Tính \(\int\frac{dx}{1+e^x}\)
1) \(\int ln\frac{\left(1+s\text{inx}\right)^{1+c\text{os}x}}{1+c\text{os}x}dx\)
2) \(\int\left(xlnx\right)^2dx\)
3) \(\int\frac{3xcosx+2}{1+cot^2x}dx\)
4)\(\int\frac{2}{c\text{os}2x-7}dx\)
5)\(\int\frac{1+x\left(2lnx-1\right)}{x\left(x+1\right)^2}dx\)
6) \(\int\frac{1-x^2}{\left(1+x^2\right)^2}dx\)
7)\(\int e^x\frac{1+s\text{inx}}{1+c\text{os}x}dx\)
8) \(\int ln\left(\frac{x+1}{x-1}\right)dx\)
9)\(\int\frac{xln\left(1+x\right)}{\left(1+x^2\right)^2}dx\)
10) \(\int\frac{ln\left(x-1\right)}{\left(x-1\right)^4}dx\)
11)\(\int\frac{x^3lnx}{\sqrt{x^2+1}}dx\)
12)\(\int\frac{xe^x}{_{ }\left(e^x+1\right)^2}dx\)
13) \(\int\frac{xln\left(x+\sqrt{1+x^2}\right)}{x+\sqrt{1+x^2}}dx\)
giúp mk đc con nào thì giúp nha
Câu 2)
Đặt \(\left\{\begin{matrix} u=\ln ^2x\\ dv=x^2dx\end{matrix}\right.\Rightarrow \left\{\begin{matrix} du=2\frac{\ln x}{x}dx\\ v=\frac{x^3}{3}\end{matrix}\right.\Rightarrow I=\frac{x^3}{3}\ln ^2x-\frac{2}{3}\int x^2\ln xdx\)
Đặt \(\left\{\begin{matrix} k=\ln x\\ dt=x^2dx\end{matrix}\right.\Rightarrow \left\{\begin{matrix} dk=\frac{dx}{x}\\ t=\frac{x^3}{3}\end{matrix}\right.\Rightarrow \int x^2\ln xdx=\frac{x^3\ln x}{3}-\int \frac{x^2}{3}dx=\frac{x^3\ln x}{3}-\frac{x^3}{9}+c\)
Do đó \(I=\frac{x^3\ln^2x}{3}-\frac{2}{9}x^3\ln x+\frac{2}{27}x^3+c\)
Câu 3:
\(I=\int\frac{2}{\cos 2x-7}dx=-\int\frac{2}{2\sin^2x+6}dx=-\int\frac{dx}{\sin^2x+3}\)
Đặt \(t=\tan\frac{x}{2}\Rightarrow \left\{\begin{matrix} \sin x=\frac{2t}{t^2+1}\\ dx=\frac{2dt}{t^2+1}\end{matrix}\right.\)
\(\Rightarrow I=-\int \frac{2dt}{(t^2+1)\left ( \frac{4t^2}{(t^2+1)^2}+3 \right )}=-\int\frac{2(t^2+1)dt}{3t^4+10t^2+3}=-\int \frac{2d\left ( t-\frac{1}{t} \right )}{3\left ( t-\frac{1}{t} \right )^2+16}=\int\frac{2dk}{3k^2+16}\)
Đặt \(k=\frac{4}{\sqrt{3}}\tan v\). Đến đây dễ dàng suy ra \(I=\frac{-1}{2\sqrt{3}}v+c\)
Câu 6)
\(I=-\int \frac{\left ( 1-\frac{1}{x^2} \right )dx}{x^2+2+\frac{1}{x^2}}=-\int \frac{d\left ( x+\frac{1}{x} \right )}{\left ( x+\frac{1}{x} \right )^2}=-\frac{1}{x+\frac{1}{x}}+c=-\frac{x}{x^2+1}+c\)
Câu 8)
\(I=\int \ln \left(\frac{x+1}{x-1}\right)dx=\int \ln (x+1)dx-\int \ln (x-1)dx\)
\(\Leftrightarrow I=\int \ln (x+1)d(x+1)-\int \ln (x-1)d(x-1)\)
Xét \(\int \ln tdt\) ta có:
