Abstract
A triangular matroid is a rank-3 matroid whose ground set consists of the points of an
1 Introduction
A (finite) incidence structure
A (combinatorial) configuration
If
A configuration
A triangle in a configuration is a triple of non-collinear points

(a) The Fano 73-configuration and (b) the Cremona-Richmond 153-configuration.
Two configurations
A subgroup
Furthermore, a configuration
To each
We now turn our attention to the relation between n 3-configurations and the class of rank-3 matroids. In particular, we consider the class of rank-3 matroids called triangular matroids, defined recently by Raney [3].
In the literature, a matroid is a structure that is related directly to the notion of linear independence in vector spaces. A matroid can be defined in many equivalent ways. Here, we define a matroid in terms of its bases.
A (finite) matroid M is an ordered pair
Applying the basis exchange property repeatedly, one can show that any two bases in
Matroid theory has been extensively related and applied to different areas of mathematics including geometry, topology, group theory, and coding theory.
If
A fundamental example of a matroid is a uniform matroid. Let
In [3], Raney presented a special class of matroids, called triangular matroids, defined as follows:
Definition 1
Let
In this setting, the work in [3] intended to answer the question: if
We note that if
It is possible that two or more non-isomorphic
The search in [3] was established on n
3-configurations for
| N |
|
|
|
|---|---|---|---|
| 7 | 1 | 0 | 0 |
| 8 | 1 | 0 | 0 |
| 9 | 3 | 0 | 0 |
| 10 | 10 | 1 | 1 |
| 11 | 31 | 0 | 0 |
| 12 | 229 | 1 | 1 |
| 13 | 2,036 | 1 | 1 |
| 14 | 21,399 | 4 | 4 |
| 15 | 245,342 | 220 | 173 |
| 16 | 3,004,881 | 6,053 | 2,634 |
| 17 | 38,904,499 | 166,286 | 19,930 |
| 18 | 530,452,205 | 4,126,028 | 101,910 |
Table 1 presents the main results of the search for triangular matroids induced by n
3-configurations. The new results are highlighted in bold. Here,
2 Properties
We now discuss some of the main properties of
A complete quadrangle in a configuration is a set of four points a, b, c, and d, no three collinear, for which all possible lines connecting each pair of distinct points exist. A near-complete quadrangle in a configuration is a complete quadrangle missing exactly one line connecting one pair of points. A near-pencil in a configuration consists of the points of a line L and a point a not on L for which a is incident to all points on L. Figure 2 shows a near-complete quadrangle and a near-pencil.

A near-quadrangle and a near-pencil in a configuration. (a) Near quadrangle, (b) near-pencil.
Theorem 1
An
If
Theorem 2
Let
As an example of Theorem 2, we present one of the four
| l 1 | l 2 | l 3 | l 4 | l 5 | l 6 | l 7 | l 8 | l 9 | l 10 | l 11 | l 12 | l 13 | l 14 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 1 | 1 | 2 | 2 | 3 | 3 | 4 | 5 | 5 | 6 | 7 | 10 | 11 |
| 2 | 4 | 6 | 4 | 9 | 6 | 9 | 13 | 7 | 9 | 8 | 8 | 11 | 12 |
| 3 | 5 | 7 | 8 | 10 | 11 | 12 | 14 | 12 | 13 | 10 | 14 | 13 | 14 |

The cyclic 143-configuration whose automorphism group order is 14.
This configuration possesses 14 triangles, triangles
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|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 1 | 1 | 2 | 2 | 3 | 4 | 4 | 5 | 6 | 6 | 7 | 9 | 11 |
| 2 | 3 | 5 | 3 | 8 | 11 | 5 | 8 | 9 | 7 | 10 | 12 | 10 | 13 |
| 4 | 6 | 7 | 9 | 10 | 12 | 13 | 14 | 12 | 8 | 11 | 14 | 13 | 14 |
These triangles form another configuration on 14 points which is isomorphic to the cyclic one. It is an isomorphic copy of the configuration in Figure 3.
Note that there exists no one-to-one correspondence between the triangular matroids themselves and the
But this same idea is also applicable for smaller

