Inegalitate conditionata cu suma variabilelor egala cu trei

Moderators: Laurian Filip, Beniamin Bogosel, Filip Chindea

2 posts • Page 1 of 1

alex2008: Leibniz; Posts: 464; Joined: Sun Oct 19, 2008 3:23 pm; Location: Tulcea

Post by alex2008 » Thu Jun 11, 2009 4:49 pm

Fie \( a,b,c\ge 0 \) astfel incat \( a+b+c=3 \) . Sa se demonstreze ca :

\( \frac{1}{2ab^2+1}+\frac{1}{2bc^2+1}+\frac{1}{2ca^2+1}\ge 1 \)

. A snake that slithers on the ground can only dream of flying through the air.

Marius Mainea: Gauss; Posts: 1077; Joined: Mon May 26, 2008 2:12 pm; Location: Gaesti (Dambovita)

Post by Marius Mainea » Thu Jun 11, 2009 9:50 pm

Aducand la acelasi numitor inegalitatea este echivalenta cu

\( ab^2+bc^2+ca^2+1\ge 4a^2b^2c^2 \) care este adevarata din AM-GM.

Post Reply

2 posts • Page 1 of 1