Isn't that one of the fundamental assumptions of maths?
-
The court heard Darren Upton had written a letter to Judge Sally Cahill QC saying he wasn’t “a typical inmate of prison”.
But the judge said: “That simply demonstrates your arrogance continues. You are typical. Inmates of prison are people who are dishonest. You are a thoroughly dishonestly man motivated by your own selfish greed.” -
If x>0 and y>0
then 0<x and 0<y
Therefore x+y>0 and 0<x+y
Also 0+0<x and 0+0<y
Therefore x>0+0 and y>0+0
So x+y is also > 0+0
Got it?
Comment
-
Assume the opposite is true, i.e. there exist x and y such thatOriginally posted by BlasterBates
x > 0
y > 0
x+y <= 0.
then x+y-y <= 0-y
i.e. x <= -y
but y > 0 so -y < 0
therefore x < 0 which contradicts first premise.
Therefore the assumption is false, so there do not exist x any y such that
x > 0
y > 0
x+y <= 0.
Therefore x+y > 0.
PS just how many of us claimed to have a maths degree??God made men. Sam Colt made them equal.Comment
-
What do those little arrow things mean again?Comment
-
no no no
Given x>0 y> 0
then ....
tch
I'm alright JackComment
-
The exact proof depends on what axioms you assume for the "<" ordering. Say the proof will be different if you start with the axioms of an ordered group or an ordered field.Comment
-
at last. someone else who *knows*.Originally posted by boredLast edited by scotspine; 31 July 2007, 16:31.Comment
-
Ah yes, the axioms!!! I was going to say that!!Originally posted by bored
The pope is a tard.Comment
-
I assumed a strict total order, i.e. asymmetric and transitive. But it does indeed have to be at least a group. Surely though the proof for a strictly stronger space like a ring or a field would be just the same as for a group? Only the basic group properties are being used here. (note to the less technical: what I mean by that is that a proof relating to addition and subtraction is just the same whether you are able to do multiplication or not).Originally posted by boredLast edited by Euro-commuter; 31 July 2007, 20:26.God made men. Sam Colt made them equal.Comment
-
Assuming x and y are real numbers, it follows from the fact that the set of real numbers is an ordered fieldOriginally posted by BlasterBates
As someone else mentioned (I forget who), x > 0 implies x + y > y for any real y (not necessarily positive).
Also by the transitive property of a strict total order if z > y and y > t then z > t, where in particular you can take z = x + y and t = 0.Work in the public sector? Read the IR35 FAQ hereComment
Comment