Aus Online Mathematik Brückenkurs 2

Version vom 14:24, 16. Sep. 2008 (bearbeiten) Tekbot (Diskussion | Beiträge) K (Lösning 1.2:2b moved to Solution 1.2:2b: Robot: moved page) ← Zum vorherigen Versionsunterschied		Version vom 12:56, 11. Okt. 2008 (bearbeiten) (rückgängig) Ian (Diskussion | Beiträge) Zum nächsten Versionsunterschied →
Zeile 1:		Zeile 1:
-	{{NAVCONTENT_START}}	+	The whole expression consists of two parts: the outer part, "
-	<center> [[Image:1_2_2b.gif]] </center>	+	<math>e</math>
-	{{NAVCONTENT_STOP}}	+	raised to something",
		+
		+
		+	<math>e^{\left\{ \left. {} \right\} \right.}</math>
		+
		+
		+	where "something" is the inner part
		+	<math>\left\{ \left. {} \right\} \right.=x^{2}+x</math>. The derivative is calculated according to the chain rule by differentiating
		+	<math>e^{\left\{ \left. {} \right\} \right.}</math>
		+	with respect to
		+	<math>\left\{ \left. {} \right\} \right.</math>
		+	and then multiplying by the inner derivative
		+	<math>\left( \left\{ \left. {} \right\} \right. \right)^{\prime }</math>, i.e.
		+
		+
		+	<math>\frac{d}{dx}e^{\left\{ \left. x^{2}+x \right\} \right.}=e^{\left\{ \left. x^{2}+x \right\} \right.}\centerdot \left( \left\{ \left. x^{2}+x \right\} \right. \right)^{\prime }</math>
		+
		+
		+	The inner part is an ordinary polynomial which we differentiate directly:
		+
		+
		+	<math>\frac{d}{dx}e^{\left\{ \left. x^{2}+x \right\} \right.}=e^{\left\{ \left. x^{2}+x \right\} \right.}\centerdot \left( 2x+1 \right)</math>

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Version vom 12:56, 11. Okt. 2008

The whole expression consists of two parts: the outer part, " \displaystyle e raised to something",

\displaystyle e^{\left\{ \left. {} \right\} \right.}

where "something" is the inner part \displaystyle \left\{ \left. {} \right\} \right.=x^{2}+x. The derivative is calculated according to the chain rule by differentiating \displaystyle e^{\left\{ \left. {} \right\} \right.} with respect to \displaystyle \left\{ \left. {} \right\} \right. and then multiplying by the inner derivative \displaystyle \left( \left\{ \left. {} \right\} \right. \right)^{\prime }, i.e.

\displaystyle \frac{d}{dx}e^{\left\{ \left. x^{2}+x \right\} \right.}=e^{\left\{ \left. x^{2}+x \right\} \right.}\centerdot \left( \left\{ \left. x^{2}+x \right\} \right. \right)^{\prime }

The inner part is an ordinary polynomial which we differentiate directly:

\displaystyle \frac{d}{dx}e^{\left\{ \left. x^{2}+x \right\} \right.}=e^{\left\{ \left. x^{2}+x \right\} \right.}\centerdot \left( 2x+1 \right)