Revision as of 20:44, 1 April 2009 by Narupley (Talk | contribs)

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I got (1 - 2x) as the multiplicitave inverse, since that multiplied by (2x + 1) is 1. ... which i guess is the same as the original function. --Jcromer 20:50, 1 April 2009 (UTC)


The unity of $ \scriptstyle Z_4[x] $ is 1, so we're looking for some polynomial $ \scriptstyle g(x) $ such that $ \scriptstyle(2x+1)\cdot g(x)\ =\ 1 $. So, just divide 1 by $ \scriptstyle(2x+1) $ modulo 4:

    $ \scriptstyle1+2x $

$ \scriptstyle1+2x)\overline{1+0x+0x^2} $

   $ \scriptstyle-\underline{1+2x} $
      $ \scriptstyle2x+0x^2 $
     $ \scriptstyle-\underline{2x+0x^2} $
         $ \scriptstyle0 $

From this it's clear that $ \scriptstyle1\ =\ (2x+1)\cdot(2x+1) $, so the multiplicative inverse of $ \scriptstyle(2x+1) $ is itself.

--Nick Rupley 01:44, 2 April 2009 (UTC)

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