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Re: plotting even function
From: |
Geraint Paul Bevan |
Subject: |
Re: plotting even function |
Date: |
Sun, 20 Mar 2005 21:45:43 +0000 |
User-agent: |
Mozilla Thunderbird 0.5 (X11/20040306) |
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address@hidden wrote:
> OK, if I understood correctly the very interesting discussion, in
> principle (a^b)^c==(a^c)^b (a is a real scalar) if, and only if
> b*c is a rational number.
This is not correct. Let b=pi (which is not rational) and the identity
will still hold true.
>From the laws of exponentiation, (a^b)^c is the same as a^(b*c).
Similarly (a^c)^b is the same as a^(c*b). As long as you are dealing
with real numbers rather than, say, matrices, multiplication is
commutative, i.e. b*c=c*b. Hence the identity holds for all real a, b
and c, rational or not.
> 592~> y=x.^(floor(1)/floor(3));
> 589~> plot(x,y) % I get the same plot, although floor(1) and
> floor(3) are integers.
I could be wrong, but I don't think that the floor() function is
necessary to get Octave to treat integers as such:
octave> format long
octave> 1.1
ans = 1.10000000000000
octave> 1.0
ans = 1
octave> floor(1)
ans = 1
Nevertheless, this could not work anyway. Although 1 and 3 would be
integers, the division would have to be performed before the
exponentiation and there is no way that 1/3 can be represented as an
integer, at least not without catastrophic loss of precision!
- --
Geraint Bevan
http://homepage.ntlworld.com/geraint.bevan
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Re: plotting even function, Henry F. Mollet, 2005/03/19
Re: plotting even function, Geraint Paul Bevan, 2005/03/19
Re: plotting even function, Thomas Shores, 2005/03/19
Re: plotting even function, Gunnar, 2005/03/22