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Line JK passes through points J(–3, 11) and K(1, –3). What is the equation of line JK in standard form?
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Line JK passes through points J(–3, 11) and K(1, –3). What is the equation of line JK in standard form?

User Rahul Dasgupta
by
6.0k points

2 Answers

6 votes

Answer:

7x + 2y= -1 this is the answer

User Matthias Huschle
by
6.2k points
4 votes

The standard form of a linear equation: Ax + By = C.

The slope-point formula:


y-y_1=m(x-x_1)\\\\m=(y_2-y_1)/(x_2-x_1)

We have:


J(-3,\ 11)\to x_1=-3,\ y_1=11\\K(1,\ -3)\to x_2=1,\ y_2=-3

Substitute:


m=(-3-11)/(1-(-3))=(-14)/(4)=-(7)/(2)\\\\y-11=-(7)/(2)(x-(-3))\\\\y-11=-(7)/(2)x-(21)/(2)\ \ \ \ |\cdot2\\\\2y-22=-7x-21\ \ \ |+22\\\\2y=-7x+1\ \ \ \ |+7x\\\\7x+2y=1

Answer: JK: 7x + 2y = 1

User Cezar
by
6.1k points
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