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adviolin · 2007 April 6th, 11:07 PM

Kostya, you're missing the fact that the function is defined for all real numbers, so your example doesn't apply. Since it's defined for all numbers, it's defined on [0,1], thus f([0,1]) is compact, and thus bounded. Since f((0,1)) is a subset of this bounded set, it is bounded as well.

2007 April 6th, 11:07 PM	#6 (permalink)
adviolin I JUST got here. Join Date: Apr 2007 Posts: 4	Kostya, you're missing the fact that the function is defined for all real numbers, so your example doesn't apply. Since it's defined for all numbers, it's defined on [0,1], thus f([0,1]) is compact, and thus bounded. Since f((0,1)) is a subset of this bounded set, it is bounded as well.