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02 Jun 2020, 02:32
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Difficulty:
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51% (02:42) correct
49%
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wrong
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S is the sum of the reciprocals of the squares of the prime numbers between 19 and 41, exclusive. Which of the following is closest to the value of S?
A. \(2 * 10^{-4}\)
B. \(5 * 10^{-3}\)
C. \(2.5 * 10^{-2}\)
D. \(5 * 10^{-2}\)
E. \(2 * 10^{-1}\)
Are You Up For the Challenge: 700 Level Questions
02 Jun 2020, 03:31
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prime numbers between 19 and 41 are 23, 29, 31 and 37
\((\frac{1}{23})^2 +(\frac{1}{29})^2 + (\frac{1}{31})^2 + (\frac{1}{37})^2 \)
\(= (\frac{1}{30-7})^2 +(\frac{1}{30-1})^2 + (\frac{1}{30+1})^2 + (\frac{1}{30+7})^2\)
\(≈ 4*(\frac{1}{30})^2\)
\(≈ 4*\frac{1}{9} *10^{-2}\)
\(≈ 0.445 * 10^{-2}\)
\(≈ 4.45 * 10^{-3}\)
Which is closest to option B
\((\frac{1}{23})^2 +(\frac{1}{29})^2 + (\frac{1}{31})^2 + (\frac{1}{37})^2 \)
\(= (\frac{1}{30-7})^2 +(\frac{1}{30-1})^2 + (\frac{1}{30+1})^2 + (\frac{1}{30+7})^2\)
\(≈ 4*(\frac{1}{30})^2\)
\(≈ 4*\frac{1}{9} *10^{-2}\)
\(≈ 0.445 * 10^{-2}\)
\(≈ 4.45 * 10^{-3}\)
Which is closest to option B
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02 Jun 2020, 03:30
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IMO B
Prime numbers between 19 - 41 = {23, 29, 31,37 }
S= 1/23^2 + 1/29^2 + 1/31^2 + 1/37^2
S*100^2 = (100/23)^2 + (100/29)^2 + (100/31)^2 +(100/37)^2
Approx. S*100^2 = [5]^2 + [3]^2 + [3]^2 +[3]^2
S*100^2 = 53
S = 53 X 10^-4 = 5.3 X 10^-3
Nearest one-
B. 5∗10^−3
Prime numbers between 19 - 41 = {23, 29, 31,37 }
S= 1/23^2 + 1/29^2 + 1/31^2 + 1/37^2
S*100^2 = (100/23)^2 + (100/29)^2 + (100/31)^2 +(100/37)^2
Approx. S*100^2 = [5]^2 + [3]^2 + [3]^2 +[3]^2
S*100^2 = 53
S = 53 X 10^-4 = 5.3 X 10^-3
Nearest one-
B. 5∗10^−3
