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I know some might asked this before but I will try.

let's say I have a array that I sort in bubble sort

and than (after I finished sorting) I sort it again (by a different comparison ) in order to

achieve my purpose.

in the first time I used : O(n2) .

in the second time I used : O(n2) .

== > I achieved my purpose with complexity of O(n2) .

or some thing else (O(n3) or 2*O(n2) or I do not know what)

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1 Answer 1

up vote 0 down vote accepted

O(n2) + O(n2) = O(n2) in Theory

First Time:

f1(n) = O(n2)

Second Time:

g1(n) = O(n2)


f1(n) + g1(n) ⊆ O( n2 + n2)
f1(n) + g1(n) ⊆ O(2n2) ⊆ O(n2)

The following properties can be useful:


Also, using first rule:

O( n2) + O(n2) ⊆ O(n2)

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Thank you very much !!!! It really helped me . –  John Oldman Jan 1 '13 at 14:59

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