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Old 10.18.2007, 03:18 PM   #1
SYRFox
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Take the function:

f(x) = (1/x)(x^3 - x^2)

So: f(x) = (x^3/x) - (x^2/x)
= x² - x.

We proved that: (1/x)(x^3 - x^2) = x² -x.

But if x= 0:

-> x² - x = 0² - 0 = 0
-> (1/x)(x^3 - x^2) = (1/0)(0^3 - 0^2) : this is impossible (division per zero).

So these two functions are the same, but they're not the same (O_O)

OMG OMG WTF?!?
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Old 10.18.2007, 04:07 PM   #2
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Quote:
Originally Posted by SYRFox
Take the function:

f(x) = (1/x)(x^3 - x^2)

So: f(x) = (x^3/x) - (x^2/x)
= x² - x.

We proved that: (1/x)(x^3 - x^2) = x² -x.

But if x= 0:

-> x² - x = 0² - 0 = 0
-> (1/x)(x^3 - x^2) = (1/0)(0^3 - 0^2) : this is impossible (division per zero).

So these two functions are the same, but they're not the same (O_O)

OMG OMG WTF?!?

If f(x) = x² - x
= f(x) = 0² - 0
then the division is the same. But 0² = 0.
You're dividing 0 by 0. Not possible unless 0 = x

OMG OMG WTF?!?
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Old 10.18.2007, 04:13 PM   #3
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Quote:
Originally Posted by SYRFox
Take the function:

f(x) = (1/x)(x^3 - x^2)

So: f(x) = (x^3/x) - (x^2/x)
= x² - x.

We proved that: (1/x)(x^3 - x^2) = x² -x.

But if x= 0:

-> x² - x = 0² - 0 = 0
-> (1/x)(x^3 - x^2) = (1/0)(0^3 - 0^2) : this is impossible (division per zero).

So these two functions are the same, but they're not the same (O_O)

OMG OMG WTF?!?

a pole at x=0
what's so strange about that?

edit: Just realized that it isn't a pole.
Anyways, it's late
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Old 10.18.2007, 04:15 PM   #4
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tit, you dividing by 0, what's new?

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the moral: do not solve math equations while stoned.

wow, man, did you see that? it's like... like... wow...
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Old 10.18.2007, 04:19 PM   #5
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ps-

youre doing [x^3 - x^2]/x, if x= 0 then it's 0/0

Quote:
The expression 0/0 is an "indeterminate form". That does not simply mean that it is undefined; rather, it means that the limit of f(x)/g(x) is determined by the particular functions f and g as they both approach 0. As x approaches some number, the limit may approach any finite number, 0, ∞, or −∞, depending on the specific behavior of the functions. See l'Hôpital's rule.

you stated it was IMPOSSIBLE, which was wrong, hence the logical loophole.
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Old 10.18.2007, 04:48 PM   #6
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Please, can you stop speaking chinese, I don't understand...
Logical ? What does it mean ?
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Old 10.18.2007, 05:26 PM   #7
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what he is struggling with is 1/0, not 0/0. meaning that they are not equal because y is undefined when x=0. can the first one even be considered a parabola since it has the break in it?
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Old 10.18.2007, 06:16 PM   #8
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Quote:
Originally Posted by golden child
what he is struggling with is 1/0,

yeah but in the case of x=0 that formula amounts to 0/0. he's ignoring the value of the numerator, sez eye.
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Old 10.18.2007, 06:18 PM   #9
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??????????????????????????????????????????:confuse d:
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Old 10.18.2007, 08:11 PM   #10
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What !@#$%! said.
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Old 10.18.2007, 09:19 PM   #11
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Should be able to make sense out of that? Cause I can't
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Old 10.18.2007, 09:23 PM   #12
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Quote:
Originally Posted by HECKLER SPRAY
Please, can you stop speaking chinese, I don't understand...
Logical ? What does it mean ?

sorry for my bad english, what i meant was that his logic was short-circuiting. yes? he was reaching a self-contradictory conclusion. but it is because his premises were wrong.
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Old 10.18.2007, 09:55 PM   #13
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Basically, he created a self-contradictory loop, which feeds back onto itself, thereby creating an infinite paradox, which if questioned begins to melt down the logic circuits of the brain...
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Old 10.18.2007, 10:03 PM   #14
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Quote:
Originally Posted by alyasa
Basically, he created a self-contradictory loop, which feeds back onto itself, thereby creating an infinite paradox, which if questioned begins to melt down the logic circuits of the brain...

^^ what he said. 2 thumbs up.
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Old 10.19.2007, 11:24 AM   #15
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The function is undefined at x=0. I forget what those are called, but they always have to be looked out for when you do this kind of thing.
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Old 10.19.2007, 11:56 AM   #16
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I think you might have to factor in limits in this equation. I think it's not so much undefined, but the proper term is indeterminate, I believe. If you factor in limits in the above equation and let the limits of x approach zero, then you effectively illustrate that the equation is unsolvable algebraically, thereby removing the conundrum that has been put in place by attempting to solve the equation further.

"...To avoid this little inconsistency the epsilon-delta limit device is used to establish that the LIMIT of the ratio dy/dx is 2ax + b as dx APPROACHES zero."
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Old 10.20.2007, 02:48 AM   #17
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this function never crosses the y axis because when x=0 y is undefined, the reduced version is a full parabola so to speak that actually crosses the y axis at (0,0)

Quote:
yeah but in the case of x=0 that formula amounts to 0/0. he's ignoring the value of the numerator, sez eye.

Quote:
(1/0)(0^3 - 0^2)
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Old 10.20.2007, 03:06 AM   #18
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I think you forgot to carry the 1.
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Old 10.20.2007, 03:28 AM   #19
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