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Difference between revisions of "1965 IMO Problems/Problem 5"
Line 82: Line 82:
 
<math>\triangle OAB</math> from <math>A, B</math>.  This answers question (a).
 
<math>\triangle OAB</math> from <math>A, B</math>.  This answers question (a).
  
Again with a good amount of hand waving, the previous solution
+
For part (b) of the problem, with a good amount of hand waving,
says "the locus consists in the <math>\triangle OB_1A_1</math>".  We justify
+
the previous solution says "the locus consists in the
this by pointing out that if <math>M</math> is inside <math>\triangle OAB</math>, then
+
<math>\triangle OB_1A_1</math>".  We justify this by pointing out that if
we can take the triangle <math>\triangle OA'B'</math>, such that <math>A' \in OA</math>,
+
<math>M</math> is inside <math>\triangle OAB</math>, then we can take the triangle
<math>B' \in OB</math>, <math>A'B'</math> going through <math>M</math> and parallel to <math>AB</math>.  Then
+
<math>\triangle OA'B'</math>, such that <math>A' \in OA</math>, <math>B' \in OB</math>,
<math>H</math> will be on the corresponding segment <math>A_1'B_1'</math> determined by
+
<math>A'B'</math> going through <math>M</math> and parallel to <math>AB</math>.  Then <math>H</math> will
the feet of the perpendiculars in <math>\triangle OA'B'</math>.  Conversely,
+
be on the corresponding segment <math>A_1'B_1'</math> determined by the
 +
feet of the perpendiculars in <math>\triangle OA'B'</math>.  Conversely,
 
it is easy to see that any point <math>H \in \triangle OA_1B_1</math> is on
 
it is easy to see that any point <math>H \in \triangle OA_1B_1</math> is on
 
a segment <math>A_1'B_1'</math> obtained from a triangle <math>\triangle OA'B'</math>,
 
a segment <math>A_1'B_1'</math> obtained from a triangle <math>\triangle OA'B'</math>,

Revision as of 10:29, 31 October 2024

Problem

Consider $\triangle OAB$ with acute angle $AOB$. Through a point $M \neq O$ perpendiculars are drawn to $OA$ and $OB$, the feet of which are $P$ and $Q$ respectively. The point of intersection of the altitudes of $\triangle OPQ$ is $H$. What is the locus of $H$ if $M$ is permitted to range over (a) the side $AB$, (b) the interior of $\triangle OAB$?


Solution

Let $O(0,0),A(a,0),B(b,c)$. Equation of the line $AB: y=\frac{c}{b-a}(x-a)$. Point $M \in AB : M(\lambda,\frac{c}{b-a}(\lambda-a))$. Easy, point $P(\lambda,0)$. Point $Q = OB \cap MQ$, $MQ \bot OB$. Equation of $OB : y=\frac{c}{b}x$, equation of $MQ : y=-\frac{b}{c}(x-\lambda)+\frac{c}{b-a}(\lambda-a)$. Solving: $x_{Q}=\frac{1}{b^{2}+c^{2}}\left[b^{2}\lambda+\frac{c^{2}(\lambda-a)b}{b-a}\right]$. Equation of the first altitude: $x=\frac{1}{b^{2}+c^{2}}\left[b^{2}\lambda+\frac{c^{2}(\lambda-a)b}{b-a}\right] \quad (1)$. Equation of the second altitude: $y=-\frac{b}{c}(x-\lambda)\quad\quad (2)$. Eliminating $\lambda$ from (1) and (2): \[ac \cdot x + (b^{2}+c^{2}-ab)y=abc\] a line segment $MN , M \in OA , N \in OB$. Second question: the locus consists in the $\triangle OMN$.


Solution 2

This solution is a simplified version of the previous solution, it fills in some gaps. and it provides more information. The idea is to just follow the degrees of the expressions and equations in $\lambda, x, y$ involved. If we manage to conclude that the equation for $H$ is an equation of degree $1$, then we will know that it is a line. We don't need to know the equation explicitly.

Just like in the previous solution, we use analytic (coordinate) geometry, but we don't care how the axes are chosen.

The coordinates of $M$ are expressions of degree $1$ in $\lambda$.

The equation for $MP$ is an equation of degree $1$ in $x, y$ with constant coefficients for $x, y$, and whose constant term is an expression of degree $1$ in $\lambda$.

The coordinates of $P$ (the intersection of $MP$ and $OA$) are expressions of degree $1$ in $\lambda$.

The equation of the perpendicular from $P$ to $OB$ is of degree $1$ in $x, y$, with constant coefficients for $x, y$, and whose constant term is an expression of degree $1$ in $\lambda$. This corresponds to equation (2) in the above solution.

Similarly, the equation of the perpendicular from $Q$ to $OA$ is of degree $1$ in $x, y$, with constant coefficients for $x, y$, and whose constant term is an expression of degree $1$ in $\lambda$. This corresponds to equation (1) in the above solution.

Now, in principle, we would have to solve the system of two equations to obtain the coordinates of $H$ as expressions of $\lambda$, and then eliminate $\lambda$ to obtain an equation in $x, y$. Or, as a shortcut, we can eliminate $\lambda$ directly from the two equations. Either way, the result is an equation of degree $1$ in $x, y$.

This tells us that the locus is on this line. We just need to specify which set of points on this line is the locus.

The previous solution, with a good amount of hand waving, tells us that the solution is "a line segment $B_1A_1, B_1 \in OA, A_1 \in OB$". (On top of the hand waving the solution uses the unhappy notation $M$ for $B_1$ and $N$ for $A_1$, which is bad because $M$ has already been used!) We will do better than that.

Let $A_1$ be the foot of the perpendicular from $A$ to $OB$, and $B_1$ be the foot of the perpendicular from $B$ to $OA$. (For this paragraph see the picture shown in Solution 3.) Consider the limit situation when $M = A$. Then $Q = A_1$, and $P = A$. It follows that the intersection $H$ of the perpendiculars from $P$ to $OB$ and $Q$ to $OA$ is $A_1$. Similarly, the limit situation when $M = B$ yields $H = B_1$. Now it is reasonable to say that when $M$ moves from $A$ to $B$, $H$ moves from $A_1$ to $B_1$. So, the locus is the line segment joining the feet $A_1, B_1$ of the perpendiculars in $\triangle OAB$ from $A, B$. This answers question (a).

For part (b) of the problem, with a good amount of hand waving, the previous solution says "the locus consists in the $\triangle OB_1A_1$". We justify this by pointing out that if $M$ is inside $\triangle OAB$, then we can take the triangle $\triangle OA'B'$, such that $A' \in OA$, $B' \in OB$, $A'B'$ going through $M$ and parallel to $AB$. Then $H$ will be on the corresponding segment $A_1'B_1'$ determined by the feet of the perpendiculars in $\triangle OA'B'$. Conversely, it is easy to see that any point $H \in \triangle OA_1B_1$ is on a segment $A_1'B_1'$ obtained from a triangle $\triangle OA'B'$, and $H$ is obtained from a point $M \in A'B'$. This answers question (b).

(Solution by pf02, October 2024)


Solution 3

TO BE CONTINUED. SAVING MID WAY, SO I DON'T LOSE WORK DONE SO FAR.


See Also

1965 IMO (Problems) • Resources
Preceded by
Problem 4 		1 2 3 4 5 6 Followed by
Problem 6
All IMO Problems and Solutions
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