Can anyone solve these locus problems? (1 Viewer)

Jmmalic220 · Sep 18, 2016

Can anyone please help me solve these problems?

1. Find the equation of the locus of a point that moves so that it is equidistant from the line 4x-3y+2=0 and the line 3x+4y-7=0.

2. Given two points A(3, -2) and B(-1, 7), find the equation of the locus of P(x, y) if the gradient of PA is twice the gradient of PB.

3. If R is the fixed point (3,2) and P is a movable point (x,y), find the equation of the locus of P if the distance PR is twice the distance from P to the line y=-1.

I have the answers but I need to understand how to do it. Please reply with workings.

Thank you very much in advance!

davidgoes4wce · Sep 18, 2016

Jmmalic220 said:
Can anyone please help me solve these problems?

1. Find the equation of the locus of a point that moves so that it is equidistant from the line 4x-3y+2=0 and the line 3x+4y-7=0.

$This result is well known. If you look at it closely, you'll see the locus consist of the two bisectrices of the straight lines. According to the distance formula from a point to a line formula, the equations which describe this locus are:$

$d=\frac{|ax_0+by_0+c|}{\sqrt{a^2+b^2}}$

$\frac{|4x-3y+2|}{\sqrt{4^2+3^2}}=\frac{|3x+4y-7|}{\sqrt{3^2+4^2}}$

$|4x-3y+2|=|3x+4y-7|$

$There are 2 cases$
1 Where both sides have the same sign
2 Where one side is positive and the other equation is negative

1)
4x-3y+2=3x+4y-7
x-7y=-9 $\textcircled{1}$

2)

-(4x-3y+2)=3x+4y-7

0=7x+y-5 $\textcircled{2}$

By using simulatenous equations we solve $\textcircled{1} and \textcircled{2}$

x=0.52 and y=1.36 as the two locuses.

InteGrand · Sep 18, 2016

davidgoes4wce said:
$This result is well known. If you look at it closely, you'll see the locus consist of the two bisectrices of the straight lines. According to the distance formula from a point to a line formula, the equations which describe this locus are:$

$d=\frac{|ax_0+by_0+c|}{\sqrt{a^2+b^2}}$

$\frac{|4x-3y+2|}{\sqrt{4^2+3^2}}=\frac{|3x+4y-7|}{\sqrt{3^2+4^2}}$

$|4x-3y+2|=|3x+4y-7|$

$There are 2 cases$
1 Where both sides have the same sign
2 Where one side is positive and the other equation is negative

1)
4x-3y+2=3x+4y-7
x-7y=-9 $\textcircled{1}$

2)

-(4x-3y+2)=3x+4y-7

0=7x+y-5 $\textcircled{2}$

By using simulatenous equations we solve $\textcircled{1} and \textcircled{2}$

x=0.52 and y=1.36 as the two locuses.

$\noindent We aren't supposed to solve those two equations simultaneously. Rather, those two equations \emph{are} the locus we want, i.e. the locus is the pair of intersecting lines $x=-7y=-9$ or $7x+y-5 = 0$. Geometrically, the locus is the lines that are the angle bisectors for the angles formed by the two given lines.$

davidgoes4wce · Sep 18, 2016

OK thanks so I did a bit too much working out , the correct locuses are as follows (from the graph):

It's the first time I have done a locus question that involved 2 equations in their solution.

He-Mann · Sep 18, 2016

What is that cool math equation font?

si2136 · Sep 18, 2016

He-Mann said:
What is that cool math equation font?

Latex

davidgoes4wce · Sep 18, 2016

Jmmalic220 said:
Can anyone please help me solve these problems?

2. Given two points A(3, -2) and B(-1, 7), find the equation of the locus of P(x, y) if the gradient of PA is twice the gradient of PB.

Here is my attempt at question 2

Green Yoda · Sep 18, 2016

Q2: My attempt
m(PA)=2m(PB)
(y+2)/(x-3)=2((y-7)/(x+1))
(y+2)/(x-3)=(2y-14)/(x+1)
(y+2)(x+1)=(2y-14)(x-3)

pikachu975 · Sep 18, 2016

Rathin said:
Q2: My attempt
2m(PA)=m(PB)
2((y+2)/(x-3))=(y-7)/(x+1)
(2y+4)/(x-3)=(y-7)/(x+1)
(2y+4)(x+1)=(y-7)(x-3)

It's meant to be 2m(PB) not 2m(PA) because you're saying that PA is half of PB

He-Mann · Sep 18, 2016

si2136 said:
Latex

I send my appreciations.

Rathin said:
Q2: My attempt
2m(PA)=m(PB)
2((y+2)/(x-3))=(y-7)/(x+1)
(2y+4)/(x-3)=(y-7)/(x+1)
(2y+4)(x+1)=(y-7)(x-3)

What's the point of this? It's the same method to David's...

jathu123 · Sep 18, 2016

Jmmalic220 said:
3. If R is the fixed point (3,2) and P is a movable point (x,y), find the equation of the locus of P if the distance PR is twice the distance from P to the line y=-1.

$$\noindent$ \sqrt{(x-3)^2+(y-2)^2}=2|y+1| \\ (x-3)^2+(y-2)^2=4(y+1)^2 \\ x^2-6x+9+y^2-4y+4=4y^2+8y+4 \\ x^2-6x+9-3y^2-12y=0$

Green Yoda · Sep 18, 2016

pikachu975 said:
It's meant to be 2m(PB) not 2m(PA) because you're saying that PA is half of PB

my bad..read the question in a hurry

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Can anyone solve these locus problems? (1 Viewer)

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