Two configurations of automorphism groups
Each of these configurations consists of six triangles inducing two isomorphic triangular matroids. Figure 5 shows the geometric representations of the two isomorphic triangular matroids induced by configurations

Two isomorphic triangular matroids induced by
3 The search
Assume that a list of all
Another approach was to directly generate all
An
As A is representing an
We now describe the search algorithm to classify the
The search first starts with the generation procedure which carries out a row-by-row (or a point-by-point) backtrack search to consider all possible incidence matrices of
Once a row is constructed by the generation procedure, the algorithm performs another test to check whether the created incidence matrix agrees with the canonical one. Here, canonical might have a different meaning depending on what our canonical matrix is defined to be. One example (which we chose) is to choose the lexicographically least form of the incidence matrix. If the incidence matrix is canonical, we proceed to the next row and continue the search. Otherwise, we reject it and backtrack.
The algorithm ends up with a list of non-isomorphic
We remark that we compute the lexicographically least representative of the isomorphism class of a matrix using our own algorithm. The complexity of this algorithm is exponential in the size of the input. No fast algorithm to solve this problem is known.
Moreover, the lexicographically least representative can be replaced by the canonical representative which can be computed using the idea of canonical augmentation due to McKay [7]. In almost all cases these representatives are different. We also tried this method using nauty [8] to compute the canonical representative. We found that orderly generation using the lexicographically least representative worked better for us. This may not be seen as a critique of “canonical augmentation.” We did not try very hard to make it work, so a comparison is unfair. Again in either methods, no fast (i.e. polynomial) algorithm to solve this problem is known.
4 Results
The main results of the search described in Section 3 are presented in Table 1.
The search was done on a single Mac Laptop (with a Processor 2.2 GHz). The CPU needed for the search on
We note that all the presented figures in this paper were produced manually. The main purpose of these drawings is to emphasize some aspects such as symmetry of the groups and geometric realizations, if possible. Further study is advised here to study in more detail whether the objects can be realized geometrically. But this direction is not the purpose of the presented work.
We present some of the
Triangle distribution of
| n | #tri(n) |
|
|
#mat(n) |
|---|---|---|---|---|
| 10 | 1 |
|
|
1 |
| 12 | 1 |
|
|
1 |
| 13 | 1 |
|
|
1 |
| 14 | 4 |
|
|
4 |
| 15 | 220 |
|
|
173 |
| 16 | 6,053 |
|
|
2,634 |
| 17 | 166,286 |
|
|
19,930 |
| 18 | 4,126,028 |
|
|
101,910 |
We might have (in the same table row)
Table 3 gives the distribution of non-trivial automorphism groups of
Automorphism group types (excluding trivial groups)
| n | ago | Aut |
|---|---|---|
| 10 | 120 |
|
| 12 | 72 |
|
| 13 | 39 |
|
| 14 |
|
|
| 15 |
|
|
|
|
|
|
|
|
|
|
| 16 |
|
|
|
|
|
|
|
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|
|
| 17 |
|
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|
|
| 18 |
|
|
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|
|
|
We use
We now present some properties of some of the
4.1
14
3
-configurations inducing triangular matroids
For the
Figure 6 shows one of the four

The
4.2
15
3
-configurations inducing triangular matroids
There are 220
An example of a
Figure 7 presents the unique

The
We next present the unique
It induces two point-orbits of lengths 10 and 5. These two orbits are shown in two different colors in the diagram. Each point of the configuration is incident to two triangles where the number of triangles is 10. The geometric representation of the induced triangular matroid is also presented. As it can be seen, it has ten triangles. It is in fact an

The
There is a unique

The
Note that in the geometric representation of the induced triangular matroid, four collinear points in the geometric representation means that each of the four possible point triples taken from these four points defines a triangle in the configuration. For instance, any point triples taken from the four collinear points (complete quadrangle)
The unique

