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Byju's Answer
Standard XII
Mathematics
Manipulation of a linear equation
If #160; ...
Question
If
37
13
=
2
+
1
x
+
1
y
+
1
z
, where
x
,
y
,
z
are natural numbers, then
x
,
y
,
z
are
A
1
,
2
,
5
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B
1
,
5
,
2
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C
5
,
2
,
11
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D
11
,
2
,
5
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Solution
The correct option is
B
1
,
5
,
2
2
+
1
x
+
1
y
+
1
z
=
37
13
=
2
11
13
=
2
+
11
13
⇒
1
x
+
1
y
+
1
z
=
11
13
⇒
x
+
1
y
+
1
z
=
13
11
⇒
x
+
1
y
+
1
z
=
1
+
2
11
⇒
x
=
1
,
y
+
1
z
=
11
2
=
5
1
2
=
5
+
1
2
⇒
x
=
1
,
y
=
5
,
z
=
2
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0
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