Đặt \(\left\{\begin{matrix} u=\ln t\\ dv=dt\end{matrix}\right.\Rightarrow \left\{\begin{matrix} du=\frac{dt}{t}\\ v=t\end{matrix}\right.\Rightarrow \int \ln tdt=t\ln t-\int dt=t\ln t-t+c\)
\(\Rightarrow I=(x+1)\ln (x+1)-(x+1)-(x-1)\ln (x-1)+x-1+c\)
\(\Leftrightarrow I=(x+1)\ln(x+1)-(x-1)\ln(x-1)+c\)
Tìm các nguyên hàm sau
1.\(\int\frac{9x^2}{\sqrt{1-x^3}}dx\)
2.\(\int\frac{1}{\sqrt{x}\left(1+\sqrt{x}\right)^3}dx\)
3.\(\int\frac{x}{\sqrt{2x+3}}dx\)
4.\(\int\) \(\frac{e^{2x}}{\sqrt{1+e^x}}\) dx
5.\(\int\frac{\sqrt[3]{1+lnx}}{x}dx\)
6.\(\int\) cosxsin3xdx
7.\(\int\) (x2+2x-1)exdx
8.\(\int\) excosxdx
9.\(\int\) xsin(2x+1)dx
10.\(\int\) (1-2x)e3xdx
Không phải tất cả các câu đều dùng nguyên hàm từng phần được đâu nhé, 1 số câu phải dùng đổi biến, đặc biệt những câu liên quan đến căn thức thì đừng dại mà nguyên hàm từng phần (vì càng nguyên hàm từng phần biểu thức nó càng phình to ra chứ không thu gọn lại, vĩnh viễn không ra kết quả đâu)
a/ \(I=\int\frac{9x^2}{\sqrt{1-x^3}}dx\)
Đặt \(u=\sqrt{1-x^3}\Rightarrow u^2=1-x^3\Rightarrow2u.du=-3x^2dx\)
\(\Rightarrow9x^2dx=-6udu\)
\(\Rightarrow I=\int\frac{-6u.du}{u}=-6\int du=-6u+C=-6\sqrt{1-x^3}+C\)
b/ Đặt \(u=1+\sqrt{x}\Rightarrow du=\frac{dx}{2\sqrt{x}}\Rightarrow2du=\frac{dx}{\sqrt{x}}\)
\(\Rightarrow I=\int\frac{2du}{u^3}=2\int u^{-3}du=-u^{-2}+C=-\frac{1}{u^2}+C=-\frac{1}{\left(1+\sqrt{x}\right)^2}+C\)
c/ Đặt \(u=\sqrt{2x+3}\Rightarrow u^2=2x\Rightarrow\left\{{}\begin{matrix}x=\frac{u^2}{2}\\dx=u.du\end{matrix}\right.\)
\(\Rightarrow I=\int\frac{u^2.u.du}{2u}=\frac{1}{2}\int u^2du=\frac{1}{6}u^3+C=\frac{1}{6}\sqrt{\left(2x+3\right)^3}+C\)
d/ Đặt \(u=\sqrt{1+e^x}\Rightarrow u^2-1=e^x\Rightarrow2u.du=e^xdx\)
\(\Rightarrow I=\int\frac{\left(u^2-1\right).2u.du}{u}=2\int\left(u^2-1\right)du=\frac{2}{3}u^3-2u+C\)
\(=\frac{2}{3}\sqrt{\left(1+e^x\right)^2}-2\sqrt{1+e^x}+C\)
e/ Đặt \(u=\sqrt[3]{1+lnx}\Rightarrow u^3=1+lnx\Rightarrow3u^2du=\frac{dx}{x}\)
\(\Rightarrow I=\int u.3u^2du=3\int u^3du=\frac{3}{4}u^4+C=\frac{3}{4}\sqrt[3]{\left(1+lnx\right)^4}+C\)
f/ \(I=\int cosx.sin^3xdx\)
Đặt \(u=sinx\Rightarrow du=cosxdx\)
\(\Rightarrow I=\int u^3du=\frac{1}{4}u^4+C=\frac{1}{4}sin^4x+C\)
Từ phần này trở đi mới bắt đầu xài nguyên hàm từng phần:
g/ \(I=\int\left(x^2+2x-1\right)e^xdx\)
