Javascript Disabled Detected

You currently have javascript disabled. Several functions may not work. Please re-enable javascript to access full functionality.

Tính $\frac{a_{1}^{n}+a_{2}^{n}+...+a_{n}^{n}}{a_{2}^{n}+a_{3}^{n}+...+a_{n+1}^{n}}$

Started By Dung Du Duong, 23-11-2014 - 09:09

No replies to this topic

Sĩ quan

Cho $n+1(n\geqslant 2)$ số thực $a_{1},a_{2},...,a_{n+1}$ khác 0 thỏa mãn $a_{k}^{2}=a_{k-1}a_{k+1}$ với mọi k=2,3,...,n.

Tính $\frac{a_{1}^{n}+a_{2}^{n}+...+a_{n}^{n}}{a_{2}^{n}+a_{3}^{n}+...+a_{n+1}^{n}}$ theo $a_{1} và a_{n+1}$

Edited by Dung Du Duong, 23-11-2014 - 09:09.

0 members, 1 guests, 0 anonymous users

Community Forum Software by IP.Board
Licensed to: Diễn đàn Toán học