BdMO National 2013: Higher Secondary 2
Let $g$ be a function from the set of ordered pairs of real numbers to the same set such that $g(x, y)=-g(y, x)$ for all real numbers $x$ and $y$. Find a real number $r$ such that $g(x, x)=r$ for all real numbers $x$.
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Re: BdMO National 2013: Higher Secondary 2
How can I solve this problem?
- Thanic Nur Samin
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Re: BdMO National 2013: Higher Secondary 2
The statement essentially means that for any pair of real numbers $(x,y)$, we have $g(x,y)=-g(y,x)$. Note that, we can let $x,y$ be $\textbf{any}$ pair of real numbers. Substituting $(x,x)$ implies that,
\[g(x,x)=-g(x,x)\]
\[2g(x,x)=0\]
\[g(x,x)=0\]
Hence the problem is solved.
N.B. If you still have confusion in understanding, note that $(x+y)^2=x^2+2xy+y^2$. Plugging in $(x,x)$ implies $(x+x)^2=x^2+2xx+x^2$ or $(2x)^2=x^2+2x^2+x^2$ or $4x^2=4x^2$, which is true.
\[g(x,x)=-g(x,x)\]
\[2g(x,x)=0\]
\[g(x,x)=0\]
Hence the problem is solved.
N.B. If you still have confusion in understanding, note that $(x+y)^2=x^2+2xy+y^2$. Plugging in $(x,x)$ implies $(x+x)^2=x^2+2xx+x^2$ or $(2x)^2=x^2+2x^2+x^2$ or $4x^2=4x^2$, which is true.
Hammer with tact.
Because destroying everything mindlessly isn't cool enough.
Because destroying everything mindlessly isn't cool enough.
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Re: BdMO National 2013: Higher Secondary 2
Isn't g(x,x)=0 means for any real number x, the function will be 0. But what about the function u've written 4x² ?? For any real number u'll get a real number, not 0... The example does make sense but not the solution for me...