Đặt \(\left\{{}\begin{matrix}u=x^2+2x-1\\dv=e^xdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=\left(2x+2\right)dx\\v=e^x\end{matrix}\right.\)
\(\Rightarrow I=\left(x^2+2x-1\right)e^x-\int\left(2x+2\right)e^xdx\)
Xét \(J=\int\left(2x+2\right)e^xdx\)
Đặt \(\left\{{}\begin{matrix}u=2x+2\\dv=e^xdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=2dx\\v=e^x\end{matrix}\right.\)
\(\Rightarrow J=\left(2x+2\right)e^x-\int2e^xdx=\left(2x+2\right)e^x-2e^x+C=2x.e^x+C\)
\(\Rightarrow I=\left(x^2+2x-1\right)e^x-2x.e^x+C=\left(x^2-1\right)e^x+C\)
1)\(\int\sqrt{\frac{1-\sqrt{x}}{1+\sqrt{x}}}dx\)
2)\(\int\frac{dx}{\left(e^x+1\right)\left(x^2+1\right)}\)
3)\(\int\frac{1+2x\sqrt{1-x^2}+2x^2}{1+x+\sqrt{1+x^2}}\)dx
4)\(\int\frac{sin^6x+c\text{os}^6x}{1+6^x}dx\)
5)\(\int_0^{\frac{\pi}{2}}\frac{\sqrt{c\text{os}x}}{\sqrt{s\text{inx}}+\sqrt{c\text{os}x}}dx\)
6)\(\int\frac{x^4}{2^x+1}dx\)
7)\(\int_0^{\frac{\pi^2}{4}}sin\sqrt{x}dx\)
8)\(\int\sqrt[6]{1-c\text{os}^3x}.s\text{inx}.c\text{os}^5xdx\)
9)\(\int\sqrt{\frac{1}{4x}+\frac{\sqrt{x}+e^x}{\sqrt{x}.e^x}}dx\)
10)\(\int\frac{c\text{os}x+s\text{inx}}{\left(e^xs\text{inx}+1\right)s\text{inx}}dx\)
tính
\(\int\frac{1}{1-e^x}dx\)
ta có
\(\int\frac{dx}{1-e^x}=\int\frac{1-e^x+e^x}{1-e^x}dx=\int dx+\int\frac{e^x}{1-e^x}dx=\int dx-\int\frac{d\left(1-e^x\right)}{1-e^x}=x-ln\left|1-e^x\right|+C\)
Tìm các nguyên hàm sau:
a) \(\int (3x^2-2x-4)dx \)
b) \(\int(\sin3x-\cos4x)dx \)
c) \(\int(e^{-3x}-4^x)dx \)
d) \(\int\ln(x)dx \)
e) \(\int(x.e^x)dx \)
f) \(\int(x+1).\sin(x)dx \)
g) \(\int x.\ln(x)dx \)
\(\int\left(3x^2-2x-4\right)dx=x^3-x^2-4x+C\)
\(\int\left(sin3x-cos4x\right)dx=-\dfrac{1}{3}cos3x-\dfrac{1}{4}sin4x+C\)
\(\int\left(e^{-3x}-4^x\right)dx=-\dfrac{1}{3}e^{-3x}-\dfrac{4^x}{ln4}+C\)
d. \(I=\int lnxdx\)
Đặt \(\left\{{}\begin{matrix}u=lnx\\dv=dx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=\dfrac{dx}{x}\\v=x\end{matrix}\right.\)
\(\Rightarrow u=x.lnx-\int dx=x.lnx-x+C\)
e. Đặt \(\left\{{}\begin{matrix}u=x\\dv=e^xdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=dx\\v=e^x\end{matrix}\right.\)
\(\Rightarrow I=x.e^x-\int e^xdx=x.e^x-e^x+C\)
f.
Đặt \(\left\{{}\begin{matrix}u=x+1\\dv=sinxdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=dx\\v=-cosx\end{matrix}\right.\)
\(\Rightarrow I=-\left(x+1\right)cosx+\int cosxdx=-\left(x+1\right)cosx+sinx+C\)
g.
