Problem 1 (S points total) The Department of Animal Regulation released informat
ID: 2936665 • Letter: P
Question
Problem 1 (S points total) The Department of Animal Regulation released information on pet ownership for the population of all households in a particular county. The variable considered was (k) the number cf licensed dogs or cats for a household. The probability distribution for number of licensed dogs or cats for a household is given in the following table: x-#of licensed cats or dogs. 5 0.01 P(X x) 0.22 0.13 0.09 0.03 0.52 a. (2 points) Is this a legitimate probability model? Explain b. (3 points) What is the probability of randomly selecting a household with three or more licensed dogs or cats? Show work. Problem 2: (5 points) A machine that cuts corks for wine bottles operates in such a way that the distribution of the diameter of the corks produced is well approximated by a normal distribution with mean 3 cm and standard deviation 0.1 cm. The specifications call for corks with diameters between 2.9 and 3.1 cm. A cork not meeting the specifications is considered defective. What is the probability of random selecting a defective cork? Show work.Explanation / Answer
Problem 1
Part a
The probability model is legitimate if the sum of all probabilities is 1.
Here, P(X=x) = 0.52+0.22+0.13+0.09+0.03+0.01 = 1.00
So, this is a legitimate probability model.
Part b
We have to find P(X3)
P(X3) = P(X=3) + P(X=4) + P(X=5)
P(X3) = 0.09 + 0.03 + 0.01 = 0.13
Problem 2
We are given that diameters are normally distributed.
Mean = 3
SD = 0.1
We have to find the probability of randomly selecting a defective cork.
Specification limits are 2.9 and 3.1 cm.
We have to find P(X<2.9) + P(X>3.1)
First we have to find P(X<2.9)
Z = (X – Mean) / SD
Z = (2.9 – 3)/0.1 = -1
P(Z<-1) = P(X<2.9) = 0.158655254
Now, we have to find P(X>3.1)
P(X>3.1) = 1 – P(X<3.1)
Z = (3.1 – 3) / 0.1 = 1
P(Z<1) = P(X<3.1) = 0.841344746
P(X>3.1) = 1 – P(X<3.1)
P(X>3.1) = 1 – 0.841344746
P(X>3.1) = 0.158655254
P(X<2.9) + P(X>3.1) = 0.158655254 + 0.158655254 = 0.317310508
Required probability = 0.317310508
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