Respuesta :
Answer:
The correct option is (A).
Step-by-step explanation:
Let X = number of orange  milk chocolate M&M’s.
The proportion of orange milk chocolate M&M’s is, p = 0.20.
The number of candies in a small bag of milk chocolate M&M’s is, n = 55.
The event of an milk chocolate M&M being orange is independent of the other candies.
The random variable X follows a Binomial distribution with parameter n = 55 and p = 0.20.
The expected value of a Binomial random variable is:
[tex]E(X)=np[/tex]
Compute the expected number of orange  milk chocolate M&M’s in a bag of 55 candies as follows:
[tex]E(X)=np[/tex]
     [tex]=55\times 0.20\\=11[/tex]
It is provided that in a randomly selected bag of milk chocolate M&M's there were 14 orange ones, i.e. the proportion of orange milk chocolate M&M's in a random bag was 25.5%.
This proportion is not surprising.
This is because the average number of orange milk chocolate M&M’s in a bag of 55 candies is expected to be 11. So, if a bag has 14 orange milk chocolate M&M’s it is not unusual at all.
All unusual events have a very low probability, i.e. less than 0.05.
Compute the probability of P (X ≥ 14) as follows:
[tex]P(X\geq 14)=\sum\limits^{55}_{x=14}{{55\choose x}0.20^{x}(1-0.20)^{55-x}}[/tex]
         [tex]=0.1968[/tex]
The probability of having 14 or more orange candies in a bag of milk chocolate M&M’s is 0.1968.
This probability is quite larger than 0.05.
Thus, the correct option is (A).
