Is the Cubic Formula Solvable?

In summary, The cubic formula was a major breakthrough in mathematics, proving that ancient mathematicians had not already discovered all there was to know. It also demonstrated the importance of negative and imaginary numbers in solving equations. Later, Galois showed that the solutions of some equations of degree 5 could not be expressed in terms of solution formulas involving only roots and other arithmetic operations. The cubic formula was published by Cardano in 1545.
  • #1
ATCG
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For all of those curious mathematicians out there, this one is for you. Click the link below to be redirected to a page with the cubic formula on it. I'm sure that this equation will provide you with a challenge!
(If you get the equation solve 4x^3+2x^2+5x-2)

Cubic Formula
 
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  • #2
For those who enjoy math history...

The cubic formula was one of the most important discoveries in mathematics... not so much for what it was able to solve, but for the way it influenced attitudes.

First off, it was something the ancient mathematicians had not been able to do. This was a terrific ego boost to mathematicians of this era when they finally realized they weren't just struggling to understand and rediscover what the ancients already knew, but they really and truly were developing new mathematics!

Secondly, the use of negative and imaginary numbers are essential to the solution. I don't mean they are just used in the cubic formula; I mean that there are positive real numbers that absolutely require you to take a brief trip through negative and complex numbers in order to write them down exactly in terms of +, -, *, /, and roots. Until this time, while negative and complex numbers were known, many mathematicians thought of them as artificial constructs and avoided use whenever possible, but after the ramifications of the cubic formula sunk in, it was realized that it was important to study and understand negative and complex numbers.
 
  • #3
Very well said, Hurkyl, an important point.
 
  • #4
if we are disscusing about polynomials can someone give me the proof of abel about the 5th ploynomial formula (the proof which it doesn't exist)?

thanks.
 
  • #5
The proof is not an easy one; the one I know requires developing a fair amount of Galois theory...
 
  • #6
the idea is to notice that solving an equation involves constructing new numbers, i.e. enlarging our number system in stages. for example solving x^2 = 2, when you previously knew only about rational numbers, involves adding in the number sqrt(2), this gives a larger number system consisting of all numbers of form a + bsqrt(2) where a and b are rational. note this system is analogous to a 2 dimensional vector space with basis 1 and sqrt(2).

then the key idea is to observe that this number system has a certain symmetry that the rationals do not. I.e. you can interchange a+bsqrt(2) with a-bsqrt(2) and the structure is essentially preserved as before. i.e. sums go to sums and products go to products.

this is the only non trivial symmetry of this number system.

to solve a more complicated equation like the cubic x^3 = 2, one must throw in a cube root, a number like cubert(2), obtaining a number system consisting of numbers of form a+ b.cubert(2) + c.cubert(9). Notice this system is analogous to a 3 dimensiopnal vector space.

this new system has more symmetries than does the previous one.

Galois showed that every time you adjoin a root of a previously known number, then the symmetries of the new system can be described in a predictable way. the point is that symmetries can be composed to form a sort of multiplication. the key property is the commutativity of the composition, or "multiplication", in the family of symmetries.

Now one can also study the structure of the symmetries of any new system of numbers whether they arise from adding in roots or not, i.e. whether or not they arise from adding in the kinds of numbers that occur in solution formulas for equations.

the question was whether the set of solutions of some equations of degree 5 might not actually be expressible in terms of solution formulas involving only roots.

indeed he showed that the solutions of a general equation of degree 5 formed a number system whose symmetries were essentially non commutaive, hence could not have occurred from any ordinary solution formulas invoilving only radicals, i.e. from adding in successively just the roots of formerly known numbers.

it follws that a general polynomial of mdegree 5 has solutions which cannot be obtained from the complex numbers by adding in successively the roots of previously obtained numbers.

i.e. they cannot be expressed in terms of solution formulas of the usual form, involving roots and radicals and other arithmetic operations.

an example of such a polynomial is X^5 - 80X + 2.

the geometric realization of the symmetries of this equation is essentially set of the rotational symmetries of the icosahedron. the numerical properties of the edges, faces, and vertices, of an icosahedron imply that the set of symmetries is not composed of any smaller collections of simpler symmetries.

by the way, the cubic formula for the polynomial x^3+px+q =0, was published by Cardano in 1545, as follows.
x = (1/3)[{(-27q/2)+(3/2)(-3D)^1/2}^1/3 - 3p/{(-27q/2) + (3/2)(-3D)^1/2}^1/3].

where D = (x1- x2)^2(x1-x3)^2(x2-x3)^2 = -4p^3-27q^2, and we have fixed the square root (-3D)^1/2. Then vary the cube root to get all three solutions.

