$\begin{cases}x^4+y^2=\frac{697}8 \\ x^2+y^2+xy-3x-4y+4=0 \end{cases}$
pt2 xết denta coi x là ẩn ta có
$ x^2+x(y-3)+y^2-4y+4=0$
$\Delta= (y-3)^2-4(y^2-4y+4)\geq 0$
=> $7/3\geq y\geq1$
coi y là ẩn$ 0\leq x\leq4/3$
$x^4+y^2\leq f((4/3)^4)+f((7/3))^2$=697/81 thay (4/3,7/3) vào pt 2 ta thấy ko thỏa mãn nên pt vô nghiệm :))) lỗi sự cố tí hêhhe
à cái nay là lỗi máy tính :)) –  Wade 06-01-15 07:04 PM
nếu sữa lại đề thì phãi xét thêm (4/3 ; 7/3 ) ko phãi là nghiệm cũa pt nữa –  ladykiller 06-01-15 04:20 PM
troll ak mi . 697/81 > 698/81 ak hay sao mày làm kiễu này –  ladykiller 06-01-15 04:17 PM
cái nay là nhìn nhầm hóa ra đúng hhaaaa –  Wade 05-01-15 11:28 PM
sô 1 nào e –  Wade 05-01-15 11:27 PM
chết đề thiếu số 1, 698/81mới đúng :v dù sao vẫn ra đc –  ๖ۣۜPXM๖ۣۜMinh4212♓ 05-01-15 11:21 PM

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