PreCal Help Please!

Question

PreCal Help Please!

anonymous · Answer

Would it be....
$$(3\sqrt{2}-\sqrt{10})x-(\sqrt{10}+\sqrt{2})y-2\sqrt{10}-\sqrt{2}=0$$

anonymous · Answer

@Hero do you know if I am right? or check to make sure? if not thanks anyways :)

anonymous · Answer

abb0t...thanks for trying to help but that was taken off of yahoo answers and if you continue reading what the person who wrote this said, you will see that none of the answer choices provided were correct. So again thanks, but it doesn't help too much. I just want to know If I go the right answer.

abb0t · Answer

Best of luck.

anonymous · Answer

Thanks and again thanks for trying but I had already seen that post and it didn't help. That is why I posted here.

anonymous · Answer

Alright this is new to me but this is what It says to do

$$3x-y=1$$
$$x+y=-2$$
$$(3+1)x+(1-1)y=-2+1$$
$$4x=-1$$

$$x=\frac{-1}{4}$$

to make sure this is correct test for each for y

$$3(\frac{-1}{4})-y=1$$
$$\frac{-3}{4}-1=y$$
$$\frac{-7}{4}=y

$$

$$\frac{-1}{4}+y=-2$$
$$\frac{7}{4}=-y$$
$$\frac{-7}{4}=y$$

anonymous · Answer

intersection point is

$$[-.25,-1.75]$$ which is a point on your bisector line also

next find the slopes and take the arimetic mean

line 1

$$3x-1=y$$
$$m=3$$
$$x+y=-2$$
$$-x-2=y$$
$$-1=m$$

$$\frac{-1+3}{2}=1$$

using that withhin the point slope equation

$$y-y_1=m(x-x_1)$$
$$y-(-1.75)=1(x-(-.25))$$
$$y+1.75=1x+.25$$

$$y=1x-1.5=x-1.5$$

anonymous · Answer

|dw:1358765159547:dw|

anonymous · Answer

Thanks and my answer was right :)