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Byju's Answer
Standard XI
Mathematics
Trigonometric Functions
If ∑n = 1100t...
Question
If
100
∑
n
=
1
tan
−
1
(
n
2
+
n
+
1
)
=
a
π
b
−
tan
−
1
c
,
where
a
,
b
,
c
∈
N
and
a
and
b
are relatively prime, then the value of
a
−
c
b
is
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Solution
tan
−
1
(
n
2
+
n
+
1
)
=
tan
−
1
(
n
(
n
+
1
)
+
1
(
n
+
1
)
−
n
)
=
π
2
−
tan
−
1
(
(
n
+
1
)
−
n
1
+
n
(
n
+
1
)
)
=
π
2
−
(
tan
−
1
(
n
+
1
)
−
tan
−
1
n
)
∴
100
∑
n
=
1
tan
−
1
(
n
2
+
n
+
1
)
=
100
(
π
2
)
−
(
tan
−
1
101
−
tan
−
1
1
)
=
50
π
+
π
4
−
tan
−
1
101
=
201
π
4
−
tan
−
1
(
101
)
∴
a
−
c
b
=
201
−
101
4
=
25
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1
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