For example, in the equation x^3-1 = 0, p = 0, q = -1, D = -27, so we get x = (1/3){27/2 + 27/2}^1/3 = {1/2 + 1/2}1/3 = 1^1/3 = 1, as hoped.

Indeed, for x^3-a = 0, we have p = 0, q = -a, D = -27a^2, and hence
x = (1/3){27a/2 + (3/2)(81a2)1/2}^1/3 = (1/3){27a}^1/3 = a^1/3.

For x^3 - 4x = 0, we get p = -4, q = 0, D = 256, and so

x = (1/3) [{(3/2)(-768)1/2}^1/3 + 12/{(3/2)(-768)^1/2}^1/3]

= (1/3) [ {(-27)(64)}^1/6 + 12/{(-27)(64)}^1/6 ]

= (1/3) [ 2¯3 i1/3 + 12/{2¯3 i1/3} ] = (2/¯3 )( i1/3 + i-1/3)

= (4/¯3 )Re(i1/3). Varying the cube roots gives (4/¯3 )(cos(<pi>/6)) = (4/¯3 )(¯3 /2) = 2, (4/¯3 )(cos(5<pi>/6)) = (4/¯3 )(-¯3 /2) = -2, and (4/¯3 )(cos(9<pi>/6)) = (4/¯3 )(0) = 0.
Of course, factoring x^3-4x = x(x-2)(x+2) = 0 confirms these answers.
(Notice a point which fascinated earlier workers, who were not entirely happy with "imaginary" numbers: the solution formula involves imaginaries even though the final answer it gives is real! As mentioned above it can be proved that this cannot be avoided.)
 
  • #7
"indeed he showed that the solutions of a general equation of degree 5 formed a number system whose symmetries were essentially non commutaive, hence could not have occurred from any ordinary solution formulas invoilving only radicals, i.e. from adding in successively just the roots of formerly known numbers."

commutativity is not important, though explaining what is might be the reason why you slipped in this white lie.


"the geometric realization of the symmetries of this equation is essentially set of the rotational symmetries of the icosahedron. the numerical properties of the edges, faces, and vertices, of an icosahedron imply that the set of symmetries is not composed of any smaller collections of simpler symmetries."

not sure i can agree with that: the set of symmetries is generated by the set of strictly smaller subgroups of order 3, but again this might be one of those white lies to hide the reader from the full ideas of normality and solvability.
 
  • #8
Well, "solvability" means there is an abelian normal tower for the given group, i.e. a tower of commutative subgroups, each normal in the next, and stretching from {1} to G. That is what I meant by the key role played by commutativity. I.e. a group is solvable if the "simple constituents" of the group are all commutative.

As to the next item, I used the word "composed" very loosely, to mean there is no normal subgroup of A5. It was poorly said though. Thanks
 
  • #9
In a little more detail, we may try to understand a group G in terms of another smaller or simpler group H by finding a surjective homomorphism from G onto H.

If there exists such a homomorphism G-->H with kernel K, i.e. such that K consists of those elements which go to zero in H, then we may say in some sense that G is composed of K and H, combined in some way.

(Actually I do not know how to make the way G is obtained from K and H any more precise, except in the case where there is also some subgroup H' of G which actually maps isomorphically onto H by this map. In that case G is the "semi direct product" of K and H.)

For example, we can let the group G of rotations of a cube centered at the origin, act on the three mutually perpendicular axes through its center, by permuting them. Then the group G of 24 rotations, is represented in this way on the permutation group H of order 6 of the three axes, with kernel of order 4.

A "simple" group is a group (other than {0}) that cannot be broken down in this way, i.e. such that every homomorphism of G onto any other group H is either an isomorphism, or is identically zero.

All (finite) groups G may be thought of as "composed" of simple groups in the following sense.

Find a simple group H1 and a homomorphism of G onto H1, with kernel K1.

Put H1 aside as one of the simple constituents of G, and focus now on K1.

In the same way find another simple group H2 and a homomorphism of K1 onto H2, with kernel K2.

Set H2 aside as a second simple constituent of H, and focus on K2.

etc...


