Answer: [tex]\mu=2.88\ \&\ \sigma^2=0.115[/tex]
Step-by-step explanation:
Given : The probability of a correct classification of any part is : p=0.96
sample size : n= 3
The formula to find the mean and variance for binomial distribution is given by :-
[tex]\mu=np\\\\\sigma^2=np(1-p)[/tex]
Let the random variable X denote the number of parts that are correctly classified.
The, for the given situation, we have
[tex]\mu=3(0.96)=2.88\\\\\sigma^2=(3)(0.96)(1-0.96)=0.1152\approx0.115[/tex]
Hence, the mean and variance of X are 2.88 and 0.115 respectively.
