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Byju's Answer
Standard XII
Mathematics
Sum of Binomial Coefficients with Alternate Signs
If 1+xn=C0+C1...
Question
If
(
1
+
x
)
n
=
C
0
+
C
1
x
+
C
2
x
2
+
C
3
x
3
+
⋯
+
C
n
x
n
,
then
C
0
C
2
+
C
1
C
3
+
C
2
C
4
+
⋯
+
C
n
−
2
C
n
=
A
(
2
n
)
!
(
n
!
)
2
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B
(
2
n
)
!
(
n
−
1
)
!
(
n
+
1
)
!
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C
(
2
n
)
!
(
n
−
2
)
!
(
n
+
2
)
!
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D
None of these
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Solution
The correct option is
C
(
2
n
)
!
(
n
−
2
)
!
(
n
+
2
)
!
We know that,
(
1
+
x
)
n
=
C
0
+
C
1
x
+
C
2
x
2
+
C
3
x
3
+
⋯
+
C
n
x
n
⋯
(
1
)
(
x
+
1
)
n
=
C
0
x
n
+
C
1
x
n
−
1
+
C
2
x
n
−
2
+
C
3
x
n
−
3
+
⋯
+
C
n
⋯
(
2
)
Multiplying
(
1
)
and
(
2
)
and equating the coefficient of
x
n
−
2
,
we get
C
0
C
2
+
C
1
C
3
+
C
2
C
4
+
⋯
+
C
n
−
2
C
n
=
coefficient of
x
n
−
2
in
(
1
+
x
)
2
n
=
2
n
C
n
−
2
=
(
2
n
)
!
(
n
−
2
)
!
(
n
+
2
)
!
Suggest Corrections
5
Similar questions
Q.
If
(
1
+
x
)
n
=
C
0
+
C
1
x
+
C
2
x
2
+
.
.
.
+
C
n
x
n
, then
C
0
C
2
+
C
1
C
3
+
C
2
C
4
+
.
.
.
+
C
n
−
2
C
n
=
Q.
C
0
C
2
+
C
1
C
3
+
C
2
C
4
+
C
n
−
2
C
n
=
(
2
n
)
!
(
n
−
1
)
!
(
n
=
1
)
!
Q.
If
(
1
+
x
)
n
=
C
0
+
C
1
x
+
C
2
x
2
+
.
.
.
.
.
.
+
C
n
x
n
, prove that
C
0
C
r
+
C
1
C
r
+
1
+
.
.
.
.
.
.
+
C
n
−
r
C
n
=
(
2
n
)
!
(
n
+
r
)
!
(
n
−
r
)
!
Q.
If
(
1
+
x
)
n
=
C
0
+
C
1
x
+
C
2
x
2
+
⋯
+
C
n
x
n
, and
(
C
0
+
C
1
)
(
C
1
+
C
2
)
⋯
(
C
n
−
1
+
C
n
)
=
k
⋅
C
1
C
2
C
3
⋯
C
n
then
k
is equal to
Q.
If
(
1
+
x
)
n
=
c
0
+
c
1
x
+
c
2
x
2
+
c
3
x
3
+
.
.
.
.
+
c
n
x
n
,
n being a positive integer, find the value of
(
n
−
1
)
2
c
1
+
(
n
−
3
)
2
c
3
+
(
n
−
5
)
2
c
5
+
.
.
.
.
.
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Sum of Binomial Coefficients with Alternate Signs
Standard XII Mathematics
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