Jump to content
 







Main menu
   


Navigation  



Main page
Contents
Current events
Random article
About Wikipedia
Contact us
Donate
 




Contribute  



Help
Learn to edit
Community portal
Recent changes
Upload file
 








Search  

































Create account

Log in
 









Create account
 Log in
 




Pages for logged out editors learn more  



Contributions
Talk
 



















Contents

   



(Top)
 


1 Integer binary quadratic forms  





2 Gauss composition of integer binary quadratic forms  





3 Quadratic forms associated with the Bhargava cube  



3.1  The three forms  



3.1.1  The form Q1  





3.1.2  The form Q2  





3.1.3  The form Q3  





3.1.4  Relation between Q1, Q2, Q3  









4 Example  





5 Further composition laws on forms  



5.1  Composition of cubes  





5.2  Composition of cubic forms  





5.3  Composition of pairs of binary quadratic forms  







6 See also  





7 References  














Bhargava cube







Add links
 









Article
Talk
 

















Read
Edit
View history
 








Tools
   


Actions  



Read
Edit
View history
 




General  



What links here
Related changes
Upload file
Special pages
Permanent link
Page information
Cite this page
Get shortened URL
Download QR code
Wikidata item
 




Print/export  



Download as PDF
Printable version
 
















Appearance
   

 






From Wikipedia, the free encyclopedia
 


Bhargava cube with the integers a, b, c, d, e, f, g, h at the corners

Inmathematics, in number theory, a Bhargava cube (also called Bhargava's cube) is a configuration consisting of eight integers placed at the eight corners of a cube.[1] This configuration was extensively used by Manjul Bhargava, a Canadian-American Fields Medal winning mathematician, to study the composition laws of binary quadratic forms and other such forms. To each pair of opposite faces of a Bhargava cube one can associate an integer binary quadratic form thus getting three binary quadratic forms corresponding to the three pairs of opposite faces of the Bhargava cube.[2] These three quadratic forms all have the same discriminant and Manjul Bhargava proved that their composition in the sense of Gauss[3] is the identity element in the associated groupofequivalence classes of primitive binary quadratic forms. (This formulation of Gauss composition was likely first due to Dedekind.)[4] Using this property as the starting point for a theory of composition of binary quadratic forms Manjul Bhargava went on to define fourteen different composition laws using a cube.

Integer binary quadratic forms[edit]

An expression of the form , where a, b and c are fixed integers and x and y are variable integers, is called an integer binary quadratic form. The discriminant of the form is defined as

The form is said to be primitive if the coefficients a, b, c are relatively prime. Two forms

are said to be equivalent if there exists a transformation

with integer coefficients satisfying which transforms to. This relation is indeed an equivalence relation in the set of integer binary quadratic forms and it preserves discriminants and primitivity.

Gauss composition of integer binary quadratic forms[edit]

Let and be two primitive binary quadratic forms having the same discriminant and let the corresponding equivalence classes of forms be and . One can find integers such that

The class is uniquely determined by the classes [Q(x, y)] and [Q(x, y)] and is called the composite of the classes and .[3] This is indicated by writing

The set of equivalence classes of primitive binary quadratic forms having a given discriminant D is a group under the composition law described above. The identity element of the group is the class determined by the following form:

The inverse of the class is the class .

Quadratic forms associated with the Bhargava cube[edit]

Let (M, N) be the pair of 2 × 2 matrices associated with a pair of opposite sides of a Bhargava cube; the matrices are formed in such a way that their rows and columns correspond to the edges of the corresponding faces. The integer binary quadratic form associated with this pair of faces is defined as

The quadratic form is also defined as

However, the former definition will be assumed in the sequel.

The three forms[edit]

Let the cube be formed by the integers a, b, c, d, e, f, g, h. The pairs of matrices associated with opposite edges are denoted by (M1, N1), (M2, N2), and (M3, N3). The first rows of M1, M2 and M3 are respectively [a b], [a c] and [a e]. The opposite edges in the same face are the second rows. The corresponding edges in the opposite faces form the rows of the matrices N1, N2, N3 (see figure).

