untere Schranke für den B-Baum angepasst
Vergleiche hierzu Lösung zu Blatt 6, Seite 3.
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\end{itemize}
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\item Höhe: \begin{itemize}
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\item obere Schranke: $h(n) = \log_{k+1}\left(\frac{n+1}{2}\right) + 1$
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\item untere Schranke: $h(n) = \log_{k+1}\left(k + 1 \right)$
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\item untere Schranke: $h(n) = \log_{2k+1}\left(n + 1 \right)$
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\end{itemize}
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\end{itemize}
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\item \begriff{B*-Baum} / \begriff{B+-Baum}: \begin{itemize}
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