Câu hỏi này được treo giải thưởng trị giá +2000 vỏ sò bởi armcortexa100@gmail.com, đã hết hạn vào lúc 04-04-16 10:22 PM

a) $\Delta'=m^2+3m+3=(m+\frac{3}{2})^2+\frac{3}{4}>0$
b) Theo Vi-et có: $\begin{cases}x_1+x_2=2(m+2) \\ x_1.x_2=m+1 \end{cases}$
<=> $\begin{cases}x_1+x_2=2m+4 \\ 2x_1.x_2=2m+2 \end{cases}$
=> $x_1+x_2-2x_1x_2=2$
đúng click V giùm –  @_@ *Mèo9119* @_@ 03-04-16 10:27 PM
a) Ta có: $\Delta '=(-m-2)^2-1.(m+1)=m^2+3m+3>0$ với mọi m
=> ĐPCM
b) Theo hệ thức Vi-ét ta có: \begin{cases}x1+x2=2(m+2) \\ x1.x2=m+1 \end{cases}
=> $x1+x2-2.x1.x2=2$
Kết luận...
Có gì thắc mắc bảo mình nha, đúng thì tích giùm mình nha, hihi!!!

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