a.

Đặt \(\sqrt{1-x^2}=u\Rightarrow x^2=1-u^2\Rightarrow xdx=-udu\)

\(\left\{{}\begin{matrix}x=0\Rightarrow u=1\\x=1\Rightarrow u=0\end{matrix}\right.\)

\(\Rightarrow I=\int\limits^0_1\left(1-u^2\right).u.\left(-udu\right)=\int\limits^1_0\left(u^2-u^4\right)du=\left(\dfrac{1}{3}u^3-\dfrac{1}{5}u^5\right)|^1_0\)

\(=\dfrac{2}{15}\)

b.

\(\int\limits^2_1\dfrac{dx}{x^2-2x+2}=\int\limits^2_1\dfrac{dx}{\left(x-1\right)^2+1}\)

Đặt \(x-1=tanu\Rightarrow dx=\dfrac{1}{cos^2u}du\)

\(\left\{{}\begin{matrix}x=1\Rightarrow u=0\\x=2\Rightarrow u=\dfrac{\pi}{4}\end{matrix}\right.\)

\(\Rightarrow I=\int\limits^{\dfrac{\pi}{4}}_0\dfrac{1}{tan^2u+1}.\dfrac{1}{cos^2u}du=\int\limits^{\dfrac{\pi}{4}}_0\dfrac{cos^2u}{cos^2u}du=\int\limits^{\dfrac{\pi}{4}}_0du\)

\(=u|^{\dfrac{\pi}{4}}_0=\dfrac{\pi}{4}\)

c.

\(\int\limits^2_1\dfrac{dx}{\sqrt{4-x^2}}\)

Đặt \(x=2sinu\Rightarrow dx=2cosu.du\)

\(\left\{{}\begin{matrix}x=1\Rightarrow u=\dfrac{\pi}{6}\\x=2\Rightarrow u=\dfrac{\pi}{2}\end{matrix}\right.\)

\(I=\int\limits^{\dfrac{\pi}{2}}_{\dfrac{\pi}{6}}\dfrac{2cosu.du}{\sqrt{4-4sin^2u}}=\int\limits^{\dfrac{\pi}{2}}_{\dfrac{\pi}{6}}\dfrac{2cosu.du}{2cosu}=\int\limits^{\dfrac{\pi}{2}}_{\dfrac{\pi}{6}}du\)

\(=u|^{\dfrac{\pi}{2}}_{\dfrac{\pi}{6}}=\dfrac{\pi}{3}\)

\(I_1=3\int_1^2x^2dx+\int_1^2\cos xdx+\int_1^2\frac{dx}{x}=x^3\)\(|^2 _1\)+\(\sin x\)\(|^2_1\) +\(\ln\left|x\right|\)\(|^2_1\)

    \(=\left(8-1\right)+\left(\sin2-\sin1\right)+\left(\ln2-\ln1\right)\)

     \(=7+\sin2-\sin1+\ln2\)

b) \(I_2=4\int_1^2\frac{dx}{x}-5\int_1^2x^4dx+2\int_1^2\sqrt{x}dx\)

         \(=4\left(\ln2-\ln1\right)-\left(2^5-1^5\right)+\frac{4}{3}\left(2\sqrt{2}-1\sqrt{1}\right)\)

         \(=4\ln2+\frac{8\sqrt{2}}{3}-32\frac{1}{3}\)

c) Ta cần xét 2 trường hợp 1) 0<a<b và 2) a<b<0

1) Nếu 0<a<b, khi đó \(f\left(x\right)=\frac{\left|x\right|}{x}=1\) vì \(x>0\) 

Do đó

\(\int_a^bf\left(x\right)dx=\int_a^bdx=b-a\)

2) Nếu a<b<0, khi đó \(f\left(x\right)=\frac{\left|x\right|}{x}=\frac{-x}{x}=1\) vì \(x<0\)

Do đó :

\(\int_a^bf\left(x\right)dx=\int_a^b\left(-1\right)dx=-\left(b-a\right)=a-b\)

