设方框为x,三角形为y,五角星为z,圆行为a。得(100x+10y+z)+(100x+10a+x)=100y+10x+x=201x+10y+10a+z取100y+10x+x=201x+10y+10a+z,再减,得90y=190x+10a+z当y+a<10,z+x<10时,得100x+100x=100y,2x=y。y+a=x,z+x=x,得z=0。……(省掉一大半)y+a<10,z+x<10不成立!
