1. If a + b + c = 2s, then $$\frac{(s-a)^{2}+(s-b)^{2}+(s-c)^{2}+s^{2}}{a^{2}+b^{2}+c^{2}}$$ is equal to
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By: anil on 05 May 2019 02.58 pm
a + b + c = 2s put a=b=c=1, then 2s = 3, s = 3/2. then, s-a = s - b = s - c = 1/2 $$frac{(s-a)^{2}+(s-b)^{2}+(s-c)^{2}+s^{2}}{a^{2}+b^{2}+c^{2}}$$
= $$frac{(1/2)^{2}+(1/2)^{2}+(1/2)^{2}+(3/2)^{2}}{1^{2}+1^{2}+1^{2}}$$ = $$frac{(3/4)+(9/4)}{3}$$ = $$frac{12/4}{3}$$ = 1 only option C satisfies this. so the answer is option C.
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= $$frac{(1/2)^{2}+(1/2)^{2}+(1/2)^{2}+(3/2)^{2}}{1^{2}+1^{2}+1^{2}}$$ = $$frac{(3/4)+(9/4)}{3}$$ = $$frac{12/4}{3}$$ = 1 only option C satisfies this. so the answer is option C.