Question

in the picture the perpendicular drawn from the mid point of the hypotenus of a right triangle to the base .1) prove that this perpendicular is half the perpendicular side of the large. (2) prove that in the large triangle the distance from the midpoint of the hypotenuse to all the vertices are equal​

Answer 1

Answer:

This implies that

x2+2ax=4x−4a−13

or

x2+2ax−4x+4a+13=0

or

x2+(2a−4)x+(4a+13)=0

Since the equation has just one solution instead of the usual two distinct solutions, then the two solutions must be same i.e. discriminant = 0.

Hence we get that

(2a−4)2=4⋅1⋅(4a+13)

or

4a2−16a+16=16a+52

or

4a2−32a−36=0

or

a2−8a−9=0

or

(a−9)(a+1)=0

So the values of a are −1 and 9.