1}{6} \)). Substituting the values: \[ P({exactly one '6'}) = \binom{3}{1} \left( \frac{1}{6} \right)^1 \left( \frac{5}{6} \right)^2 \] \[ = 3 \times \frac{1}{6} \times \frac{25}{36} = 3 \times \frac{25}{216} = \frac{75}{216}. \] Thus, the probability of rolling exactly one '6' is \( \frac{75}{216} \). Therefore, the correct answer is \( \boxed{A} \).
If the probability distribution is given by:
| X | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
|---|---|---|---|---|---|---|---|---|
| P(x) | 0 | k | 2k | 2k | 3k | k² | 2k² | 7k² + k |
Then find: \( P(3 < x \leq 6) \)
If \(S=\{1,2,....,50\}\), two numbers \(\alpha\) and \(\beta\) are selected at random find the probability that product is divisible by 3 :
Ravi had _________ younger brother who taught at _________ university. He was widely regarded as _________ honorable man.
Select the option with the correct sequence of articles to fill in the blanks.
Consider the relationships among P, Q, R, S, and T:
• P is the brother of Q.
• S is the daughter of Q.
• T is the sister of S.
• R is the mother of Q.
The following statements are made based on the relationships given above.
(1) R is the grandmother of S.
(2) P is the uncle of S and T.
(3) R has only one son.
(4) Q has only one daughter.
Which one of the following options is correct?
According to the map shown in the figure, which one of the following statements is correct?
Note: The figure shown is representative.