Nhìn đề dữ dội y hệt cr của tui z :( Để làm từ từ 

Lập bảng xét dấu cho \(\left|x^2-1\right|\) trên đoạn \(\left[-2;2\right]\)

\(\left(-2;-1\right):+\)

\(\left(-1;1\right):-\)

\(\left(1;2\right):+\)

\(\Rightarrow I=\int\limits^{-1}_{-2}\left|x^2-1\right|dx+\int\limits^1_{-1}\left|x^2-1\right|dx+\int\limits^2_1\left|x^2-1\right|dx\)

\(=\int\limits^{-1}_{-2}\left(x^2-1\right)dx-\int\limits^1_{-1}\left(x^2-1\right)dx+\int\limits^2_1\left(x^2-1\right)dx\)

\(=\left(\dfrac{x^3}{3}-x\right)|^{-1}_{-2}-\left(\dfrac{x^3}{3}-x\right)|^1_{-1}+\left(\dfrac{x^3}{3}-x\right)|^2_1\)

Bạn tự thay cận vô tính nhé :), hiện mình ko cầm theo máy tính 

2/ \(I=\int\limits^e_1x^{\dfrac{1}{2}}.lnx.dx\)

\(\left\{{}\begin{matrix}u=lnx\\dv=x^{\dfrac{1}{2}}\end{matrix}\right.\Rightarrow\left\{{}\begin{matrix}du=\dfrac{dx}{x}\\v=\dfrac{2}{3}.x^{\dfrac{3}{2}}\end{matrix}\right.\)

\(\Rightarrow I=\dfrac{2}{3}.x^{\dfrac{3}{2}}.lnx|^e_1-\dfrac{2}{3}\int\limits^e_1x^{\dfrac{1}{2}}.dx\)

\(=\dfrac{2}{3}.x^{\dfrac{3}{2}}.lnx|^e_1-\dfrac{2}{3}.\dfrac{2}{3}.x^{\dfrac{3}{2}}|^e_1=...\)

3/ \(I=\int\limits^{\dfrac{\pi}{2}}_0e^{\sin x}.\cos x.dx+\int\limits^{\dfrac{\pi}{2}}_0\cos^2x.dx\)

Xét \(A=\int\limits^{\dfrac{\pi}{2}}_0e^{\sin x}.\cos x.dx\)

\(t=\sin x\Rightarrow dt=\cos x.dx\Rightarrow A=\int\limits^{\dfrac{\pi}{2}}_0e^t.dt=e^{\sin x}|^{\dfrac{\pi}{2}}_0\)

Xét \(B=\int\limits^{\dfrac{\pi}{2}}_0\cos^2x.dx\)

\(=\int\limits^{\dfrac{\pi}{2}}_0\dfrac{1+\cos2x}{2}.dx=\dfrac{1}{2}.\int\limits^{\dfrac{\pi}{2}}_0dx+\dfrac{1}{2}\int\limits^{\dfrac{\pi}{2}}_0\cos2x.dx\)

\(=\dfrac{1}{2}x|^{\dfrac{\pi}{2}}_0+\dfrac{1}{2}.\dfrac{1}{2}\sin2x|^{\dfrac{\pi}{2}}_0\)

I=A+B=...

\(\dfrac{1}{\left(x+1\right)\sqrt{x}+x\sqrt{x+1}}=\dfrac{\left(x+1\right)\sqrt{x}-x\sqrt{x+1}}{\left(x+1\right)^2x-x^2\left(x+1\right)}=\dfrac{\left(x+1\right)\sqrt{x}-x\sqrt{x+1}}{x\left(x+1\right)}\)

\(=\dfrac{\sqrt{x}}{x}-\dfrac{\sqrt{x+1}}{x+1}=x^{-\dfrac{1}{2}}-\left(x+1\right)^{-\dfrac{1}{2}}\)

Do đó:

\(I=\int\limits^2_1\left[x^{-\dfrac{1}{2}}-\left(x+1\right)^{-\dfrac{1}{2}}\right]dx=\left(2\sqrt{x}-2\sqrt{x+1}\right)|^2_1=...\)

a.

