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the derivative oftan 1 1 x2 1x with respect to tan
Question:
The derivative of
tan
−
1
(
1
+
x
2
−
1
x
)
with respect to
tan
−
1
(
2
x
1
−
x
2
1
−
2
x
2
)
at
x
=
0
WBJEE
Updated On:
Apr 24, 2024
(A)
1
8
(B)
1
4
(C)
1
2
(D) 6
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The Correct Option is
B
Solution and Explanation
Explanation:
Let
y
=
tan
−
1
(
1
+
x
2
−
1
x
)
and
z
=
tan
−
1
(
2
x
1
−
x
2
1
−
2
x
2
)
Put
x
=
tan
θ
in
y
,
we get
y
=
tan
−
1
(
sec
2
θ
−
1
tan
θ
)
=
tan
−
1
(
sec
θ
−
1
tan
θ
)
=
tan
−
1
(
tan
θ
2
)
=
1
2
tan
−
1
x
⇒
d
y
d
x
=
1
2
(
1
+
x
2
)
Put
x
=
sin
θ
in
z
,
we get
z
=
tan
−
1
(
2
sin
θ
cos
2
θ
1
−
2
sin
2
θ
)
=
tan
−
1
(
2
sin
θ
cos
θ
cos
2
θ
)
=
tan
−
1
(
tan
2
θ
)
=
2
θ
z
=
2
sin
−
1
x
⇒
d
z
d
x
=
2
1
−
x
2
Thus,
d
y
d
z
=
d
y
/
d
x
d
z
/
d
x
=
1
2
(
1
+
x
2
)
×
1
−
x
2
2
At
x
=
0
,
d
y
d
z
=
1
4
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