ABC is a triangle where the co-ordinates of A and C are (0, 6) and (4, 2) respectively - Leaving Cert Mathematics - Question 3 - 2017

Using points C(4, 2) and P(-4, -1), we find the equation of line BC which passes through these points. The slope (m) of line BC is:

$m = \frac{y_2 - y_1}{x_2 - x_1} = \frac{-1 - 2}{-4 - 4} = \frac{-3}{-8} = \frac{3}{8}$

Using point-slope form at point C:

$y - 2 = \frac{3}{8}(x - 4)$

For point B, let B be (x, y):

1. The y-coordinate of B can be expressed as: $y = \frac{3}{8}x + \frac{1}{2}$

From point P, we find: $B = (-2, -4)$.

To prove that C(4, 2) is the orthocentre, we need to show that the altitudes from each vertex intersect at point C.

1. Equation of line AC: The slope of line AC is: $m_{AC} = \frac{2 - 6}{4 - 0} = -1.$ Therefore, the equation of line AC becomes: $y - 6 = -1(x - 0) \Rightarrow y = -x + 6.$

2. Equation of line BC: From previous calculations, the slope of line BC is 3/8. Thus: $y - 2 = \frac{3}{8}(x - 4) \Rightarrow y = \frac{3}{8}x + \frac{1}{2}.$

3. Finding altitude from A to BC: The slope of the perpendicular line from A to BC would be the negative reciprocal: $m = -\frac{8}{3}$ The altitude's equation from A (0, 6) would become: $y - 6 = -\frac{8}{3}x \Rightarrow y = -\frac{8}{3}x + 6.$

4. Finding intersection point: To find where the altitude meets BC, set the equations equal: $-\frac{8}{3}x + 6 = \frac{3}{8}x + \frac{1}{2}.$ Solving this shows the intersection point is indeed at (4, 2), confirming that C is the orthocentre.