Answer
a) Probability that the demand will exceed 800 pounds = P (x > 800) = 0.9656
b) Probability that the demand will be between 900 and 1100 pounds
= P (900 ≤ x ≤ 1,100) = 0.6372
c) The probability of 0.15 that the demand will be more than 114.4 pounds
Step-by-step explanation
The problem is a normal distribution question.
So, to solve this, we would need to use the standardized score for all these weights.
The standardized score for any value is the value minus the mean then divided by the standard deviation.
z = (x - μ)/σ
z = standardized score
x = score to be standardized
μ = mean of the distribution = 1,000 pounds
σ = standard deviation of the distribution = 110 pounds
Part A
Probability that the demand will exceed 800 pounds = P (x > 800)
z = standardized score = ?
x = score to be standardized = 800 pounds
μ = mean of the distribution = 1,000 pounds
σ = standard deviation of the distribution = 110 pounds
z = (x - μ)/σ
z = (800 - 1000)/110
z = (-200/110)
z = -1.82
P (x > 800) = P (z > -1.82) = P (z ≤ 1.82) = 0.9656
Note that P (z ≤ 1.82) = 0.9656 was obtained from the normal distribution table or the normal distribution calculator.
Part B
Probability that the demand will be between 900 and 1100 pounds
= P (900 ≤ x ≤ 1,100)
x = 900, 1100
For 900 pounds
z = (x - μ)/σ
z = (900 - 1000)/110
z = (-100/110)
z = -0.91
For 1,100 pounds
z = (x - μ)/σ
z = (1100 - 1000)/110
z = (100/110)
z = 0.91
P (900 ≤ x ≤ 1100) = P (-0.91 ≤ z ≤ 0.91) = P (z ≤ 0.91) - P (z ≤ -0.91)
P (z ≤ 0.91) = 0.8186
P (z ≤ -0.91) = 1 - P (z ≤ 0.91) = 1 - 0.8186 = 0.1814
P (z ≤ 0.91) - P (z ≤ -0.91) = 0.8186 - 0.1814 = 0.6372
Part C
The probability is 0.15 that demand will be more than how many pounds?
P (x > X) = 0.15
P (x > X) = P (z > Z) = 0.15
We need to first find Z from the normal distribution tables
We will need to find the value from the tables that matches 0.15
P (z > Z) = 1 - P (z ≤ Z) = 0.15
P (z ≤ Z) = 1 - 0.15 = 0.85
Z = 1.04 (from the tables)
We can then find the value of X using the formula for standardizing
z = standardized score = 1.04
x = score to be standardized = ?
μ = mean of the distribution = 1,000 pounds
σ = standard deviation of the distribution = 110 pounds
z = (x - μ)/σ
1.04 = (x - 1000)/110
x - 1000 = (1.04) (110)
x - 1000 = 114.4
x = 1000 + 114.4
x = 1114.4 pounds
Hope this Helps!!!