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07 Dec 2021, 06:45
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Difficulty:
85%
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Question Stats:
54% (02:36) correct
46%
(02:09)
wrong
based on 143
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X, Y and Z are three positive numbers. Further, X = 0.AAAAAA...., Y = 0.ABABABAB...., and X + Y = Z/33. Which of the following is one possible value of B?
(A) 2
(B) 3
(C) 4
(D) 5
(E) 7
Are You Up For the Challenge: 700 Level Questions
(A) 2
(B) 3
(C) 4
(D) 5
(E) 7
Are You Up For the Challenge: 700 Level Questions
07 Dec 2021, 07:00
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Bunuel
\(X = 0.AAAAAA.... = \frac{A}{9}\)
\(Y = 0.ABABABAB.... = \frac{AB}{99}\)
\(X + Y = \frac{A}{9} + \frac{AB}{99} = \frac{11A+AB}{99} = \frac{Z}{33}\)
ALso, AB = 10A + B and A, B and Z are single Digit numbers
i.e. \(11A+(10A + B) = 3Z\)
i.e. \(B = 3Z - 21A\)
if A = 1, then Z could be 7 and B will be 0
if A = 1, then Z could be 8 and B will be 3
if A = 1, then Z could be 9 and B will be 6
Answer: Option B
01 Dec 2025, 07:16
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Bunuel:
I worked backwards to solve this.. 3/33=1/11=0.090909..
I'm not sure it is the correct conceptual approach... A little help here please!!
I worked backwards to solve this.. 3/33=1/11=0.090909..
I'm not sure it is the correct conceptual approach... A little help here please!!
