Chứng minh rằng; $d:y=x+m$ luôn cắt $(C):\frac{1-x}{2x-1}$tại A, B phân biệt. Gọi $k_{1},k_{2}$ là hệ số góc tiếp tuyến tại A,B. Tìm giá trị lớn nhất của $k_{1}+k_{2}$.
 Xét phương trình hoành độ :
         $\frac{-x+1}{2x-1}=x+m$
        $\Leftrightarrow (2x-1).(x+m)=-x+1$
       $\Leftrightarrow 2x^{2}+2mx-(m+1)=0 $ (*)
   Có : $\Delta '_{(*)}=m^{2}+2m+2 >0$ $\forall m$
  $\Rightarrow y=x+m $ luôn cắt (C) tại 2 điểm phân biệt 
 Gọi $A_{(x_{1};y_{1})},B_{(x_{2};y_{2})}$
  $y'=\frac{-1}{(2x-1)^{2}}$ nên $k_{1}=\frac{-1}{(2x_{1}-1)^{2}}; k_{2}=\frac{-1}{(2x_{2}-1)^{2}}$
  Theo Vi-et : $\left\{ \begin{array}{l} x_{1}+x_{2}=-m\\ x_{1}.x_{2}=-\frac{m+1}{2} \end{array} \right.$
 Vậy nên : $k_{1}+k_{2}=\frac{-1}{(2x_{1}-1)^{2}}-\frac{1}{(2x_{2}-1)^{2}}$
   ( Quy đồng thay Vi-et vào ......) ta được :
    $k_{1}+k_{2}=-4m^{2}-8m-6$
                         $=-[(2m+2)^{2}+2]\leq -2$
 Dấu "=" xảy ra $\Leftrightarrow m=-1$
 Vậy $m=-1$ thì $k_{1}+k_{2}$ max

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