Đặt \(\left\{{}\begin{matrix}u=lnx\\dv=xdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=\dfrac{dx}{x}\\v=\dfrac{1}{2}x^2\end{matrix}\right.\)
\(\Rightarrow I=\dfrac{1}{2}x^2.lnx-\dfrac{1}{2}\int xdx=\dfrac{1}{2}x^2.lnx-\dfrac{1}{4}x^2+C\)
Tìm các nguyên hàm sau :
a) \(I_1=\int\frac{\sqrt{1+\ln x}}{x}dx\)
b) \(I_2=\int\frac{e^{2x}}{\sqrt[4]{e^x+1}}dx\)
c) \(I_3=\int x^2e^{x^3+6}dx\)
a) Đặt \(1+\ln x=t\) khi đó \(\frac{dx}{x}=dt\) và do đó
\(I_1=\int\sqrt{t}dt=\frac{2}{3}t^{\frac{3}{2}}+C=\frac{2}{3}\sqrt{\left(1+\ln x\right)^3}+C\)
b) Đặt \(\sqrt[4]{e^x+1}=t\) khi đó \(e^x+1=t^4\Rightarrow e^x=t^4-1\) và \(e^xdx=4t^3dt\) , \(e^{2x}dx=e^x.e^xdx=\left(t^4-1\right)4t^3dt\)
Do đó :
\(I_2=4\int\frac{t^3\left(t^4-1\right)}{t}dt=4\int\left(t^6-t^2\right)dt=4\left[\frac{t^7}{7}-\frac{t^3}{3}\right]+C\)
\(=4\left[\frac{1}{7}\sqrt[4]{\left(e^x+1\right)^7}-\frac{1}{3}\sqrt[4]{\left(e^x+1\right)^3}\right]+C\)
c) Lưu ý rằng \(x^2dx=\frac{1}{3}d\left(x^3+C\right)\) do đó :
\(I_3=\int x^2e^{x^{3+6}dx}=\frac{1}{3}\int e^{x^{3+6}}d\left(x^3+6\right)=\frac{1}{3}e^{x^{3+6}}+C\)
\(\int\sqrt{e^x-1}dx\)
\(\int\frac{\sqrt{1+x^2}}{x^4}dx\)
Câu 1:Gọi biểu thức là $A$. Đặt \(\sqrt{e^x-1}=t\)
\(\Rightarrow e^x=t^2+1\Rightarrow d(e^x)=d(t^2+1)=2tdt=e^xdx=(t^2+1)dx\)
\(\Rightarrow \int \frac{2t^2}{t^2+1}dt=\int \left (2-\frac{2}{t^2+1} \right)dt\)
Đặt \(t=\tan m\Rightarrow dt=\frac{dm}{\cos^2 m}\Rightarrow \int \frac{2dt}{t^2+1}=\int 2dm=2m\)
\(\Rightarrow A=2t-2m+c=2\sqrt{e^x-1}-2\tan ^{-1} (\sqrt{e^x-1})+c\)
Câu 2: Đặt \(x=\tan t\Rightarrow dx=\frac{dt}{\cos^2 t}, x^2+1=\frac{1}{\cos^2 t}\) với \(\frac{-\pi}{2} < t< \frac{\pi}{2}\)
Gọi biểu thức là $B$. Ta có
\(B=\int \frac{\cos t dt}{\sin ^4t}=\int \frac{d(\sin t)}{\sin^4 t}=\frac{-\sin ^{-3} t}{3}+c\) \(=-\frac{\sqrt{(x^2+1)^3}}{3x^3}+c\)
Mọi người ơi , giúp e tính tích phân bất định với ạ ! Cảm ơn m.n ạ !
a.\(\int\frac{x+6}{\sqrt{x^2-2x+10}}dx\)
b.\(\int\frac{x}{\sqrt{3-2x-x^2}}dx\)
c.\(\int\sqrt{\frac{1-\sqrt{x}}{1+\sqrt{x}}}dx\)
d,\(\int\frac{dx}{1+tanx}\)
e.\(\int tan^3xdx\)
f. \(\int cos^3xdx\)
g. \(\int sin^2x.cos^3xdx\)
h. \(\int sinx.cos2xdx\)
i. \(\int\frac{sin2x}{1+cos^2x}dx\)
a.
