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ac{c}{d}}-x=d_{2}}{\dispystyle{\frac{c}{d}}-x=d_{2}} 如果有正整数m,k满足:{\dispystyle{\frac{kd}{mb}}={\frac{d_{1}}{d_{2}}}}{\dispystyle{\frac{kd}{mb}}={\frac{d_{1}}{d_{2}}}} 那麽就有:{\dispystylex={\frac{ma kc}{mb kd}}}{\dispystylex={\frac{ma kc}{mb kd}}} 证明如下:由条件可得 {\dispystyle{\begin{aligned}bd_{1}&=bx-a\\dd_{2}&=c-dx\end{aligned}}}{\dispystyle{\begin{aligned}bd_{1}&=bx-a\\dd_{2}&=c-dx\end{aligned}}} 而根据{\dispystyle{\frac{kd}{mb}}={\frac{d_{1}}{d_{2}}}}{\dispystyle{\frac{kd}{mb}}={\frac{d_{1}}{d_{2}}}}又有 {\dispystylembd_{1}=kdd_{2}} 代入上面的两个关系式可得: {\dispystylembx-a=kc-dx} 2<