Aviation and high-altitude physiology is a specialty in the study of medicine. Let x = partial pressure of oxygen in the alveoli (air cells in the lungs) when breathing naturally available air. Let y = partial pressure when breathing pure oxygen. The (x, y) data pairs correspond to elevations from 10,000 feet to 30,000 feet in 5000 foot intervals for a random sample of volunteers. Although the medical data were collected using airplanes, they apply equally well to Mt. Everest climbers (summit 29,028 feet). x 6.7 4.5 4.2 3.3 2.1 (units: mm Hg/10) y 44.4 32.7 26.2 16.2 13.9 (units: mm Hg/10)  Σx = 20.8, Σy = 133.4, Σx2 = 98.08, Σy2 = 4182.74, Σxy = 637.32, and r ≈ 0.971

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Aviation and high-altitude physiology is a specialty in the study of medicine. Let x = partial pressure of oxygen in the alveoli (air cells in the lungs) when breathing naturally available air. Let y = partial pressure when breathing pure oxygen. The (x, y) data pairs correspond to elevations from 10,000 feet to 30,000 feet in 5000 foot intervals for a random sample of volunteers. Although the medical data were collected using airplanes, they apply equally well to Mt. Everest climbers (summit 29,028 feet).

x 6.7 4.5 4.2 3.3 2.1 (units: mm Hg/10)
y 44.4 32.7 26.2 16.2 13.9 (units: mm Hg/10)
 Σx = 20.8, Σy = 133.4, Σx2 = 98.08, Σy2 = 4182.74, Σxy = 637.32, and r ≈ 0.971.
 
a) Use a 5% level of significance to test the claim that p > 0. (Use 2 decimal places.)
t =
critical t =

 

b) Find the predicted pressure when breathing pure oxygen if the pressure from breathing available air is x = 3.3. (Use 2 decimal places.)

lower limit=

upper limit=

c) Use a 5% level of significance to test the claim that B(beta) > 0. (Use 2 decimal places.)

t=

critical t=

Find a 99% confidence interval for B(beta) and interpret its meaning. (Use 2 decimal places.)

lower limit=

upper limit=

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