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WORTH 50 POINTS Line JK passes through points J(–3, 11) and K(1, –3). What is the equation of line JK in standard form? A) 7x + 2y = –1 B) 7x + 2y = 1 C) 14x + 4y = –1 D) 14x + …

WORTH 50 POINTS Line JK passes through points J(–3, 11) and K(1, –3). What is the equation of line JK in standard form? A) 7x + 2y = –1 B) 7x + 2y = 1 C) 14x + 4y = –1 D) 14x + …
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WORTH 50 POINTS Line JK passes through points J(–3, 11) and K(1, –3). What is the equation of line JK in standard form?

A) 7x + 2y = –1
B) 7x + 2y = 1
C) 14x + 4y = –1
D) 14x + 4y = 1

User Odney
by
8.9k points

2 Answers

3 votes
First, we find the slope of the line using the points.


m = (y_2 - y_1)/(x_2 - x_1)


m = (-3 - 11)/(1 - (-3))


m = (-14)/(4)


m = -(7)/(2)

Now we use the point-slope equation of a line.


y - y_1 = m(x - x_1)


y - 11 = -(7)/(2)(x - (-3))


y - 11 = -(7)/(2)(x + 3)


2y - 22 = -7x - 21


7x + 2y = 1

Answer: Choice B)
User Smnirven
by
8.3k points
6 votes
The right answer would be B).
User Aman Verma
by
8.3k points
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