The equation of the line parallel to the line joining $(4, 2)$ and $(2, 4)$ and whose $y$ -intercept is $4$ units along positive $y$ - axis is

y + x - 4 = 0

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y + x + 4 = 0

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x - y + 4 = 0

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2 x + y = 0

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Solution

The correct option is A $y + x - 4 = 0$
Slope of line joining $(4, 2)$ and $(2, 4)$
$= \frac{4 - 2}{2 - 4} = \frac{2}{- 2} = - 1$
As the required line is parallel to the above line so,
slope of required line $= m = - 1$
$y$ intercept $= c = 4$
Hence equation of line is $y = m x + c$
$y = - x + 4$
$\Rightarrow y + x - 4 = 0$

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The equation of the line parallel to the line joining (4,2) and (2,4) and whose y-intercept is 4 units along positive y- axis is

The correct option is A y+x−4=0Slope of line joining (4,2) and (2,4) =4−22−4=2−2=−1 As the required line is parallel to the above line so, slope of required line =m=−1 y intercept =c=4 Hence equation of line is y=mx+c y=−x+4 ⇒y+x−4=0

The equation of the line parallel to the line joining $(4, 2)$ and $(2, 4)$ and whose $y$ -intercept is $4$ units along positive $y$ - axis is