\(\int\limits^{\sqrt{7}}_0\dfrac{x^3}{\sqrt[3]{x^2+1}}dx\)

Đặt \(\sqrt[3]{x^2+1}=u\Rightarrow x^2+1=u^3\Rightarrow x^2=u^3-1\Rightarrow x.dx=\dfrac{3}{2}u^2du\)

\(\left\{{}\begin{matrix}x=0\Rightarrow u=1\\x=\sqrt{7}\Rightarrow u=2\end{matrix}\right.\)

\(\Rightarrow I=\int\limits^2_1\dfrac{\left(u^3-1\right).\dfrac{3}{2}u^2du}{u}=\int\limits^2_1\dfrac{3}{2}\left(u^4-u\right)du=\dfrac{3}{2}\left(\dfrac{1}{5}u^5-\dfrac{1}{2}u^2\right)|^2_1\)

\(=\dfrac{141}{20}\)

b.

Đặt \(\sqrt{x+3}=u\Rightarrow x=u^2-3\Rightarrow dx=2udu\)

\(\left\{{}\begin{matrix}x=1\Rightarrow u=2\\x=6\Rightarrow u=3\end{matrix}\right.\)

\(\Rightarrow I=\int\limits^3_2\dfrac{u+1}{u^2-3+2}.2udu=\int\limits^3_2\dfrac{2udu}{u-1}=\int\limits^3_22\left(1+\dfrac{1}{u-1}\right)du\)

\(=2\left(u+ln\left|u-1\right|\right)|^3_2=2\left(1+ln2\right)\)

đặt \(x=\frac{\sqrt{3}}{cost};\forall t\in\left(0;\frac{\pi}{2}\right)\Rightarrow tant>0\)

\(dx=d\left(\frac{\sqrt{3}}{cost}\right)=\frac{-\sqrt{3}sint}{cos^2t}dt\)

Thay vào, ta có \(\int\frac{\sqrt{3}\cdot\frac{-\sqrt{3}sint}{cos^2t}}{\frac{\sqrt{3}}{cost}\sqrt{\frac{3}{cos^2t}-3}}dt=\int\frac{-3\cdot\frac{sint}{cos^2t}}{\frac{3}{cost}\cdot\sqrt{tan^2t}}dt=\int\frac{-sint}{cost\cdot tant}dt=-\int dt=-t+C\)

Bây giờ thay t vào là ra

\(I=\int\limits^e_1x^2.ln^2x.\dfrac{1}{x\left(lnx+1\right)^2}dx\)

Đặt \(\left\{{}\begin{matrix}u=x^2ln^2x\\dv=\dfrac{1}{x\left(lnx+1\right)^2}dx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=2x.lnx\left(lnx+1\right)\\v=-\dfrac{1}{lnx+1}\end{matrix}\right.\)

\(\Rightarrow I=-\dfrac{x^2ln^2x}{lnx+1}|^e_1+\int\limits^e_12x.lnxdx=-\dfrac{e^2}{2}+I_1\)

Xét \(I_1\), đặt \(\left\{{}\begin{matrix}u=lnx\\dv=2xdx\end{matrix}\right.\) \(\Rightarrow\left\{{}\begin{matrix}du=\dfrac{dx}{x}\\v=x^2\end{matrix}\right.\)

\(\Rightarrow I_1=x^2lnx|^e_1-\int\limits^e_1xdx=...\)

\(I=\int\dfrac{\left(\sqrt{x+1}+\sqrt{x}\right)dx}{x+1-x}=\int\sqrt{x+1}dx+\int\sqrt{x}dx\)

Xet \(I_1=\int\sqrt{x+1}dx\)

\(t=x+1\Rightarrow dt=dx\Rightarrow I_1=\int\sqrt{t}.dt=\dfrac{2}{3}\left(x+1\right)^{\dfrac{3}{2}}+C\)

\(\Rightarrow I=\dfrac{2}{3}\left(x+1\right)^{\dfrac{3}{2}}+\dfrac{2}{3}x^{\dfrac{3}{2}}+C\)

P/s: Bạn tự thay cận vô ạ