Aus Online Mathematik Brückenkurs 1

Version vom 08:47, 9. Sep. 2008 (bearbeiten) Tekbot (Diskussion | Beiträge) K (Lösning 2.2:5b moved to Solution 2.2:5b: Robot: moved page) ← Zum vorherigen Versionsunterschied		Version vom 09:13, 18. Sep. 2008 (bearbeiten) (rückgängig) Ian (Diskussion | Beiträge) Zum nächsten Versionsunterschied →
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		+	Because the straight line is to have a gradient of
		+	<math>-3</math>, its equation can be written as
		+
		+
		+	<math>y=-3x+m</math>
		+
		+
		+	where
		+	<math>m</math>
		+	is a constant. If the line is also to pass through the point
		+	<math>\left( x \right.,\left. y \right)=\left( 1 \right.,\left. -2 \right)</math>, the point
		+	must satisfy the equation of the line
		+
		+
		+	<math>-2=-3\centerdot 1+m</math>
		+
		+
		+	which gives that
		+	<math>m=1</math>.
		+
		+	The answer is thus that the equation of the line is
		+	<math>y=-3x+1</math>.
		+
		+
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Version vom 09:13, 18. Sep. 2008

Because the straight line is to have a gradient of \displaystyle -3, its equation can be written as

\displaystyle y=-3x+m

where \displaystyle m is a constant. If the line is also to pass through the point \displaystyle \left( x \right.,\left. y \right)=\left( 1 \right.,\left. -2 \right), the point must satisfy the equation of the line

\displaystyle -2=-3\centerdot 1+m

which gives that \displaystyle m=1.

The answer is thus that the equation of the line is \displaystyle y=-3x+1.