If displaystyle ∑ n = 1∞ (tan)- 1((1/7 - 5 n + n2))=(π /2)+(tan)- 1c , then c is equal to

Question

If displaystyle ∑ n = 1∞ (tan)- 1((1/7 - 5 n + n2))=(π /2)+(tan)- 1c , then c is equal to (A) 2 (B) 3 (C) 17 (D) (5/2)

Tardigrade Admin · Accepted Answer

∑n=1∞ tan -1((1/7-5 n+n2))=∑n=1∞ tan -1 ((n-2)-(n-3)/1+(n-2)(n-3)) =∑ n =1∞[ tan -1( n -2)- tan -1( n -3)] =(π/2)- tan -1(-2)=(π/2)+ tan -1 2=( a π/ b )+ tan -1 c a =1, b =2, c =2

Q. If $n = 1 \sum \infty (t an)^{- 1} (\frac{1}{7 - 5 n + n ^{2}}) = \frac{π}{2} + (t an)^{- 1} c$ , then $c$ is equal to

$2$

$3$

$17$

$\frac{5}{2}$

Q. If n=1∑∞​(tan)−1(7−5n+n21​)=2π​+(tan)−1c , then c is equal to

2

3

17

25​

∑n=1∞​tan−1(7−5n+n21​)=∑n=1∞​tan−11+(n−2)(n−3)(n−2)−(n−3)​ =∑n=1∞​[tan−1(n−2)−tan−1(n−3)] =2π​−tan−1(−2)=2π​+tan−12=baπ​+tan−1c a=1,b=2,c=2

Q. If $n = 1 \sum \infty (t an)^{- 1} (\frac{1}{7 - 5 n + n ^{2}}) = \frac{π}{2} + (t an)^{- 1} c$ , then $c$ is equal to

$2$

$3$

$17$

$\frac{5}{2}$