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Byju's Answer
Standard XII
Mathematics
Inverse Function
ecos2 x+cos4 ...
Question
e
(
cos
2
x
+
cos
4
x
+
cos
6
x
+
⋯
∞
)
log
e
2
satisfies the equation
t
2
–
9
t
+
8
=
0
,
then the value of
2
sin
x
sin
x
+
√
3
cos
x
,
(
0
<
x
<
π
2
)
is :
A
3
2
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B
2
√
3
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C
1
2
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D
√
3
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Solution
The correct option is
C
1
2
e
(
cos
2
x
+
cos
4
+
⋯
∞
)
ln
2
=
2
cos
2
x
+
cos
4
x
+
⋯
∞
=
2
cos
2
x
1
−
cos
2
x
(sum of infinite G.P.)
=
2
cot
2
x
t
2
−
9
t
+
8
=
0
⇒
t
=
1
,
8
⇒
2
cot
2
x
=
1
,
8
⇒
x
=
0
,
3
0
<
x
<
π
2
⇒
cot
x
=
√
3
Hence
2
sin
x
sin
x
+
√
3
cos
x
=
2
1
+
√
3
cot
x
=
1
2
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42
Similar questions
Q.
e
(
cos
2
x
+
cos
4
x
+
cos
6
x
+
⋯
∞
)
log
e
2
satisfies the equation
t
2
–
9
t
+
8
=
0
,
then the value of
2
sin
x
sin
x
+
√
3
cos
x
,
(
0
<
x
<
π
2
)
is :
Q.
lf
e
(
cos
2
x
+
cos
4
x
+
cos
6
x
+
…
.
)
log
3
satisfies
y
2
−
10
y
+
9
=
0
and
0
≤
x
≤
π
2
, then
cot
2
x
=
Q.
If
exp
[
(
sin
2
x
+
sin
4
x
+
sin
6
x
+
.
.
.
.
∞
)
log
e
2
, satisfies the equation
x
2
−
9
x
+
8
=
0
, then the value of
cos
x
cos
x
+
sin
x
,
0
<
x
<
π
2
is
Q.
If for
0
<
x
<
π
/
2
,
e
[
(
sin
2
x
+
sin
4
x
+
sin
6
x
+
.
.
.
+
∞
)
log
e
2
]
satisfies the quadratic equation,
x
2
−
9
x
+
8
=
0
, find the value of
sin
x
−
cos
x
sin
x
+
cos
x
Q.
e
{
(
sin
2
x
+
sin
4
x
+
sin
6
x
+
.
.
.
.
+
∞
)
log
2
}
satisfies the equation
x
2
−
9
x
+
8
=
0
,
find the value of
cos
x
cos
x
+
sin
x
,
0
<
x
<
π
/
2
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