Finding value of $ \int \ln(1+2k\cos x+k^2)dx\;\;, k>0$

Question

Finding value of $\displaystyle \int \ln(1+2k\cos x+k^2)dx\;\;, k>0$

Try: Let $\displaystyle I = \int \ln(1+2k\cos x+k^2)dx$

So $\displaystyle I = \ln(1+2k\cos x+k^2)\cdot x+\int \frac{2k\sin x \cdot x}{1+2k\cos x+k^2}dx$

How can i solve it from that point

could some help me to solve it, thanks

Answer 1

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Rearranging terms

You can write the integral as \begin{equation} S= {\displaystyle\int} \ln\left(k\left(\mathrm{e}^{\mathrm{i}x}+\mathrm{e}^{-\mathrm{i}x}\right)+k^2+1\right)\,\mathrm{d}x \end{equation} Change of variable, $u = ix$ then $dx = -i du$, i.e. \begin{equation} S= {\displaystyle\int}\ln\left(k\left(\mathrm{e}^{\mathrm{i}x}+\mathrm{e}^{-\mathrm{i}x}\right)+k^2+1\right)\,\mathrm{d}x =-{{\mathrm{i}}}{\displaystyle\int}\ln\left(k\left(\mathrm{e}^u+\mathrm{e}^{-u}\right)+k^2+1\right)\,\mathrm{d}u \end{equation} Integrate by parts by choosing $f =\ln\left(k\left(\mathrm{e}^u+\mathrm{e}^{-u}\right)+k^2+1\right)$ and $g' = 1$, you shall get

\begin{equation} S =u\ln\left(k\left(\mathrm{e}^u+\mathrm{e}^{-u}\right)+k^2+1\right)-{\displaystyle\int}\dfrac{ku\left(\mathrm{e}^u-\mathrm{e}^{-u}\right)}{k\left(\mathrm{e}^u+\mathrm{e}^{-u}\right)+k^2+1}\,\mathrm{d}u \tag{0} \end{equation} Now let's focus on $F={\displaystyle\int}\dfrac{ku\left(\mathrm{e}^u-\mathrm{e}^{-u}\right)}{k\left(\mathrm{e}^u+\mathrm{e}^{-u}\right)+k^2+1}\,\mathrm{d}u$, which can be written as \begin{equation} F = {\displaystyle\int}\dfrac{u\left(\mathrm{e}^{2u}-1\right)}{k\left(\mathrm{e}^{2u}+1\right)+\left(k^2+1\right)\mathrm{e}^u}\,\mathrm{d}u \end{equation} Take a change of variable $v= e^u$, you get \begin{equation} F ={\displaystyle\int}\dfrac{\left(v^2-1\right)\ln\left(v\right)}{v\left(kv^2+\left(k^2+1\right)v+k\right)}\,\mathrm{d}v \end{equation} Factor the denominator then apply partial fraction decomposition, you will get \begin{equation} F =\underbrace{{\displaystyle\int}\dfrac{\ln\left(v\right)}{kv+1}\,\mathrm{d}v}_A+{{\dfrac{1}{k}}}\underbrace{{\displaystyle\int}\dfrac{\ln\left(v\right)}{v+k}\,\mathrm{d}v}_B-{{\dfrac{1}{k}}}\underbrace{{\displaystyle\int}\dfrac{\ln\left(v\right)}{v}\,\mathrm{d}v}_C \tag{1} \end{equation}

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Solving $A$

For solving $A$, you need to integrate by parts first, by choosing $f = \ln v$, you get

\begin{equation} A =\dfrac{\ln\left(v\right)\ln\left(kv+1\right)}{k}-{\displaystyle\int}\dfrac{\ln\left(kv+1\right)}{kv}\,\mathrm{d}v \end{equation} Solving the integral above by choosing $w = -kv$, you get \begin{equation} -{{\dfrac{1}{k}}}{\displaystyle\int}-\dfrac{\ln\left(1-w\right)}{w}\,\mathrm{d}w =-\dfrac{\operatorname{Li}_2\left(w\right)}{k} =-\dfrac{\operatorname{Li}_2\left(-kv\right)}{k} \end{equation} So, $A$ becomes \begin{equation} A =\dfrac{\ln\left(v\right)\ln\left(kv+1\right)}{k}+\dfrac{\operatorname{Li}_2\left(-kv\right)}{k} \end{equation}

