%@Auteur:Véronique Glaçon.\par Après avoir découpés les dominos ci-dessous, place les pour former un parcours rectangulaire en respectant la règle suivante : {\em deux côtés qui sont adjacents doivent être égaux}. \hspace{0.5cm} \renewcommand\arraystretch{2.5} \begin{table}[h!] \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$x^2-10x+25$ \\ \hspace{1cm}} & \centering{$x(x+5)-4x$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \hfill \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$(1-2x)(2x+3)$ \\ \hspace{1cm}} & \centering{$15x-9$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \end{table} %\begin{table}[h!] \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$(x+3)(x+5)$ \\ \hspace{1cm}} & \centering{$x^2+3x$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \hfill \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$x(x+3)$} & \centering{$(1-2x)(5x-2)-(1-2x)(3x-5)$} \tabularnewline \hline \end{tabular} \end{minipage} %\end{table} \begin{table}[h!] \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|c} \hline \centering{ $x(x-1)$\\ \hspace{1cm}} & \centering{$x(x+1)$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \hfill \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$(1-2x)(8x-3)$ \\ \hspace{1cm}} & \centering{$x^2-x$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \end{table} %\begin{table}[h!] \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$3(5x-3)$ \\ \hspace{1cm}} & \centering{$(x-5)^2$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \hfill \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$4x(2x+7)$ \\ \hspace{1cm}} & \centering{$x^2+8x+15$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} %\end{table} \begin{table}[h!] \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$(5-3x)(6-2x)$ \\ \hspace{1cm}} & \centering{$8x^2+14x$ \\ \hspace{1cm}} \tabularnewline \hline \end{tabular} \end{minipage} \hfill \begin{minipage}[t]{.5\linewidth} \begin{tabular}{|p{3.5cm}|p{3.5cm}|} \hline \centering{$6x^2-28x+30$} & \centering{$(1-2x)(5x+2)+(1-2x)(3x-5)$} \tabularnewline \hline \end{tabular} \end{minipage} \end{table}