o/n 2007 p4 q3 (explaination please)
Thanks in advance...
Ans 3ai) Point C --> Its x-co-ordinate is 0 and it lies in the curve y = x^2 + 1.
thus, just substitute the value x=0 in the equation --> y = 0^2 + 1 = 1
C --> (0,1)
3aii) with y-axis --> y = 4 - x.
any point in y-axis has the co-ordinate x=0.
apply x=0 in y = 4-x --> y = 4-0
thus, with y-axis --> (0,4)
with x-axis --> y = 4-x
any point in x-axis has y-co-ordinate = 0
apply y=0 in y = 4-x
0 = 4-x
x = 4
point --> (4,0)
b)
y = mx + c , here m = gradient and c is y intercept. write y = 4-x in this form
y = -x + 4 or y = -1(x) + 4
here m = -1
gradient = -1
c) this means find the x-values for which the point on the curve has a negative gradient. in this, a parabola, all points in the part of the curve in the second quadrant has a negative gradient. Thus, when x<0, gradient = negative.
d) the two graphs are y = x^2 + 1 and y = 4-x
meaning , x^2 + 1 = 4-x
x^2 + 1 -4 +x = 0
x^2 +x - 3 = 0
------------------
e) apply x = +/-
/2a)
u shud get 1.3 and -2.3
The answers i.e 1.3 and -2.3 are the x-cordinates of the point B and A respectively.
y = 4-x
y = 4-1.3 = 2.7
y = 4-x
y = 4+2.3 = 6.3
A - (-2.3, 6.3) B - (1.3, 2.7)
(x1+x2)/2 = (-2.3+1.3)/2 = -0.5
(y1+y2)/2 = (6.3+2.7)/2 = 4.5
midpoint = (-0.5,4.5)
