Graphing functions

Ok. Your equation is \(\displaystyle y=x^2+2x-3\).
That is the rule for working out y when you know x.
On the y-axis, x=0. (Every point on the y-axis has an x-coordinate of 0, right?)
So, if x=0, \(\displaystyle y=0^2+2*0-3=-3\)
So, (0, -3) is the y-intercept.

Now have a look at the last graph you drew. It should cut the y-axis at (0, -3). It doesn't quite, does it?
 
Harry_the_cat said:
Ok. Your equation is \(\displaystyle y=x^2+2x-3\).
That is the rule for working out y when you know x.
On the y-axis, x=0. (Every point on the y-axis has an x-coordinate of 0, right?)
So, if x=0, \(\displaystyle y=0^2+2*0-3=-3\)
So, (0, -3) is the y-intercept.

Now have a look at the last graph you drew. It should cut the y-axis at (0, -3). It doesn't quite, does it?
Click to expand...
Are you saying where I drew the line it is off?
 
That's off too!
But I'm talking about where the graph cuts the Y axis, the vertical axis.
 
1595027417906.png
I'm talking about where your parabola cuts the Y axis. It should pass through (0, -3). Look inside the circle. It doesn't pass through (0,-3).
 
You must log in or register to reply here.
Top