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प्रश्न
Let Sn denote the sum of n terms of an A.P. whose first term is a. If the common difference d is given by d = Sn − kSn−1 + Sn−2, then k =
पर्याय
1
2
3
none of these.
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उत्तर
In the given problem, we are given d = Sn - kSn-1 + Sn-2
We need to find the value of k
So here,
First term = a
Common difference = d
Sum of n terms = Sn
Now, as we know,
`S_n = n/2 [2a + (n - 1) d ] ` .............(1)
Also, for n-1 terms,
`S_(n-1) = (n-1)/2 [ 2a + [(n-1) - 1]d]`
` = (n-1)/2 [2a + ( n -2) d ] ` .............(2)
Further, for n-2 terms,
`S_(n - 2) = (n - 2)/2 [ 2a + [(n - 2 ] d]`
`= (n-2)/2 [ 2a + ( n - 3) d ] ` ...............(3)
Now, we are given,
d = Sn - kSn -1 + Sn-2
d + KSn-1 = Sn + Sn-2
` K = (S_n + S_(n-2) - d ) /S_(n-1)`
Using (1), (2) and (3) in the given equation, we get
`k = (n/2[2a + (n-1) d ] + (n-2)/2 [2a + ( n - 3)d]-d)/((n-1)/2 [ 2a + (n - 2 ) d ])`
Taking `1/2` common, we get,
`K = (n[2a + (n-1)d] + (n-2) [2a + ( n- 3)d]- 2d)/((n-1)[2a + (n-2) d])`
` =(2an + n^2d - nd + 2an + n^2d - 3nd - 4a - 2nd + 6d - 2d)/(2an + n^2d - 2nd - 2a - nd + 2d)`
` = (2n^2d + 4an - 6nd - 4a + 4d)/(n^2d + 2an - 3nd + -2a + 2d)`
Taking 2 common from the numerator, we get,
`k = (2(n^2 d + 2an - 3nd + -2a + 2d))/(n^2d + 2an - 3nd + -2a +2d)`
= 2
Therefore, k = 2
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