Any ideas on the problem below?

2 ANSWERS

1. 
   

   Let g(s) = f(s) - f(s + 1/2), s in [0, 1/2]. Then, g is continuous (because so is f) and g(0) = f(0) - f(1/2) and g(1/2) = f(1/2)  - f(1) =  f(1/2)  - f(0) = - g(0).
   
   If g(0) =0, then f(0) = f(1/2), so that x =0 satisfies the desired condition. Otherwise, g(0) and g(1/2) have opposite signs. Since g is continuous, there is an x in (0, 1/2) such that  g (x) = f(x) - f(x + 1/2) = 0 →  f(x) = f(x + 1/2), as desired.
   
   Hence, there's x ∈ [0, 1/2] with f(x) = f(x + 1/2).

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2. 
   

   It seems some info is not given. The fuction should be symmetric about x = 1/2, then only it is possible. Only continuity and f(0) = f(1)doesnot suffice.

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