Tính nguyên hàm : $\int\limits\frac{e^{2x}dx}{3+\sqrt{2e^x-1}}$
Gợi ý 

$I=\dfrac{1}{2}\int \dfrac{2e^x .e^x dx}{3+\sqrt{2e^x -1}}$ đặt $\sqrt{2e^x-1}=t \Rightarrow 2e^x -1 = t^2 \Rightarrow e^x dx =tdt$

$I=\dfrac{1}{2} \int \dfrac{t^2 +1}{3+t}.tdt =\dfrac{1}{2} \int \bigg (t^2-3t+10 -\dfrac{30}{t+3} \bigg )dt$ dễ rồi nhé
ờ :)) ok chữa h –  Dép Lê Con Nhà Quê 29-12-13 06:14 PM
phía dưới là tdt mà bạn chỉ ghi dt , thiếu t rùi –  m_internet001 29-12-13 07:41 AM
sai j za, mệt quá nên t chả nhìn ra chỗ sai nữa –  Dép Lê Con Nhà Quê 28-12-13 08:03 PM
sai nhé! –  m_internet001 28-12-13 11:56 AM

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