\(I=\int\frac{\frac{1}{2}\left(2x-2\right)+7}{\sqrt{x^2-2x+10}}dx=\frac{1}{2}\int\frac{2x-2}{\sqrt{x^2-2x+10}}dx+7\int\frac{1}{\sqrt{x^2-2x+10}}dx=\frac{1}{2}I_1+7I_2\)
Xét \(I_1=\int\frac{2x-2}{\sqrt{x^2-2x+10}}dx=\int\frac{d\left(x^2-2x+10\right)}{\sqrt{x^2-2x+10}}=2\sqrt{x^2-2x+10}+C_1\)
Xét \(I_2=\int\frac{dx}{\sqrt{x^2-2x+10}}=\int\frac{dx}{\sqrt{\left(x-1\right)^2+9}}\)
Đặt
\(u=x-1+\sqrt{\left(x-1\right)^2+10}\Rightarrow du=\left(1+\frac{\left(x-1\right)}{\sqrt{\left(x-1\right)^2+10}}\right)dx=\frac{x-1+\sqrt{\left(x-1\right)^2+10}}{\sqrt{\left(x-1\right)^2+10}}dx\)
\(\Rightarrow du=\frac{u}{\sqrt{\left(x-1\right)^2+10}}dx\Rightarrow\frac{dx}{\sqrt{\left(x-1\right)^2+10}}=\frac{du}{u}\)
\(\Rightarrow I_2=\int\frac{du}{u}=ln\left|u\right|+C_2=ln\left|x-1+\sqrt{x^2-2x+10}\right|+C_2\)
\(\Rightarrow I=\sqrt{x^2-2x+10}+7ln\left|x-1+\sqrt{x^2-2x+10}\right|+C\)
2.
\(I=\int\frac{\frac{1}{2}\left(2x+2\right)-1}{\sqrt{3-2x-x^2}}dx=\frac{1}{2}\int\frac{2x+2}{\sqrt{3-2x-x^2}}dx-\int\frac{1}{\sqrt{3-2x-x^2}}dx=\frac{1}{2}I_1-I_2\)
Xét \(I_1=\int\frac{2x+2}{\sqrt{3-2x-x^2}}dx=-\int\frac{d\left(3-2x-x^2\right)}{\sqrt{3-2x-x^2}}=-2\sqrt{3-2x-x^2}+C_1\)
Xét \(I_2=\int\frac{1}{\sqrt{3-2x-x^2}}dx=\int\frac{1}{\sqrt{4-\left(x+1\right)^2}}dx\)
Đặt \(x+1=2sinu\Rightarrow dx=2cosu.du\)
\(\Rightarrow I_2=\int\frac{2cosu.du}{2.cosu}=\int du=u+C_2=arcsin\left(\frac{x+1}{2}\right)+C_2\)
\(\Rightarrow I=-\sqrt{3-2x-x^2}-arcsin\left(\frac{x+1}{2}\right)+C\)
c/
\(I=\int\frac{1-\sqrt{x}}{\sqrt{1-x}}dx\)
Đặt \(\sqrt{x}=sint\Rightarrow x=sin^2t\Rightarrow dx=2sint.cost.dt\)
\(\Rightarrow I=\int\frac{2sint.cost\left(1-sint\right)}{\sqrt{1-sin^2t}}dt=\int\frac{2sint.cost\left(1-sint\right)}{cost}dt=\int\left(2sint-2sin^2t\right)dt\)
\(=\int\left(2sint+cos2t-1\right)dt=-2cost+\frac{1}{2}sin2t-t+C\)
\(=-2\sqrt{1-sin^2t}+\frac{1}{2}sint\sqrt{1-sin^2t}-t+C\)
\(=-2\sqrt{1-x}+\frac{1}{2}\sqrt{x\left(1-x\right)}-arcsin\left(\sqrt{x}\right)+C\)
Tìm các nguyên hàm sau đây bằng các phép hữu tỉ hóa
a) \(I_1=\int\frac{e^{3x}}{e^2+2}dx\)
b) \(I_2=\int\frac{\sqrt{x}}{x+\sqrt[3]{x^2}}dx\)
c) \(I_1=\int\frac{1}{x^2-1}\left[\sqrt[3]{\left(\frac{x+1}{x-1}\right)^5}\right]dx\)
