Suggest edit — big-o

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title: "big-o"
source: https://www.jemoka.com/posts/kbhamortized_analysis/
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Intuition:
\(O\): \(\leq\) (function in the symbol is \(\theta\): \(=\) \(\Omega\): \(\geq\) (function in the symbol is a lower bound) Definition Intuition:
We say \(f\qty(n) = O\qty(g\qty(n))\) such that &ldquo;when \(n\) gets big enough, \(f\qty(n)\) is bounded by at most a constant multiple of \(g\qty(n)\).
Definitions:
\(f(n) = O(g(n)) \Leftrightarrow \exists c, n_{0} &gt; 0: \forall n &gt; n_0, f(n) \leq c (g(n))\) \(f(n) = \Omega(g(n)) \implies \exists n_{0}: \forall n &gt; n_0, f(n) \geq c (g(n))\) \(f(n) = \theta(g(n)) \implies \exists n_{0}: \forall n &gt; n_0, f(n) \geq 1 (g(n)), f(n) \leq c (g(n))\) Little ones:
\(o\): \(&lt;\) \(\omega\): \(&gt;\) pros and cons pros abstracts away conditions specific issues makes analysis tractable allows us to meaningfully compare how algorithms will perform will perform on large inputs cons only makes sense when n is large we don&rsquo;t think that hard about constant factors exercise \(n^{2}\) is not \(O\qty(n)\)
Suppose by contradiction \(n^{2} = O\qty(n)\). So then there is some positive \(c, n_0\) such that \(\forall n \geq n_0\), \(n^{2} &lt; cn\).
Let&rsquo;s divide both sides by \(n\), so we get \(\forall n \geq n_0, n \leq c\). But&hellip;. what can&rsquo;t be true, since \(n \leq c\) cannot hold for \(n = n_0 + c + 1\).
Reaching contradiction.