In this way one obtains a finite set of simple constituents of G, which are actually unique, i.e. independent of the choices made in finding them.

E.g. the group of 24 rotations of a cube breaks down in this way to three copies of the cyclic group of order 2 and one copy of the cyclic group of order 3, all commutative.

Then what was said above about solving polynomials, more precisely was that a polynomial with rational coefficients, has a classical solution formula, if and only if the simple constituents of its Galois group are all commutative.

In the case of the general polynomial of degree 5, the Galois group has two simple constituents, namely the cyclic group of order 2, and the rotation group of the icosahedron which is not commutative, so the polynomial is not solvable.

The "reason" solution formulas, were always found in lower degrees than 5, from this point of view is that the group of the icosahedron is the first (i.e. smallest) non commutative simple group.

In this sense, I guess to me commutativity is the essential point underlying the theory, but I confess that was not at all clear from my failure to make precise my use of the words "composed of".

Matt's following post is quite right in correcting an error I made in my previous post. This time I think I got it right, eh Matt?
 
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  • #10
For a group to be solvable/soluble it is not the subgroups that must be abelian but the quotients by the (normal) subgroups that need to be abelian (error in post 8). (Counter) Example

1 < V < A_4 <S_4

where V is the vier gruppe.

zero being the identity implies your are talking about (additively written) abelian groups when you need not be.

The composition factors are only unique up to reordering (eg, C_6 has two towers with distinct terms whose quotients are abelian and simple)
 
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  • #11
Well we are getting a little picky here but it is usually understood that the word "set" as opposed to the word "sequence" means order is ignored.
 
  • #12
Yep, realized that after I posted, was about to remove that one, but instead I'll post an apology.
 
  • #13
I think I owe you one Matt. Doesn't the word "set" also ignore repetitions? I need those, but not ordering.

So what is the right word for an unordered set with repetitions?

Just what you said I guess. Thanks again!
 
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  • #14
Depends how fancy you want to get, I suppose. I can't think of a way of saying it that fits in with the style of the rest of your article. Something like the sets are equal and each factor occurs the same number of times in each construction?
 
  • #15
So it should be an element of the direct sum of the non negative integers, indexed by the collection of all simple groups! (i.e. an assignment of a non negative integer to each simple group, with most assignments being zero?)

maybe a little over the edge from my usual sloppy style of writing.
 
  • #16
it need only be indexed by the set of prime numbers, after all most simple groups are not soluble.
 
  • #17
Say Matt, am I working too hard, to try to incorporate the repetitions? For the solvability criterion, wouldn't it just be enough to say a group is solvable if no non abelian simple group appears as a simple contituent? No matter how many times?
 
  • #18
That is solvable/soluble: G is soluble if there exists a chain of NORMAL (enphasis because I can't remember the tex for the normal symbol) subgroups:

[tex]1=G_0 < G_1 < ... G_n = G[/tex] and each quotient [tex]G_i/G_{i-1}[/tex] is abelian. It is certainly not necessary that the quotients are "essentially unique"
 
  • #19
Matt: I much prefer "sovable". Whenever I see not "soluble", I immediately think "not even if you put in strong acid?"
 
  • #20
I agree, but Ian Stewart, whose book is the preferred teaching material for galois theory these days in many places, uses soluble.
 

1. What is the cubic formula?

The cubic formula is a mathematical equation used to find the roots of a cubic polynomial, which is a polynomial with a degree of three.

2. How do I use the cubic formula to solve the equation 4x^3+2x^2+5x-2=0?

To use the cubic formula, first make sure that the equation is in the form of ax^3+bx^2+cx+d=0. Then, substitute the values of a, b, c, and d into the formula: x = (-b ± √(b^2-4ac+27d^2))/2a. This will give you three possible solutions for x, known as roots.

3. Can the cubic formula be used for any cubic equation?

Yes, the cubic formula can be used to solve any cubic equation. However, it is not always the most efficient method and other techniques such as factoring or graphing may be more useful.

4. How many solutions can the cubic formula provide?

The cubic formula can provide three solutions, as a cubic equation can have up to three roots. However, some of these solutions may be complex numbers.

5. Are there any limitations to using the cubic formula?

Yes, there are some limitations to using the cubic formula. It can become quite complex and difficult to solve when the coefficients of the cubic equation are large or when the equation has irrational or imaginary roots.

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