[ osnovka @ 23.09.2007. 12:30 ] @
| meni je ovaj zadatak jako vazan, a verujem da je vama jako lagan, pa vas molim da mi pomognete!!! _____ √(x-1)2 + |x + 1| =2 (ovo x-1 je pod korenom i na kvadrat) hvala unapred! |
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[ osnovka @ 23.09.2007. 12:30 ] @
[ Mozak @ 23.09.2007. 13:10 ] @
_____ √(x-1)2 + |x + 1| =2,x E R <=> |x-1|+|x+1|=2 ^ x E R a znamo da je |y|= -y,y<0 +y,y>=0 podelimo oblast (x E R) na 3 oblasti: <=> ((x>=1) ^ |x-1|+|x+1|=2) U <=> (x>=1) ^ +(x-1)+(x+1)=2 <=> (x>=1) ^ 2x=2 <=> x=1 ((-1<=x<1) ^ |x-1|+|x+1|=2) U <=> (-1<=x<1) ^ -(x-1)+(x+1)=2 <=> (-1<=x<1) ^ 2=2 <=> -1<=x<1 ((x<-1) ^ |x-1|+|x+1|=2) <=> (x<-1) ^ -(x-1)-(x+1)=2 <=> (x<-1) ^ -2x=2 <=> x<-1 ^ x=-1 <=> prazan skup <=> (x=1)U(-1<=x<1)U(prazan skup)=(-1<=x<=1)<=>(|x|<=1) <=> x E [-1,+1] Copyright (C) 2001-2025 by www.elitesecurity.org. All rights reserved.
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