In effort to solve ax^5+bx+c=0
Jon
ax^5+bx+c=0
however a flaw in my answer occurs when a = -b
other than that, the evolution of the solution is at my web page,
http://jons-math.bravehost.com/pentic.html
I haven't tested it out.
Sam Wormley
Jon
X=(x,x^2,x^3,...,x^n)
N*X+a[0]=0 polynomial
a[1]x[1]+a[2]x[2]+a[3]x[3]+...+a[n]x[n]+a[0]=0
plane
construct an orthogonal basis from N,
j[1]=N/|N|
j[2]=(-a[0]/a[n])i[n]-(-a[0]/|N|^2)N
j[3]=...
j[4]=...
.
.
j[n]=
j[2],j[3],j[4],...,j[n] all lie on the plane and are
mutually orthogonal.
Permutate the couples of j[i] with j[1], project X onto
the resulting planes and solve as with,
http://jons-math.bravehost.com/pentic.html
.
"Jon" <jon...@peoplepc.com> wrote in message
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Frederick Williams
There's no need to.
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Peter Hill
<frederick...@tesco.net> wrote:
>Jon wrote:
>>
>> This is in effort to solve,
>>
>> ax^5+bx+c=0
>>
>> however a flaw in my answer occurs when a = -b
>>
>> other than that, the evolution of the solution is at my web page,
>> http://jons-math.bravehost.com/pentic.html
>>
>> I haven't tested it out.
>
>There's no need to.
http://en.wikipedia.org/wiki/Bairstow%27s_method
http://home.att.net/~srschmitt/zenosamples/zs_linbairstow.html
newsserver only allows 4 x-post so japan.sci.math removed.
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Peter Hill
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