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Title: f(x +2f(y)) = f(x) + f(y) + y Post by THUDandBLUNDER on Dec 20th, 2004, 10:39am Find all functions f: [bbr] [mapsto] [bbr] such that f(x +2f(y)) = f(x) + f(y) + y |
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Title: Re: f(x +2f(y)) = f(x) + f(y) + y Post by John_Gaughan on Dec 20th, 2004, 2:01pm I found one: [hide]f(x) = x[/hide] :) |
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Title: Re: f(x +2f(y)) = f(x) + f(y) + y Post by BNC on Dec 20th, 2004, 2:58pm Not sure if it's enough for proof, but:: [hide] if x=y, we get f(x +2f(x)) = f(x) + f(x) + x = x + 2f(x) z=x+2f(x) f(z) = z [/hide] |
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Title: Re: f(x +2f(y)) = f(x) + f(y) + y Post by Icarus on Dec 20th, 2004, 5:07pm It is not sufficient for a proof. There is at least (and probably at most, though I haven't proved it yet) one other solution: [hide]f(x) = -x/2[/hide]. |
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Title: Re: f(x +2f(y)) = f(x) + f(y) + y Post by BNC on Dec 20th, 2004, 10:33pm FWIW, it's easy to prove that if f(x)=0, it must happen only at x=0. |
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Title: Re: f(x +2f(y)) = f(x) + f(y) + y Post by Eigenray on Dec 21st, 2004, 12:28am It's also easy to show injectivity, and that for any r in the image of f (which is unbounded), f(x+2r)+f(x-2r) = 2f(x), which hints at linearity. |
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