How Do You Find the Limit of This Logarithmic Function?

[rostbrot]

lim_{i\rightharpoonup\infty} \frac{ln(4^{i}-1)}{ln(2^{i})}

If I set this up right it should go to 2, but I'm pretty rusty and every time I try to work this out I end up getting garbage or repeating behaviors that I can't do anything with... Anyone know what exactly to do with it?

edit:
Ack, since this isn't homework I posted it here, but since it's such a basic level could someone move it to the calculus homework forum? Sorry guys :/.

 

[sutupidmath]

Have u tried L'Hopitals Rule?

 

[sutupidmath]

and it goes to 2. another way to reason about it is, that ln(4^i-1) for i large behaves similarly with ln(4^i), so it means you can replace one with the other. THen using logarithmic rules you get as a rezult 2.

 

[rostbrot]

...I must be missing something...

This is what I've been doing:
http://img684.imageshack.us/img684/3658/loglimj.jpg

After taking the derivative and simplifying it down I end up with a similar case to what I had before (lines 3 and 9).

 

[Bohrok]

You can't rearrange a limit problem into a product and differentiate using the product rule; you need to differentiate the numerator and denominator separately
\lim_{x\rightarrow c}\frac{f(x)}{g(x)} = \lim_{x\rightarrow c}\frac{f'(x)}{g'(x)} (when f(c) and g(c) make the form 0/0 or ∞/∞)

 

[rostbrot]

Wow, I can't believe I completely forgot how to use L'Hopital's rule properly...
Thanks guys!