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Byju's Answer
Standard XIII
Mathematics
Trigonometric Ratios of Compound Angles
If A, B, C 2n...
Question
If
A
,
B
,
C
≠
(
2
n
+
1
)
π
2
, then the numerical value of
sin
(
B
−
C
)
cos
B
cos
C
+
sin
(
C
−
A
)
cos
C
cos
A
+
sin
(
A
−
B
)
cos
A
cos
B
is
A
1
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B
2
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C
0
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D
−
2
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Solution
The correct option is
C
0
Here,
sin
(
B
−
C
)
cos
B
cos
C
=
sin
B
cos
C
−
cos
B
sin
C
cos
B
cos
C
=
tan
B
−
tan
C
⋯
⋯
(
1
)
Similarly,
sin
(
C
−
A
)
cos
C
cos
A
=
tan
C
−
tan
A
⋯
⋯
(
2
)
sin
(
A
−
B
)
cos
A
cos
B
=
tan
A
−
tan
B
⋯
⋯
(
3
)
Adding the equations
(
1
)
,
(
2
)
and
(
3
)
, we get
sin
(
B
−
C
)
cos
B
cos
C
+
sin
(
C
−
A
)
cos
C
cos
A
+
sin
(
A
−
B
)
cos
A
cos
B
=
0
Suggest Corrections
0
Similar questions
Q.
If
A
,
B
,
C
≠
(
2
n
+
1
)
π
2
, then the numerical value of
sin
(
B
−
C
)
cos
B
cos
C
+
sin
(
C
−
A
)
cos
C
cos
A
+
sin
(
A
−
B
)
cos
A
cos
B
is
Q.
Value of :
sin
(
B
−
C
)
cos
B
cos
C
+
sin
(
C
−
A
)
cos
C
cos
A
+
sin
(
A
−
B
)
cos
A
cos
B
Q.
Prove that:
(i)
s
i
n
(
A
+
B
)
+
s
i
n
(
A
−
B
)
c
o
s
(
A
+
B
)
+
c
o
s
(
A
−
B
)
=
t
a
n
A
(ii)
s
i
n
(
A
−
B
)
c
o
s
A
c
o
s
B
+
s
i
n
(
B
−
C
)
c
o
s
B
c
o
s
C
+
s
i
n
(
C
−
A
)
c
o
s
C
c
o
s
A
=
0
(iii)
s
i
n
(
A
−
B
)
s
i
n
A
s
i
n
B
+
s
i
n
(
B
−
C
)
s
i
n
B
s
i
n
C
+
s
i
n
(
C
−
A
)
s
i
n
C
s
i
n
A
=
0
(iv)
s
i
n
2
B
=
s
i
n
2
A
+
s
i
n
2
(
A
−
B
)
−
2
s
i
n
A
c
o
s
B
s
i
n
(
A
−
B
)
(v)
c
o
s
2
+
c
o
s
2
B
−
2
c
o
s
A
c
o
s
B
c
o
s
(
A
+
B
)
=
s
i
n
2
(
A
+
B
)
(vi)
t
a
n
(
A
+
B
)
c
o
t
(
A
−
B
)
=
t
a
n
2
A
−
t
a
n
2
B
1
−
t
a
n
2
A
t
a
n
2
B
Q.
If
A
,
B
,
C
be the angles of a
△
A
B
C
,then the value of
(
s
i
n
A
+
s
i
n
B
)
(
s
i
n
B
+
s
i
n
C
)
(
s
i
n
C
+
s
i
n
A
)
is?
Q.
Find the value of :
a
2
sin
(
B
−
C
)
sin
B
+
sin
C
+
b
2
sin
(
C
−
A
)
sin
C
+
sin
A
+
c
2
sin
(
A
−
B
)
sin
A
+
sin
B
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