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Csjohnst · Answer 1 · 2024-08-09T23:33:35+0000

to get the equation of any straight line, we simply need two points off of it, let's use those two for each line in the picture below to get them both.

$(\stackrel{x_1}{0}~,~\stackrel{y_1}{-3})\qquad (\stackrel{x_2}{5}~,~\stackrel{y_2}{-1}) \\\\\\ \stackrel{slope}{m}\implies \cfrac{\stackrel{\textit{\large rise}} {\stackrel{y_2}{-1}-\stackrel{y1}{(-3)}}}{\underset{\textit{\large run}} {\underset{x_2}{5}-\underset{x_1}{0}}} \implies \cfrac{ -1 +3 }{ 5 } \implies \cfrac{ 2 }{ 5 }$

$\begin{array}c \cline{1-1} \textit{point-slope form}\\ \cline{1-1} \\ y-y_1=m(x-x_1) \\\\ \cline{1-1} \end{array}\implies y-\stackrel{y_1}{(-3)}=\stackrel{m}{\cfrac{2}{5}}(x-\stackrel{x_1}{0}) \implies y +3 = \cfrac{2}{5} ( x -0) \\\\\\ y + 3 =\cfrac{2}{5}x\implies y=\cfrac{2}{5}x-3 \\\\[-0.35em] ~\dotfill$

$(\stackrel{x_1}{0}~,~\stackrel{y_1}{-8})\qquad (\stackrel{x_2}{5}~,~\stackrel{y_2}{-11}) \\\\\\ \stackrel{slope}{m}\implies \cfrac{\stackrel{\textit{\large rise}} {\stackrel{y_2}{-11}-\stackrel{y1}{(-8)}}}{\underset{\textit{\large run}} {\underset{x_2}{5}-\underset{x_1}{0}}} \implies \cfrac{ -11 +8 }{ 5 } \implies \cfrac{ -3 }{ 5 } \implies -\cfrac{3}{5}$

$\begin{array} \cline{1-1} \textit{point-slope form}\\ \cline{1-1} \\ y-y_1=m(x-x_1) \\\\ \cline{1-1} \end{array}\implies y-\stackrel{y_1}{(-8)}=\stackrel{m}{-\cfrac{3}{5}}(x-\stackrel{x_1}{0}) \implies y +8 = -\cfrac{3}{5} ( x -0) \\\\\\ y+8=-\cfrac{3}{5}x\implies y=-\cfrac{3}{5}x-8 \\\\[-0.35em] ~\dotfill\\\\ ~\hfill~ \begin{cases} y=\cfrac{2}{5}x-3 \\\\\\ y=-\cfrac{3}{5}x-8 \end{cases}~\hfill~$

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