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To compare the asymptotic order of the two functions, I calculated the limit of first function over second function, when n goes to infinity.

The answer was 2 (I had to use l'hopital's rule), which means that for really high values of n, log(n^2) is larger than log(5n)

My question is: is it incorrect to say that log(n^2) is asymptotically larger than log(5n)?

My friend told me that when the limit of first function over the second function is a constant, that means that their asymptotic order is equal. Can someone confirm?

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2  
Hint: log(n^2) = 2*log(n). –  Carl Norum Mar 24 '12 at 22:49
    
Question better suited at MathSE. –  0sh Mar 24 '12 at 22:51
    
This would probably be more on-topic at Mathematics. –  minitech Mar 24 '12 at 22:51
    
This question belongs to Computer Science. So probably it should be best suited at CS.SE cs.stackexchange.com. –  pad Mar 25 '12 at 11:23

4 Answers 4

up vote 7 down vote accepted

Actually log (5n) = log 5 + log n, and log (n^2) = 2 log n, so log(n^2) is bigger than log 5. Also we can say it's asymptotically larger than log 5n. Asymptotic is kind of definition:

The term asymptotic means approaching a value or curve arbitrarily closely (i.e., as some sort of limit is taken). A line or curve A that is asymptotic to given curve C is called the asymptote of C.

and depends on your cases, but in algorithms, we do not think about constant factor, and normally we say they are in same order, in fact our limits is not depends to constant factors, and we say they are in same O or Θ or Ω. In concept of algorithms they are asymptotically equal functions.

Update To be more clear: In algorithm we say A(n) is asymptotically larger than B(n) if

lim n→∞A(n)/B(n) = ∞

And In your case the limit value is 2 (or 1/2) so they are asymptotically equal.

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indeed this is correct. –  UmNyobe Mar 24 '12 at 23:17
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Do you have a reference for that definition of "asymptotically larger"? –  Oliver Charlesworth Mar 24 '12 at 23:17
    
@OliCharlesworth, I don't have my BS textbooks right now :) but I'll find reference for you (It was one of an algorithm books like CLRS or art of computer programmind or ... I can't remember which one, but if you don't trust me I'll show you reference). But now really I don't have anything in hand, you can downvote me till I comment you for reference. –  Saeed Amiri Mar 24 '12 at 23:20
    
It's not that I don't trust you, it's just that it's not an intuitive definition (at least IMO). I would have expected something more like lim A(n)/B(n) > 1. –  Oliver Charlesworth Mar 24 '12 at 23:22
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@SaeedAmiri: I was about to respond saying "but the OP hasn't mentioned Landau notation", but then I noticed that he/she talks about "order" in the question title. So given that we're talking about orders, I agree with you! (So +1). –  Oliver Charlesworth Mar 24 '12 at 23:30

log(n^2) = 2 * log(n) and log(5n) = log(5) + log(n). So both are asymptotically equal when speaking about algorithms.

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Indeed. But that doesn't answer the OP's question. –  Oliver Charlesworth Mar 24 '12 at 23:00
    
Big-O is just a classification system. Just because two functions belong to the same Big-O, it doesn't mean it's wrong to say that one is asymptotically larger than the other. –  Oliver Charlesworth Mar 24 '12 at 23:08

log(n^2)=2*log(n)

Assuming log base 2

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That holds for arbitrary bases, by the way. –  Daniel Fischer Mar 24 '12 at 22:53
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I don't think you have to assume anything about the base of the logarithm. –  Carl Norum Mar 24 '12 at 22:53
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Assuming base anything. –  Oliver Charlesworth Mar 24 '12 at 22:53
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no matter the base, it's always true! –  ShinTakezou Mar 24 '12 at 22:53

If the limit was 2, then it means that log(5n) belongs to O(log(n^2)), doesn't it...

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