AP Statistics 2017

(Marvins-Underground-K-12) #1
=687.33.



  1.     Let D   =   “a  home    has a   desktop computer”;  L   =   “a  home    has a   laptop  computer.”  We  are given   that    P

    (D) = 0.8 and P (D and L) = 0.3. Thus,



  2. The situation can be pictured as shown below. The shaded area is a trapezoid whose area is

  3. The fact that Harv’s pumpkin is at the 90th percentile means that it is larger than 90% of the
    pumpkins in the contest. From the table of Standard Normal Probabilities, the area to the left of a term
    with a z -score of 1.28 is about 0.90. Thus,


So, Harv’s  pumpkin weighed about   148 pounds  (for    your    information,    the winning pumpkin at  the
Half Moon Bay Pumpkin Festival in 2008 weighed over 1528 pounds!). Seven of the 62 pumpkins
weighed more than 1000 pounds!



  1.         Since       ,   we  have    P   (X =    4)  =   1   –   P   (X =    2)  –   P   (X =    3)  =   1   –   0.3 –   0.5 =   0.2.    Thus,   filling in  the

    table for X , we have




Since   X and   Y are   independent,    P   (X =    4   and Y = 3)  =   P   (X =    4)  ·   P   (X =    3). We  are given   that    P   (X =
4 and Y = 3) = 0.03. Thus, P (X = 4) · P (Y = 3) = 0.03. Since we now know that P (X = 4) = 0.2, we
have (0.2). P (Y = 3) = 0.03, which gives us .

Now,    since   ΣP  (Y  )   =   1,  we  have    P   (Y =    5)  =   1   –   P   (Y =    3)  –   P   (Y =    4)  –   P   (Y =    6)  =   1   –   0.15    –   0.1 –
0.4 = 0.35.



  1.     Let A   =   “the    number  is  divisible   by  24” =   {24,    48, 72, 96}.    Let B   =   “the    number  is  divisible   by  36”

    = {36, 72}.
    Note that P (A and B) = (72 is the only number divisible by both 24 and 36 ).



Free download pdf