If we take any triangle ABC, and select a point P inside the triangle and draw lines AP, BP, and CP extended to their intersections with the opposite sides in points D, E, and F respectively, we get a construction like the one below.
Now we want to explore the connection between the semians FB, DC, and EA; and AF, BD, and, EC.
We can see that even when we move P, the result is the same FB*DC*EA=AF*CE*BD.
If we want to prove the above conjecture, we begin by constructing a line parallel to BC through the point A, and then extend the lines AC and AB so they intersect our new line through A. Label the points of intersections H and I.
Now since we have parallel lines and intersecting lines we can conclude that the following triangles are similar.
since triangles BPD and IPA are similar. 
since
triangles HAP and CDP are similar.
since triangles AEI and CEB are similar. 
since
triangles HFA and FCB are similar.
so 
so when we plug in AP from above, we get 
so 
, so when we plug this into our
equation above we get 
so 
and we can put this into our equation,
and get 
.
We can also see a relationship between the triangle ABC and the new triangle formed by D, E, and F.
