Answer:
Normal (12, 0.20)
Step-by-step explanation:
Given that a population of cats has a population mean of
[tex]\mu = 12pounds\\\sigma = 2 pounds[/tex]
Also given that the distribution of weights of these cats is fairly symmetrical.
Since sample size is large and a random sample of 100 cats are drawn from this population, we find that
the mean of the sample would follow a normal distribution with mean =population mean and std deviation = population std dev/sqrt n
i.e. Sampling distribution of X would be normal with
mean = 12 pounds
and std deviation = [tex]\frac{2}{\sqrt{100} } \\=0.20[/tex]