a) Dùng phương pháp hữu tỉ hóa "Nếu \(f\left(x\right)=R\left(e^x\right)\Rightarrow t=e^x\)" ta có \(e^x=t\Rightarrow x=\ln t,dx=\frac{dt}{t}\)
Khi đó \(I_1=\int\frac{t^3}{t+2}.\frac{dt}{t}=\int\frac{t^2}{t+2}dt=\int\left(t-2+\frac{4}{t+2}\right)dt\)
\(=\frac{1}{2}t^2-2t+4\ln\left(t+2\right)+C=\frac{1}{2}e^{2x}-2e^x+4\ln\left(e^x+2\right)+C\)
b) Hàm dưới dấu nguyên hàm
\(f\left(x\right)=\frac{\sqrt{x}}{x+\sqrt[3]{x^2}}=R\left(x;x^{\frac{1}{2}},x^{\frac{2}{3}}\right)\)
q=BCNN(2;3)=6
Ta thực hiện phép hữu tỉ hóa theo :
"Nếu \(f\left(x\right)=R\left(x:\left(ã+b\right);\left(ax+b\right)^{r2},....\right),r_k=\frac{P_k}{q_k}\in Q,k=1,2,...,m\Rightarrow t=\left(ax+b\right)^{\frac{1}{q}}\),q=BCNN \(\left(q_1,q_2,...,q_m\right)\)"
=> \(t=x^{\frac{1}{6}}\Rightarrow x=t^{6,}dx=6t^5dt\)
Khi đó nguyên hàm đã cho trở thành :
\(I_2=\int\frac{t^3}{t^6-t^4}6t^{5dt}=\int\frac{6t^4}{t^2-1}dt=6\int\left(t^2+1+\frac{1}{t^2-1}\right)dt\)
\(=6\int\left(t^2+1\right)dt+2\int\frac{dt}{\left(t-1\right)\left(t+1\right)}=2t^3+6t+3\int\frac{dt}{t-1}-3\int\frac{dt}{t+1}\)
\(=2t^2+6t+3\ln\left|t-1\right|-3\ln\left|t+1\right|+C=2\sqrt{x}+6\sqrt[6]{x}+3\ln\left|\frac{\sqrt[6]{x-1}}{\sqrt[6]{x+1}}\right|+C\)
c) Hàm dưới dấu nguyên hàm có dạng :
\(f\left(x\right)=R\left(x;\left(\frac{x+1}{x-1}\right)^{\frac{2}{3}};\left(\frac{x+1}{x-1}\right)^{\frac{5}{6}}\right)\)
q=BCNN (3;6)=6
Ta thực hiện phép hữu tỉ hóa được
\(t=\left(\frac{x+1}{x-1}\right)^{\frac{1}{6}}\Rightarrow x=\frac{t^6+1}{t^6-1},dx=\frac{-12t^5}{\left(t^6-1\right)^2}dt\)
Khi đó hàm dưới dấu nguyên hàm trở thành
\(R\left(t\right)=\frac{1}{\left(\frac{t^6+1}{t^6-1}\right)^2-1}\left[t^4-t^5\right]=\frac{\left(t^6-1\right)^2}{4t^6}\left(t^4-t^5\right)\)
Do đó :
\(I_3=\int\frac{\left(t^6-1\right)^2}{4t^6}\left(t^4-t^5\right).\frac{-12t^5}{\left(t^6-1\right)}dt=3\int\left(t^4-t^3\right)dt\)
\(=\frac{5}{3}t^5-\frac{3}{4}t^4+C=\frac{3}{5}\sqrt[6]{\left(\frac{x+1}{x-1}\right)^5}-\frac{3}{4}\sqrt[3]{\left(\frac{x+1}{x-1}\right)^2}+C\)
\(\int\limits^{\frac{\pi}{3}}_0\frac{sinx}{cosx\sqrt{3+sin^2x}}dx\)
\(\int\limits^{ln8}_0\frac{e^x}{1+\sqrt{3e^x+1}}dx\)