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06 Feb 2021, 12:20
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If \(m = 2^x*5^y*7^z\) and both 350 and 280 are factors of m, what is the minimum value of xyz, where x, y and z are positive integers ?
(A) 700
(B) 70
(C) 24
(D) 6
(E) 5
(A) 700
(B) 70
(C) 24
(D) 6
(E) 5
06 Feb 2021, 12:39
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Asked: If \(m = 2^x*5^y*7^z\) and both 350 and 280 are factors of m, what is the minimum value of xyz, where x, y and z are positive integers ?
350 = 2×5^2×7
280 = 2^3×5×7
Minimum value of x = 3
Minimum value of y = 2
Minimum value of z = 1
Minimum value of xyz = 6
IMO D
Posted from my mobile device
350 = 2×5^2×7
280 = 2^3×5×7
Minimum value of x = 3
Minimum value of y = 2
Minimum value of z = 1
Minimum value of xyz = 6
IMO D
Posted from my mobile device
06 Feb 2021, 13:19
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m=2^x∗ 5^y∗ 7^z and
350= 2 * 5^2 * 7^1 and
280= 2^3 * 5^1 * 7^1
For min value of x, y and z will 3, 2, 1. So, xyz= 3*2*1 = 6
So, I think D.
350= 2 * 5^2 * 7^1 and
280= 2^3 * 5^1 * 7^1
For min value of x, y and z will 3, 2, 1. So, xyz= 3*2*1 = 6
So, I think D.
