$A=\frac{1}{1\times 2}C^{0}_{2n+1} + \frac{1}{2\times 3}C^{1}_{2n+1} + ....+\frac{1}{(2n+2)(2n+3)}C^{2n+1}_{2n+1} $
Bài này làm bt thì không khó. nhưng cho mình hỏi tính hệ số c kiểu gì . bới nguyên hàm 2 lần. thì sao tìm đc c


$B= \frac{C^{0}_{2n+1}}{1} + 2^2\frac{C^{2}_{2n+1}}{3}+ ...+ 2^{2n}\frac{C^{2n}_{2n+1}}{2n+1}$
hình như câu B nguyên hàm 1 lần và đạo hàm 1 lần –  daongocminh86hp 20-01-13 09:51 PM
câu b mình chưa giải quyết đc :) . mình muốn hỏi là khi sử dụng nguyên hàm trong bài toán này thì nó có hệ số c. thì tính hệ số c kiểu gì –  daongocminh86hp 20-01-13 09:50 PM
Ý bạn là muốn được giải quyết điều gì trong bài toán này? –  Trần Nhật Tân 20-01-13 09:47 PM
a.
Ta có:
$(x+1)^{2n+1}=C_{2n+1}^{2n+1}x^{2n+1}+C_{2n+1}^{2n}x^{2n}+\ldots+C_{2n+1}^1x+C_{2n+1}^0$
$(x-1)^{2n+1}=C_{2n+1}^{2n+1}x^{2n+1}-C_{2n+1}^{2n}x^{2n}+\ldots+C_{2n+1}^1x-C_{2n+1}^0$
Suy ra:
$(x+1)^{2n+1}-(x-1)^{2n+1}=2C_{2n+1}^{2n}x^{2n}+2C_{2n+1}^{2n-2}x^{2n-2}+\ldots+2C_{2n+1}^2x^2+2C_{2n+1}^0$
Lấy nguyên hàm 2 vế ta được:
$\frac{1}{2n+2}[(x+1)^{2n+2}-(x-1)^{2n+2}]=\frac{2C_{2n+1}^{2n}}{2n+1}x^{2n+1}+2\frac{C_{2n+1}^{2n-2}}{2n-1}x^{2n-1}+\ldots+\frac{2C_{2n+1}^2}{3}x^3+\frac{2C_{2n+1}^0}{1}x$
Cho $x=2$ ta được: $4B=\frac{3^{2n+2}-1}{2n+2}\Rightarrow B=\frac{3^{2n+2}-1}{8(n+1)}$
a.
Ta có:
$(x+1)^{2n+1}=C_{2n+1}^{2n+1}x^{2n+1}+C_{2n+1}^{2n}x^{2n}+\ldots+C_{2n+1}^1x+C_{2n+1}^0$
$\Rightarrow \int\limits_0^t(x+1)^{2n+1}dx=\int\limits_0^t\left(C_{2n+1}^{2n+1}x^{2n+1}+C_{2n+1}^{2n}x^{2n}+\ldots+C_{2n+1}^1x+C_{2n+1}^0\right)dx$
$\Rightarrow \frac{1}{2n+2}(t+1)^{2n+2}=\frac{C_{2n+1}^{2n+1}}{2n+2}t^{2n+2}+\frac{C_{2n+1}^{2n}}{2n+1}t^{2n+1}+\ldots+\frac{C_{2n+1}^1}{2}t^2+\frac{C_{2n+1}^0}{1}t$
$\Rightarrow \int\limits_0^x\frac{1}{2n+2}(t+1)^{2n+2}dt=\int\limits_0^x\left(\frac{C_{2n+1}^{2n+1}}{2n+2}t^{2n+2}+\frac{C_{2n+1}^{2n}}{2n+1}t^{2n+1}+\ldots+\frac{C_{2n+1}^1}{2}t^2+\frac{C_{2n+1}^0}{1}t\right)dt$
$\Rightarrow \frac{1}{(2n+2)(2n+3)}(x+1)^{2n+3}=\frac{C_{2n+1}^{2n+1}}{(2n+2)(2n+3)}x^{2n+3}+\frac{C_{2n+1}^{2n}}{(2n+1)(2n+2)}x^{2n+2}+\ldots+\frac{C_{2n+1}^1}{2.3}x^3+\frac{C_{2n+1}^0}{1.2}x^2$
Cho $x=1$ ta được: $A=\frac{2^{2n+3}}{(2n+2)(2n+3)}$
vậy thì mình sẽ sửa lại cho chuẩn hơn vậy –  khangnguyenthanh 20-01-13 10:01 PM
mình nghĩ bạn sai r. bạn nguyên hàm thì hệ số c của bạn đâu –  daongocminh86hp 20-01-13 09:57 PM

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