Integration (1 Viewer)

bladeys · Jan 27, 2014

How do you integrate 2^(logx)?

Ive got it down to [x*2^(logx)]/log(2) but wolfram alpha says the answer is x*2^(logx)]/[log(2)+1]

asianese · Jan 27, 2014

Use a substitution.

asianese · Jan 27, 2014

$u = \ln x \Rightarrow e^u = x \\ du = \dfrac{dx}{x} \\ I = \int 2^u e^u \mathop{du} \\ = \int (2e)^u \mathop{du} \\ = \int e^{\ln (( 2e)^u)} \mathop{du} \\ \int e^{u\ln(2e)} \mathop{du} \\$

And go from there.

phoenix159 · Jan 27, 2014

there's a way to do it without using a substitution: use the fact that a = e^ln(a)
i.e. 2 = e^ln(2)
So 2^ln(x) = e^ln(x)*ln(2)
then integrate the RHS to get the answer

bladeys · Jan 27, 2014

phoenix159 said:
there's a way to do it without using a substitution: use the fact that a = e^ln(a)
i.e. 2 = e^ln(2)
So 2^ln(x) = e^ln(x)*ln(2)
then integrate the RHS to get the answer

Yep this is what i did but I dont think i integrated it properly because I got [x*2^(logx)]/log(2) instead of x*2^(logx)]/[log(2)+1]
Im not sure where the 1 on the denominator comes from

asianese · Jan 27, 2014

$2^{\ln x} = e^{\ln x \cdot \ln 2} = (e^{\ln x})^{\ln 2} = x^{\ln 2}$

Then treat ln2 as n, so what's the integral of x^n?

bladeys · Jan 28, 2014

asianese said:
$2^{\ln x} = e^{\ln x \cdot \ln 2} = (e^{\ln x})^{\ln 2} = x^{\ln 2}$

Then treat ln2 as n, so what's the integral of x^n?

Cheers mate, i appreciate it

Integration (1 Viewer)

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