The lines y = x – 7 and y = 3x – 19 intersect at the point A. The point B has coordinates (-2, 11).Find the equation of the line that passes through A and B. About the author Raelynn
Answer: Equation of the line = 3x + y – 5 = 0 Step-by-step explanation: Given: The lines y = x – 7 and y = 3x – 19 intersect at point A. The point B has coordinates (-2, 11) To Find: Equation of the line that passes through A and B Solution: By given, The lines y = x – 7 and y = 3x – 7 intersect. Therefore solving these two equations, we get the point of intersection. y = x – 7 —(1) y = 3x – 19 —-(2) Substituting 1 in 2, x – 7 = 3x – 19 19 – 7 = 3x + x 4x = 12 x = 3 Substitute x in equation 1, y = 3 – 7 y = -4 Hence the point of intersection is (3, -4) = A Also by given the line passes through the points A and B. That is, it passes through the points (3, -4) and (-2, 11) The equation of a line when two points are given is given by, [tex]\sf \dfrac{y-y_1}{x-x_1} =\dfrac{y_2-y_1}{x_2-x_1}[/tex] Substitute the values, [tex]\sf \dfrac{y+4}{x-3} =\dfrac{11+4}{-2-3}[/tex] [tex]\sf \dfrac{y+4}{x-3} =\dfrac{15}{-5}[/tex] [tex]\sf \dfrac{y+4}{x-3} =\dfrac{3}{-1}[/tex] Cross multiplying we get, -y – 4 = 3x – 9 3x + y – 9 + 4 = 0 3x + y – 5 = 0 Therefore the equation of the line is 3x + y – 5 = 0. Reply
Given :- The lines y = x – 7 and y = 3x – 19 intersect at the point A. The point B has coordinates (-2, 11). To Find :- Equation of the line that passes through A and B. Solution :- We are given with two equations [tex]\sf Value \; of \; y\begin{cases}\bf y = x- 7\\ \bf y= 3x-19\end{cases}[/tex] For the equation of line [tex]\sf \dfrac{y+4}{x-3}=\dfrac{11+4}{-2-(+3)}[/tex] [tex]\sf\dfrac{y+4}{x-3}=\dfrac{11+4}{-2-3}[/tex] [tex]\sf \dfrac{y+4}{x-3} = \dfrac{15}{-5}[/tex] [tex]\sf\dfrac{y+4}{x-3} = \dfrac{-3}{1}[/tex] [tex]\sf y+4=-3(x-3)[/tex] [tex]\sf y+4=-3x+9[/tex] [tex]\sf y + 3x = 9 – 4[/tex] [tex]\sf 3x+y = 5[/tex] [tex]\sf 3x+y-5=0[/tex] Reply
Answer:
Equation of the line = 3x + y – 5 = 0
Step-by-step explanation:
Given:
To Find:
Solution:
By given,
The lines y = x – 7 and y = 3x – 7 intersect.
Therefore solving these two equations, we get the point of intersection.
y = x – 7 —(1)
y = 3x – 19 —-(2)
Substituting 1 in 2,
x – 7 = 3x – 19
19 – 7 = 3x + x
4x = 12
x = 3
Substitute x in equation 1,
y = 3 – 7
y = -4
Hence the point of intersection is (3, -4) = A
Also by given the line passes through the points A and B. That is, it passes through the points (3, -4) and (-2, 11)
The equation of a line when two points are given is given by,
[tex]\sf \dfrac{y-y_1}{x-x_1} =\dfrac{y_2-y_1}{x_2-x_1}[/tex]
Substitute the values,
[tex]\sf \dfrac{y+4}{x-3} =\dfrac{11+4}{-2-3}[/tex]
[tex]\sf \dfrac{y+4}{x-3} =\dfrac{15}{-5}[/tex]
[tex]\sf \dfrac{y+4}{x-3} =\dfrac{3}{-1}[/tex]
Cross multiplying we get,
-y – 4 = 3x – 9
3x + y – 9 + 4 = 0
3x + y – 5 = 0
Therefore the equation of the line is 3x + y – 5 = 0.
Given :-
The lines y = x – 7 and y = 3x – 19 intersect at the point A. The point B has coordinates (-2, 11).
To Find :-
Equation of the line that passes through A and B.
Solution :-
We are given with two equations
[tex]\sf Value \; of \; y\begin{cases}\bf y = x- 7\\ \bf y= 3x-19\end{cases}[/tex]
For the equation of line
[tex]\sf \dfrac{y+4}{x-3}=\dfrac{11+4}{-2-(+3)}[/tex]
[tex]\sf\dfrac{y+4}{x-3}=\dfrac{11+4}{-2-3}[/tex]
[tex]\sf \dfrac{y+4}{x-3} = \dfrac{15}{-5}[/tex]
[tex]\sf\dfrac{y+4}{x-3} = \dfrac{-3}{1}[/tex]
[tex]\sf y+4=-3(x-3)[/tex]
[tex]\sf y+4=-3x+9[/tex]
[tex]\sf y + 3x = 9 – 4[/tex]
[tex]\sf 3x+y = 5[/tex]
[tex]\sf 3x+y-5=0[/tex]