Bhargava cube showing the pair of opposite faces M1 and N1.
Bhargava cube showing the pair of opposite faces M2 and N2.
Bhargava cube showing the pair of opposite faces M3 and N3.

The form Q1[edit]

The quadratic form associated with the faces defined by the matrices (see figure) is

The discriminant of a quadratic form Q1is

The form Q2[edit]

The quadratic form associated with the faces defined by the matrices (see figure) is

The discriminant of a quadratic form Q2is

The form Q3[edit]

The quadratic form associated with the faces defined by the matrices (see figure) is

The discriminant of a quadratic form Q3is

Relation between Q1, Q2, Q3[edit]

Manjul Bhargava's surprising discovery can be summarised thus:[2]

If a cube A gives rise to three primitive binary quadratic forms Q1, Q2, Q3, then Q1, Q2, Q3 have the same discriminant, and the product of these three forms is the identity in the group defined by Gauss composition. Conversely, if Q1, Q2, Q3 are any three primitive binary quadratic forms of the same discriminant whose product is the identity under Gauss composition, then there exists a cube A yielding Q1, Q2, Q3.

Example[edit]

An example of Bhargava cube

The three quadratic forms associated with the numerical Bhargava cube shown in the figure are computed as follows.

The composition is the form where because of the following:

Also . Thus is the identity element in the group defined by the Gauss composition.

Further composition laws on forms[edit]

Composition of cubes[edit]

The fact that the composition of the three binary quadratic forms associated with the Bhargava cube is the identity element in the group of such forms has been used by Manjul Bhargava to define a composition law for the cubes themselves.[2]

Composition of cubic forms[edit]

An integer binary cubic in the form can be represented by a triply symmetric Bhargava cube as in the figure. The law of composition of cubes can be used to define a law of composition for the binary cubic forms.[2]

The Bhargava cube corresponding to the binary cubic form .

Composition of pairs of binary quadratic forms[edit]

The pair of binary quadratic forms can be represented by a doubly symmetric Bhargava cube as in the figure. The law of composition of cubes is now used to define a composition law on pairs of binary quadratic forms.[2]

The Bhargava cube corresponding to the pair of binary quadratic forms .

See also[edit]

References[edit]

  1. ^ Mak Trifkovic (2013). Algebraic Theory of Quadratic Numbers. New York: Springer. p. 175. ISBN 978-1-4614-7716-7.
  • ^ a b c d e Manjul Bhargava (2006). Higher composition laws and applications, in Proceedings of the International Congress of Mathematicians, Madrid, Spain, 2006. European Mathematical Society.
  • ^ a b Carl Friedrich Gauss (translated by Arthur A Clarke) (1986). Disquisitiones Arithmeticae. Springer Verlag. pp. 230–256.
  • ^ Richard Dedekind (1932). Gesammelte Mathematische Werke. Vol. 2. Viehweg. p. 307.

  • Retrieved from "https://en.wikipedia.org/w/index.php?title=Bhargava_cube&oldid=1211223540"

    Categories: 
    Quadratic forms
    Carl Friedrich Gauss
    Number theory
    Hidden categories: 
    Articles needing additional references from March 2024
    All articles needing additional references
     



    This page was last edited on 1 March 2024, at 13:07 (UTC).

    Text is available under the Creative Commons Attribution-ShareAlike License 4.0; additional terms may apply. By using this site, you agree to the Terms of Use and Privacy Policy. Wikipedia® is a registered trademark of the Wikimedia Foundation, Inc., a non-profit organization.



    Privacy policy

    About Wikipedia

    Disclaimers

    Contact Wikipedia

    Code of Conduct

    Developers

    Statistics

    Cookie statement

    Mobile view



    Wikimedia Foundation
    Powered by MediaWiki