cho E:$\frac{x^{2}}{8}+\frac{y^{2}}{2}$=1va duong thang d:3x+4y+24=0
tim M tren E sao cho khoang kach tu M den d min
Goi $M(a,b) $  thuoc (E) khi do ta co 

                             $a^{2}+4b^{2}=8$  

 Theo BDT Bunhia co 

                           $(3a+4b)^{2}\leq (3^{2}+2^{2})(a^{2}+(2b)^{2})=104$

                           $<=>-2\sqrt{26}\leq 3a+4b\leq 2\sqrt{26}$ 

                            $<=>-2\sqrt{26}+24\leq 3a+4b+24\leq 2\sqrt{26}+24$  

                           $<=>-2\sqrt{26}+24\leq \left| {3a+4b+24} \right|\leq 2\sqrt{26}+24$  

                           $<=>\frac{-2\sqrt{26}+24}{5}\leq \frac{\left| {3a+4b+24} \right|}{5}\leq \frac{2\sqrt{26}+24}{5}$  
                      
                          $<=>\frac{-2\sqrt{26}+24}{5}\leq d(M;d)\leq \frac{2\sqrt{26}+24}{5}$

Vay $d(M;d)min=\frac{-2\sqrt{26}+24}{5}$

Tim  M.....

Can phai xem d co cat E ko roi ms lam tiep nhu vay nhe!! –  thiensugacoi_95 01-06-13 12:12 PM

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