Aus Online Mathematik Brückenkurs 2

Version vom 14:22, 16. Sep. 2008 (bearbeiten) Tekbot (Diskussion | Beiträge) K (Lösning 1.2:1a moved to Solution 1.2:1a: Robot: moved page) ← Zum vorherigen Versionsunterschied		Version vom 13:40, 14. Okt. 2008 (bearbeiten) (rückgängig) Tek (Diskussion | Beiträge) K Zum nächsten Versionsunterschied →
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-	Because the expression is a product of two factors, we use the product rule:	+	Because the expression is a product of two factors, we use the product rule,
		+	{{Displayed math||<math>\begin{align}
		+	(\sin x\cdot\cos x)^{\prime }
		+	&= (\cos x)^{\prime }\cdot\sin x + \cos x\cdot (\sin x)^{\prime }\\[5pt]
		+	&= -\sin x\cdot\sin x + \cos x\cdot\cos x\\[5pt]
		+	&= -\sin^2\!x + \cos^2\!x\,\textrm{.}
		+	\end{align}</math>}}
-	<math>\begin{align}	+	Using the formula for double angles, the answer can be simplified to <math>\cos 2x\,</math>.
-	& \left( \sin x\centerdot \cos x \right)^{\prime }=\left( \cos x \right)^{\prime }\centerdot \sin x+\cos x\centerdot \left( \sin x \right)^{\prime } \\	+
-	& \\	+
-	& =-\sin x\centerdot \sin x+\cos x\centerdot \cos x=\sin ^{2}x+\cos ^{2}x \\	+
-	\end{align}</math>	+
-		+
-		+
-		+
-		+
-	Using the formula for double angles, the answer can be simplified to	+
-	<math>\cos 2x</math>	+
-	.	+

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Version vom 13:40, 14. Okt. 2008

Because the expression is a product of two factors, we use the product rule,

\displaystyle \begin{align} (\sin x\cdot\cos x)^{\prime } &= (\cos x)^{\prime }\cdot\sin x + \cos x\cdot (\sin x)^{\prime }\\[5pt] &= -\sin x\cdot\sin x + \cos x\cdot\cos x\\[5pt] &= -\sin^2\!x + \cos^2\!x\,\textrm{.} \end{align}

Using the formula for double angles, the answer can be simplified to \displaystyle \cos 2x\,.