Solution assignment 07 Quadratic functions and graphs

Return to Assignments Quadratic functions and graphs

Assignment 7

For which value of p does the parabola:

y=x^2-(p+1)x+p

have two intersection points with the X-axis having a mutual distance of 4?

Solution

According to the abc-formula, the intersection points with the X-axis are:

x_{1,2}=\displaystyle\frac{p+1\pm\sqrt{(p+1)^2-4p}}{2}=\displaystyle\frac{p+1\pm(p-1)}{2}

So:

x_1=1  or  x_2=p

The distance between both intersection points is 4 and thus we have to calculate p from (see also Absolute value |x|):

|p-1|=4

so:

p-1=4  of  p-1=-4

so:

p=5  or  p=-3

Return to Assignments Quadratic functions and graphs

0
Web Design BangladeshWeb Design BangladeshMymensingh