Aus Online Mathematik Brückenkurs 1

Version vom 08:36, 9. Sep. 2008 (bearbeiten) Tekbot (Diskussion | Beiträge) K (Lösning 2.1:3f moved to Solution 2.1:3f: Robot: moved page) ← Zum vorherigen Versionsunterschied		Version vom 08:39, 23. Sep. 2008 (bearbeiten) (rückgängig) Tek (Diskussion | Beiträge) K Zum nächsten Versionsunterschied →
Zeile 1:		Zeile 1:
-	{{NAVCONTENT_START}}
	Treating <math>4x</math> as one term, we can write		Treating <math>4x</math> as one term, we can write
-	<math> \qquad 16x^2+8x+1=(4x)^2 +2\cdot 4x +1 </math>	+	{{Displayed math||<math> \qquad 16x^2+8x+1=(4x)^2 +2\cdot 4x +1 </math>}}
	and since <math> y^2 +2y+1=(y+1)^2 </math> we obtain		and since <math> y^2 +2y+1=(y+1)^2 </math> we obtain
-	<math> \qquad (4x)^2 +2\cdot 4x +1= (4x+1)^2 </math>	+	{{Displayed math||<math> \qquad (4x)^2 +2\cdot 4x +1= (4x+1)^2 </math>.}}
-	<!--<center> [[Image:2_1_3f.gif]] </center>-->	+
-	{{NAVCONTENT_STOP}}	+

---

Version vom 08:39, 23. Sep. 2008

Treating \displaystyle 4x as one term, we can write

Vorlage:Displayed math

and since \displaystyle y^2 +2y+1=(y+1)^2 we obtain

Vorlage:Displayed math