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Title: lim x->inf (x^t/e^x)=0 Post by svs14 on Sep 17th, 2004, 10:47pm hey can someone help me out with this lim x->inf (x^t/e^x)=0 for any real number, t. how do i prove this. thanks |
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Title: Re: lim x->inf (x^t/e^x)=0 Post by Benoit_Mandelbrot on Sep 17th, 2004, 10:51pm Through the Principle of Induction, I believe. How would you do it with that? |
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Title: Re: lim x->inf (x^t/e^x)=0 Post by svs14 on Sep 17th, 2004, 10:53pm oh yeah...through the principle of induction... this question follows after another one which is exactly the same but t>=0 in the earlier one. if that helps |
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Title: Re: lim x->inf (x^t/e^x)=0 Post by william wu on Sep 18th, 2004, 2:20am When t=0, your function is e^(-x), which clearly goes to 0. When t<0, your function is x^(-t)e^(-x), which also clearly goes to 0. And the > 0 case is handled by the previous problem. In that case, I think you can invoke L'Hospital's rule and repeatedly differentiate numerator and denominator. The denominator is always e^x, but in the numerator eventually all positive powers of x are whittled off, and so you reduce to the (t <= 0) cases. |
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Title: Re: lim x->inf (x^t/e^x)=0 Post by Grimbal on Sep 18th, 2004, 11:31am Why not write: x^t/e^x = e^(t ln x - x). It obviously goes to 0. No? |
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