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Question

Each entry of List I is to be matched with one entry of List II.

List IList II (A)100(112+123+134++199100) equals (P)7 (B)If x is the arithmetic mean between two real numbers a and b,(Q)9y=a2/3b1/3 and z=a1/3b2/3, then y3+z3xyz equals(C)If 198 arithmetic means are inserted between 14 and 34, then(R)99the sum of these arithmetic means is(D)If n is a positive integer such that n,n(n1)2 and(S)100n(n1)(n2)6 are in A.P., then the value of n is(T)2

Which of the following is the only CORRECT combination?

A
(C)(R),(D)(Q)
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B
(C)(Q),(D)(P)
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C
(C)(R),(D)(P)
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D
(C)(S),(D)(R)
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Solution

The correct option is C (C)(R),(D)(P)
(C)
Let the inserted A.M.s between 14 and 34 be A1,A2,,A198
14,A1,A2,,A198,34
A1+A2++A198=198⎜ ⎜ ⎜14+342⎟ ⎟ ⎟=99

(D)
2n(n1)2=n+n(n1)(n2)6
6(n1)=6+(n1)(n2)
6n6=6+n23n+2
n29n+14=0
n=7 or 2

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