Perimeter of ΔABC = 3 units
Now,
DE=BC=unit
DF=AC=unit,
EF=AB=(Using mid-point theorem)
Therefor of perimeter ΔDEF
=3×=unit
PQ=DE=×=()2 unit
RQ=DF=()2unit,
PR=EF=()2unit
(Using mid-point theorem)
Therefore, perimeter of ΔPQR
=3×()2units
So, the perimeters of triangles formed are 3 units,
units,
Perimeters of the triangle are in GP with first term, a = 3 and common ratio
r=Therefore, sum of perimeters of all triangles