3
$\begingroup$

Let $x=5$, $y=7$, $z=6$

$x+y = 2z$

Rearranging, $x-2z = -y$

and $x = -y+2z$

Multiply both sides respectively. $x^2-2xz = y^2-2yz$

$$x^2-2xz+z^2 = y^2-2yz+z^2$$ $$(x-z)^2 = (y-z)^2$$ $$x-z = y-z$$ Hence $x=y$, or $5 = 7$

Well, the conclusion is clearly false, but what went wrong? I think it may be the step in which one square roots both sides because it's taking out one solution?

  • 1
    Maybe when you took a squre root: $x^2=y^2$ implies $x=y$ or $x=-y$. indeed $x-z=z-y=-1$2012-04-28

4 Answers 4

18

Hint $\ $ When debugging proofs on abstract objects, the problem may become simpler to spot after specializing to more concrete objects. The symbols $\rm\:x,y,z\:$ denote abstract numbers, so let's specialize them to their concrete number values: $\rm\:x = 5,\: y=7,\: z = 6,\:$ yielding this "proof" $$\begin{eqnarray} 5 + 7 &=&\: 2\cdot 6 \\ 5- 2\cdot 6 &=&\: -7 \\ \cdots\ &=&\ \cdots \\ (5-6)^2\! &=&\: (7-6)^2 \\ 5-6\ \ \:&=&\:\ \ 7-6\: \end{eqnarray}$$ Now you can determine which inference is incorrect by determining the first false equation above. If equation number $\rm\: n\!+\!1\:$ is false then the inference from equation $\rm\:n\:$ to $\rm\:n\!+\!1\:$ is incorrect. You'll find that the final inference is false, the last equation being false. Now the error is clear.

Analogous methods prove helpful generally: when studying abstract objects and something is not clear, look at concrete specializations to gain further insight on the general case.

  • 0
    I like this answer best so far, since it gives a more general method than just looking at this particular problem.2012-04-28
8

What you have is

$$(x-z)^2=(y-z)^2$$

Note that $y-z$ is positive, but $x-z$ is negative. Thus you have to consider the absolut value when taking the square root.

This means

$$|x-z| = y-z$$

But not

$$x-z = y-z$$

  • 0
    A few seconds before saving my own answer, I go the usual notice that someone else had answered, and that was this answer. My version is essentially the same thing, but maybe more simply expressed. Here's a confession: I believe in simplicity.2012-04-28
  • 0
    ....and Bill Dubuque's got a point too.2012-04-28
8

If $(x-z)^2 = (y-z)^2$ then $x-y = \pm(y-z)$.

  • 0
    That is essential what I said.2012-04-28
  • 0
    And what you said is essentially what I said.2012-04-28
  • 1
    Touchè. I'm just saying there is no need for a duplicate.2012-04-28
  • 6
    So, shall we fight a duel to decide which one should be deleted?2012-04-28
1

You have $x=−y+2z$ and $x−2z=−y$ then you multiply both sides. I think you are computing $-xy$ in two ways: for the first $-xy=y^2-2zy$ for the second $-xy=-2zx+x^2$ so you have $y^2-2zy=x^2-2zx$. Adding $z^2$ to both sides gives $(y-z)^2=(x-z)^2$. But now taking square roots gives $|y-z|=|x-z|$.

If you try to remove the absolute value signs then you get $y-z=x-z$ if both are positive or negative but $y-z=-(x-z)$ if these have opposite signs. In the first case this leads to $y=x$, and in the second case $y=-x+2z$. For your example, the second case applies $7=-5+2\cdot6$.