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Byju's Answer
Standard XII
Mathematics
General Solution of cos theta = cos alpha
If z + 1z = 2...
Question
If
z
+
1
z
=
2
cos
θ
, where
z
is complex number and
i
=
√
−
1
, then
z
n
−
1
z
n
+
1
is
A
tan
(
n
θ
2
)
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B
i
tan
(
n
θ
2
)
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C
cot
(
n
θ
2
)
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D
i
cot
(
n
θ
2
)
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Solution
The correct option is
B
i
tan
(
n
θ
2
)
Let
z
=
r
(
cos
θ
+
i
sin
θ
)
⇒
1
z
=
r
(
cos
θ
−
i
sin
θ
)
z
+
1
z
=
2
cos
θ
⇒
r
(
cos
θ
+
i
sin
θ
+
cos
θ
−
i
sin
θ
)
=
2
cos
θ
⇒
r
=
1
∴
z
=
cos
θ
+
i
sin
θ
Now,
z
n
−
1
z
n
+
1
=
cos
n
θ
+
i
sin
n
θ
−
1
cos
n
θ
+
i
sin
n
θ
+
1
=
−
2
sin
2
n
θ
2
+
2
i
sin
n
θ
2
cos
n
θ
2
2
cos
2
n
θ
2
+
2
i
sin
n
θ
2
cos
n
θ
2
=
tan
(
n
θ
2
)
⎛
⎝
−
sin
n
θ
2
+
i
cos
n
θ
2
cos
n
θ
2
+
i
sin
n
θ
2
⎞
⎠
=
tan
(
n
θ
2
)
⎛
⎜ ⎜ ⎜ ⎜ ⎜
⎝
e
i
⎛
⎝
π
2
+
n
θ
2
⎞
⎠
e
i
n
θ
2
⎞
⎟ ⎟ ⎟ ⎟ ⎟
⎠
=
tan
(
n
θ
2
)
e
i
π
2
=
i
tan
(
n
θ
2
)
Suggest Corrections
0
Similar questions
Q.
If
z
+
1
z
=
2
cos
θ
, where
z
is complex number and
i
=
√
−
1
, then
z
n
−
1
z
n
+
1
is
Q.
If
z
is a complex number satisfying
z
+
z
−
1
=
1
, then
z
n
+
z
−
n
,
n
ϵ
N
has the value
Q.
Let
f
:
C
→
C
be a function defined as
f
(
z
)
=
z
+
i
z
−
i
for all complex numbers
z
≠
i
and
z
n
=
f
(
z
n
−
1
)
for all
n
∈
N
. If
z
0
=
K
+
i
and
z
2020
=
1
+
2020
i
, then the value of
(
1
K
)
is
Q.
Let
f
:
C
→
C
be a function defined as
f
(
z
)
=
z
+
i
z
−
i
for all complex numbers
z
≠
i
and
z
n
=
f
(
z
n
−
1
)
for all
n
∈
N
. If
z
0
=
K
+
i
and
z
2020
=
1
+
2020
i
, then the value of
(
1
K
)
is
Q.
If a complex number z satisfies the equation
z
+
√
2
|
z
+
1
|
+
i
=
0
,
where
i
=
√
−
1
, then
|
z
|
is equal to.
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