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Sorry if that title confused you its kinda hard for me to ask this without explaining it. I am writing a (fairly) simple program to find the roots of a quartic (biquadratic) function. My main question (I should know this >.>) is how do i get x in the quartic function (ax^4 * bx^3 * cx^2 * dx * e = 0) to stay as x and not be given a value. just sorta a place holder. this is part of it: ( b1 * x * c1 / 2 ); so i dont want x to be replaced. i just want it to stay as x and everything else around it multiply as you normaly would when solving the problem by hand.

My second question is from this site:

http://easycalculation.com/algebra/learn-quartic-equation.php

We haven't covered Quartics in school yet but We have covered cubics and quadratics so I know enough that i can follow a long for the most part except for right after it talks about the discriminant.

y2=(- term1 + r13*cos(q3+(2∏)/3) )

y3=(- term1 + r13*cos(q3+(4∏)/3) )

i dont get the parts with 2∏ and 4∏. If you know a simple way to explain it, please do :D if not i can always look it up and try to figure it out from there.

And my last question. I know how with the discriminant of quadratics depending on what it is depends on one root, no roots, or two roots. How does that apply with quartics and what should i do to check for that in my code (if you think i cant figure it out lol).

ummm i believe thats it. i can add info if needed. I dont think my code would be needed but i would prefer not to post it either way.

Thanks for the help. -Ryan

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closed as off topic by Oliver Charlesworth, Hovercraft Full Of Eels, David Z, GregS, Andrew Barber Jan 3 '12 at 19:19

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Perhaps you'll want to use a programming language or system that was built specifically for this functionality -- to manipulate equations and solve them algebraically -- such as Mathematica, Maple or Matlab/Octave. e.g., computer algebra systems –  Hovercraft Full Of Eels Jan 2 '12 at 22:18
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Most of this sounds like a pure-maths question, not a programming question... –  Oliver Charlesworth Jan 2 '12 at 22:19
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What do you mean as a placeholder? Are you trying to find the answer to an equation or are you trying to represent the equation as it is being "worked out"? Your variable for x represents x. If you times x by itself (x *= x) it's equivalent to x^2. Alternatively look at the Math.Pow function. –  Deco Jan 2 '12 at 23:59
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ascii value? What the heck? No, it would not. –  Hovercraft Full Of Eels Jan 3 '12 at 0:44
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As @HovercraftFullOfEels said, no it would not. I think you have a fundamental misunderstanding of how programming works. What made you decide to use Java to start with? There are entire programming languages and systems built for what it seems you want. –  Deco Jan 3 '12 at 0:55

2 Answers 2

The approach cited relies on a trigonometric identity described here used to solve cubic equations. The symbol is a capital π, or Math.PI in Java.

See also this example that uses org.jscience.mathematics.function.Polynomial and references a convenient root-finding algorithm.

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Although not completely general, certain JScience constructs such as Polynomial admit limited symbolic manipulation (e.g. arithmetic, evaluation, differentiation, integration) using Variable and Term. –  trashgod Jan 3 '12 at 21:15

The approach that you are looking for is called Symbolic Programming.

I do not, however, know of any stable Java libraries which allow for such programming.

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