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Tardigrade
Question
Mathematics
∫ e tan θ( sec θ- sin θ) d θ is equal to
Q.
∫
e
t
a
n
θ
(
sec
θ
−
sin
θ
)
d
θ
is equal to
76
144
Integrals
Report Error
A
−
e
t
a
n
θ
sin
θ
+
c
B
e
t
a
n
θ
sin
θ
+
c
C
e
t
a
n
θ
sec
θ
+
c
D
e
t
a
n
θ
cos
θ
+
c
Solution:
I
=
∫
e
t
a
n
θ
(
sec
θ
−
sin
θ
)
d
θ
=
∫
e
t
a
n
θ
(
s
e
c
2
θ
s
e
c
θ
−
s
i
n
θ
)
sec
2
θ
d
θ
I
=
∫
e
t
a
n
θ
(
s
e
c
θ
1
−
s
e
c
2
θ
s
i
n
θ
)
sec
2
θ
d
θ
=
∫
e
t
a
n
θ
(
1
+
t
a
n
2
θ
1
−
(
1
+
t
a
n
2
θ
)
3/2
t
a
n
θ
)
sec
2
θ
d
θ
=
e
t
a
n
θ
⋅
1
+
t
a
n
2
θ
1
=
e
t
a
n
θ
⋅
cos
θ
+
C