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Solving $B$

Choose $w = v+k$, then \begin{equation} B ={\displaystyle\int}\dfrac{\ln\left(1-\frac{w}{k}\right)}{w}\,\mathrm{d}w+{{\ln\left(-k\right)}}{\displaystyle\int}\dfrac{1}{w}\,\mathrm{d}w \end{equation} For the first integral above choose $y = \frac{w}{k}$, you will get \begin{equation} {\displaystyle\int}\dfrac{\ln\left(1-\frac{w}{k}\right)}{w}\,\mathrm{d}w =-{\displaystyle\int}-\dfrac{\ln\left(1-y\right)}{y}\,\mathrm{d}y \end{equation} Using a very similar technique as we did with $A$, we get \begin{equation} B =\ln\left(-k\right)\ln\left(v+k\right)-\operatorname{Li}_2\left(\dfrac{v+k}{k}\right) \end{equation}

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Solving $C$

For $C = {\displaystyle\int}\dfrac{\ln\left(v\right)}{v}\,\mathrm{d}v$, this one is easy just choose $w = \ln v$, you get \begin{equation} {\displaystyle\int}\dfrac{\ln\left(v\right)}{v}\,\mathrm{d}v ={\displaystyle\int}w\,\mathrm{d}w = \frac{w^2}{2} =\dfrac{\ln^2\left(v\right)}{2} \end{equation}

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Undoing the change of variables

Plugging all these integrals back in $(1)$, we get \begin{equation} F=\dfrac{\ln\left(v\right)\ln\left(kv+1\right)}{k}-\dfrac{\operatorname{Li}_2\left(\frac{v+k}{k}\right)}{k}+\dfrac{\ln\left(-k\right)\ln\left(v+k\right)}{k}+\dfrac{\operatorname{Li}_2\left(-kv\right)}{k}-\dfrac{\ln^2\left(v\right)}{2k} \end{equation} Undo the change of variable $v = e^u$, you will get \begin{equation} F =\dfrac{u\ln\left(k\mathrm{e}^u+1\right)}{k}-\dfrac{\operatorname{Li}_2\left(\frac{\mathrm{e}^u+k}{k}\right)}{k}+\dfrac{\ln\left(-k\right)\ln\left(\mathrm{e}^u+k\right)}{k}+\dfrac{\operatorname{Li}_2\left(-k\mathrm{e}^u\right)}{k}-\dfrac{u^2}{2k} \end{equation} Plug back in equation $(0)$, we get \begin{equation} S =u\ln\left(k\left(\mathrm{e}^u+\mathrm{e}^{-u}\right)+k^2+1\right)-u\ln\left(k\mathrm{e}^u+1\right)+\operatorname{Li}_2\left(\dfrac{\mathrm{e}^u+k}{k}\right)-\ln\left(-k\right)\ln\left(\mathrm{e}^u+k\right)-\operatorname{Li}_2\left(-k\mathrm{e}^u\right)+\dfrac{u^2}{2} \end{equation} Undo $u=ix$, we finalize by saying \begin{equation} S =\left(x+\mathrm{i}\left(\ln\left(k\right)+\ln\left(-1\right)\right)\right)\ln\left(\left|\mathrm{e}^{\mathrm{i}x}+k\right|\right)-\mathrm{i}\operatorname{Li}_2\left(\dfrac{\mathrm{e}^{\mathrm{i}x}+k}{k}\right)+\mathrm{i}\operatorname{Li}_2\left(-k\mathrm{e}^{\mathrm{i}x}\right)-\dfrac{\mathrm{i}x^2}{2}+C \end{equation}