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Question

The system of equation ax+y+z=0,x+by+z=0;x+y+cz=0 has a non-trivial solution then 11−a+11−b+11−c=

A
1
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B
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C
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D
0
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Solution

The correct option is A 1
For given equation to posses non-trivial solution we must have,

∣ ∣a111b111c∣ ∣=0

Now use the property of R1R1R2 and R2R2R3

∣ ∣a11b00b11c11c∣ ∣=0

Now expanding along first row

(a1)[(b1)c(1c)](1b)[0(1c)]=0

(a1)(b1)c(a1)(1c)+(1b)(1c)=0

(1a)(1b)c+(1a)(1c)+1(1b)(1c)=0

Divide both sides (1a)(1b)(1c)

c1c+11b+11a=0

1c11c+11b+11a=0

1+11c+11b+11a=0

11a+11b+11c=1

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