Thank you for your reply, but I cannot get my head around this problem. I am confused about length contraction and time dilation. Does F' know, that time for F runs slow ? Or does F know that he will actually cover some shorter distance, than the 'actual' (I suppose actual distance means the length of F' as measured in its(F''s) stationary frame.
Because when I try to approach this problem by using time dilation argument here is what figure out:
Assume in the frame where F' is stationary, it takes the electrical signal 10 time increments to reach the back of F' and launch the rocket. Now, since F cannot travel faster than light, there is no way (as viewed from stationary F') that he can move past the whole length of F'. So the only option for the ship F to avoid being hit, is to 'have a slow running clock'. Assume that only 5 time increments have passed for F. That F's front will not reach F''s rear (he could be as close as you like, but will never ever reach it in time).
As viewed from F's frame (sorry about the '''s should have just taken A and B...), the signal will seem to reach the rear of F' faster than the speed of light, but again, assuming we know about time dilation, the 10 time increments in F''s frame will become 20 time increments, enough time for F to escape being hit.
So maybe this is correct (assuming we know about time dilation) ?
But what about explaining this in terms of length contraction ? How do I 'convert' time dilation into length contraction ? I mean, I always remember the standard text-book example about muon, and it always states, that the in muon's rest frame, the distance between atmosphere and the Earth is contracted (because the Earth is moving towards the muon), so he will need less time to cover that distance than expected by an observer on the ground (or should I say, for the Earth to cover the distance ?) I could not find an analogy here, since I do not really understand what contracts here. F' ? Then, forgetting about time dilation, the signal would reach the rear even faster and would hit F...
EDIT
OK, so I have done some reading and found that ''effect due to dilation in one frame may instead be attributed to length contraction as measured in another frame''. So there is 'symmetry' of the two... Now I just need to figure this out for the two spaceship example above...