Someone help me with limits?

3 ANSWERS

1. 
   

   Both of your problems are in the indeterminate form 0/0. So you must use L'Hospital's Rule
   
   Take derivatives of numerator and denominator separately. Then see if a limit results. If it is still 0/0 repeat the process. At some point you will arrive at a denominator of 6 and at this time you can determine the limit.
   
   

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2. 
   

   Just use L'Hopital to compute these limits:
   
   1)
   
   lim [log(1-x) + x*e^(x/2)] / x^3 =
   
   x->0
   
   lim [1/(x-1) + e^(x/2) + (x/2)*e^(x/2)] / 3x^2 =
   
   x->0
   
   lim [-1/(x-1)^2 + e^(x/2) + (x/4)*e^(x/2)] / 6x =
   
   x->0
   
   lim [2/(x-1)^3 + (3/4)e^(x/2) + (x/8)*e^(x/2)] / 6
   
   x->0
   
   But this limit isn't indeterminate anymore, and since the function inside the limit is continuous at x=0, we can plug in 0 to find that the initial limit equals (-2 + 3/4)/6 = -5/24
   
   (There might be a faster way to do number 1 with Taylor series, but I didn't see it immediately.)
   
   2)
   
   lim log(1+x^2) / 2x =
   
   x->0
   
   lim x/(1+x^2) =
   
   x->0
   
   0
   
   

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3. 
   

   because the numerator and denominator become zero when x->, u can use the L'Hopital rule by taking the derivative of each separately. Do this until u dont get a "0/0, or infinity/infinitiy"
   
   

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