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Question

Positive numbers x,y and z satisfy
xyz = 1081 and (log10x)(log10yz)+(log10y)(log10z)=468, then the value of (log10x)2+(log10y)2+(log10z)2 is -

A
5625
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B
5652
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C
5265
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D
5526
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Solution

The correct option is A 5625
log10x=a, log10y=b, log10z=c
xyz=1081
log10x+log10y+log10z=81a+b+c=81
and a(b+c)+bc=468
a2+b2+c2=(a+b+c)22(ab+bc+ca)
=(81)22(468)=5625

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