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Ta có \(I=\int\limits^{\frac{\pi}{3}}_{\frac{\pi}{4}}\frac{\ln2.\ln\left(2\tan x\right)}{\sin2x.\ln\left(2\tan x\right)}dx=\ln2\int\limits^{\frac{\pi}{3}}_{\frac{\pi}{4}}\frac{dx}{\sin2x.\ln\left(2\tan x\right)}+\int\limits^{\frac{\pi}{3}}_{\frac{\pi}{4}}\frac{dx}{\sin2x}\)
Tính \(\ln2\int\limits^{\frac{\pi}{3}}_{\frac{\pi}{4}}\frac{dx}{\sin2x.\ln\left(2\tan x\right)}=\frac{\ln2}{2}\int\limits^{\frac{\pi}{3}}_{\frac{\pi}{4}}\frac{d\left[\ln\left(2\tan x\right)\right]}{\ln2\left(2\tan x\right)}=\frac{\ln2}{2}\left[\ln\left(\ln\left(2\tan x\right)\right)\right]|^{\frac{\pi}{3}}_{\frac{\pi}{4}}=\frac{\ln2}{2}.\ln\left(\frac{\ln2\sqrt{3}}{\ln2}\right)\)
Tính \(\int\limits^{\frac{\pi}{3}}_{\frac{\pi}{4}}\frac{dx}{\sin2x}=\frac{1}{2}\ln\left(\tan x\right)|^{\frac{\pi}{3}}_{\frac{\pi}{4}}=\frac{1}{2}\ln\sqrt{3}\)
Vậy \(I=\frac{\ln2}{2}\ln\left(\frac{\ln2\sqrt{3}}{\ln2}\right)+\frac{1}{2}\ln\sqrt{3}\)
\(I=\int\limits^e_1xlnxdx+\int\limits^e_1\dfrac{lnx}{x}dx=I_1+I_2\)
Xét \(I_1\) , đặt \(\left\{{}\begin{matrix}u=lnx\\dv=xdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=\dfrac{dx}{x}\\v=\dfrac{x^2}{2}\end{matrix}\right.\)
\(\Rightarrow I_1=\dfrac{x^2}{2}lnx|^e_1-\int\limits^e_1\dfrac{x}{2}=\dfrac{e^2}{2}-\dfrac{e}{2}+\dfrac{1}{2}\)
Xét \(I_2=\int\limits^e_1\dfrac{lnx}{x}dx=\int\limits^e_1lnx.d\left(lnx\right)=\dfrac{ln^2x}{2}|^e_1=\dfrac{1}{2}\)
\(\Rightarrow I=\dfrac{e^2}{2}-\dfrac{e}{2}+1\)
Câu nào mình biết thì mình làm nha.
1) Đổi thành \(\dfrac{y^4}{4}+y^3-2y\) rồi thế số.KQ là \(\dfrac{-3}{4}\)
2) Biến đổi thành \(\dfrac{t^2}{2}+2\sqrt{t}+\dfrac{1}{t}\) và thế số.KQ là \(\dfrac{35}{4}\)
3) Biến đổi thành 2sinx + cos(2x)/2 và thế số.KQ là 1
\(I=\frac{1}{4}\int\limits^e_1\frac{4\ln^2x-1+1}{x\left(1+2\ln x\right)}dx=\frac{1}{4}\int\limits^e_1\frac{\left(2\ln x-1\right)dx}{x}+\frac{1}{4}\int\limits^e_1\frac{dx}{x\cdot\left(1+2\ln x\right)}\)
\(=\frac{1}{8}\int\limits^e_1\left(2\ln x-1\right)d\left(2\ln x-1\right)+\frac{1}{8}\int\limits^e_1\frac{d\left(2\ln x+1\right)}{\left(1+2\ln x\right)}\)
\(=\left(\frac{1}{16}\left(2\ln x-1\right)^2\right)|^e_1+\frac{1}{8}\ln\left|\left(1+2\ln x\right)\right||^e_1\)
\(=\frac{1}{8}\ln3\)
\(I=\int\limits^5_1\left(\frac{x}{\sqrt{x-1}+1}+\frac{\ln x}{\left(x+1\right)^2}\right)dx=\int\limits^5_1\frac{x}{\sqrt{x-1}+1}dx+\int\limits^5_1\frac{\ln x}{\left(x+1\right)^2}dx\)
- Tính \(\int\limits^5_1\frac{x}{\sqrt{x-1}+1}dx\)
Đặt \(t=\sqrt{x-1}\Rightarrow t^2=x-1\Leftrightarrow x=t^2+1\Rightarrow dx=2tdt\)
Đổi cận : Cho x=1 => t=0; x=5=>t=2
\(I_1=\int\limits^2_0\frac{t^2+1}{t+1}.2td=\int\limits^2_0\frac{2t^3+2t}{t+1}dt=\int\limits^2_0\left(2t^2-2t+4-\frac{4}{t+1}\right)dt\)
\(=\left(\frac{2}{3}t^3-t^2+4t-4\ln\left|x+1\right|\right)|^2_0=\frac{28}{3}-4\ln3\)
\(I_2=\int\limits^5_1\frac{\ln x}{\left(x+1\right)^2}dx\)
Đặt \(\begin{cases}u=\ln x\\dv=\frac{1}{\left(x+1\right)^2}dx\end{cases}\) \(\Rightarrow\begin{cases}du=\frac{1}{x}dx\\v=-\frac{1}{x+1}\end{cases}\)
Ta có \(I_2=-\frac{1}{x+1}\ln x|^5_1+\int\limits^5_1\frac{1}{x\left(x+1\right)}dx=-\frac{1}{6}\ln5+\int\limits^5_1\left(\frac{1}{x}-\frac{1}{x+1}\right)dx\)
\(=-\frac{1}{6}\ln5+\left(\ln\left|x\right|x+1\right)|^5_1=-\frac{1}{6}\ln5+\ln5-\ln6+\ln2=\frac{5}{6}\ln5-\ln3\)
Khi đó \(I=I_1+I_2=\frac{28}{3}+\frac{5}{6}\ln5=5\ln3\)
\(I=\int_1^4\frac{\ln\left(5-x\right)+x^3}{x^2}dx=\int\limits_1^4\frac{\ln\left(5-x\right)}{x^2}dx+\int\limits^4_1xdx=I_1+I_2\)
\(I_1=\int_1^4\frac{\ln\left(5-x\right)}{x^2}dx:\)\(\begin{cases}u=\ln\left(5-x\right)\\v'=\frac{1}{x^2}\end{cases}\)\(\Rightarrow\begin{cases}u'=-\frac{1}{5-x}\\v=-\frac{1}{x}\end{cases}\)
\(I_1=-\frac{1}{x}\ln\left(5-x\right)|^4_1-\int\limits^4_1\frac{1}{x\left(5-x\right)}dx\)\(=2\ln2+\frac{1}{5}\int\limits^4_1\left(\frac{1}{x-5}-\frac{1}{x}\right)dx\)
\(=2\ln2-\frac{4}{5}\ln2=\frac{6}{5}\ln2\)
\(I_2=\int\limits^4_1xdx=\frac{x^2}{2}|^4_1=\frac{15}{2}\)
\(I=\frac{15}{2}+\frac{6}{5}\ln2\)