The unique
This configuration has 15 triangles. Each point is incident to three triangles, with no pair of points incident to a triangle more than once. Its triangles are blocks of another
The 15 triangles of this configuration are as follows:
| t 1 | t 2 | t 3 | t 4 | t 5 | t 6 | t 7 | t 8 | t 9 | t 10 | t 11 | t 12 | t 13 | t 14 | t 15 |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 1 | 1 | 2 | 2 | 2 | 3 | 3 | 3 | 4 | 5 | 5 | 6 | 6 | 7 |
| 10 | 12 | 13 | 4 | 5 | 11 | 4 | 6 | 10 | 12 | 7 | 8 | 7 | 9 | 8 |
| 11 | 14 | 15 | 9 | 12 | 15 | 8 | 13 | 14 | 13 | 11 | 14 | 10 | 15 | 9 |
4.3
16
3
-configurations inducing triangular matroids
There are 2,634
One of the four configurations with a transitive automorphism group is the cyclic

The unique cyclic
There are two

The two
The

The unique
4.4
17
3
-configurations inducing triangular matroids
In this case, we found

The incidence matrices of (a) the unique triangle-free
4.5
18
3
-configurations inducing triangular matroids
In this case, we see a considerable increase in the number of
We first present a 6-cyclic (in the terminology of [2])

Two cyclic
We found three flag-transitive configurations among the
Figure 16 shows a realization for the

The unique
The other two flag-transitive configurations have automorphism group

Two cyclic
Figure 18 shows two incidence matrices associated with the two

Two dual
The geometric representations of the induced triangular matroids by the dual pair

Two geometric representations of triangular matroids induced by (a)
Another example of a dual pair of

A pair of dual
Acknowledgments
The authors would like to thank the two referees for the helpful suggestions and comments.
References
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© 2020 Abdullah Alazemi and Michael Raney, published by De Gruyter
This work is licensed under the Creative Commons Attribution 4.0 International License.
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- Inequalities for the generalized trigonometric and hyperbolic functions
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- The logarithmic mean of two convex functionals
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- The limit Riemann solutions to nonisentropic Chaplygin Euler equations
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- Results on analytic functions defined by Laplace-Stieltjes transforms with perfect ϕ-type
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- Boundary layer analysis for a 2-D Keller-Segel model
- On some extensions of Gauss’ work and applications
- A study on strongly convex hyper S-subposets in hyper S-posets
- On the Gevrey ultradifferentiability of weak solutions of an abstract evolution equation with a scalar type spectral operator on the real axis
- Special Issue on Graph Theory (GWGT 2019), Part II
- On applications of bipartite graph associated with algebraic structures
- Further new results on strong resolving partitions for graphs
- The second out-neighborhood for local tournaments
- On the N-spectrum of oriented graphs
- The H-force sets of the graphs satisfying the condition of Ore’s theorem
- Bipartite graphs with close domination and k-domination numbers
- On the sandpile model of modified wheels II
- Connected even factors in k-tree
- On triangular matroids induced by n3-configurations
- The domination number of round digraphs
- Special Issue on Variational/Hemivariational Inequalities
- A new blow-up criterion for the N – abc family of Camassa-Holm type equation with both dissipation and dispersion
- On the finite approximate controllability for Hilfer fractional evolution systems with nonlocal conditions
- On the well-posedness of differential quasi-variational-hemivariational inequalities
- An efficient approach for the numerical solution of fifth-order KdV equations
- Generalized fractional integral inequalities of Hermite-Hadamard-type for a convex function
- Karush-Kuhn-Tucker optimality conditions for a class of robust optimization problems with an interval-valued objective function
- An equivalent quasinorm for the Lipschitz space of noncommutative martingales
- Optimal control of a viscous generalized θ-type dispersive equation with weak dissipation
- Special Issue on Problems, Methods and Applications of Nonlinear analysis
- Generalized Picone inequalities and their applications to (p,q)-Laplace equations
- Positive solutions for parametric (p(z),q(z))-equations
- Revisiting the sub- and super-solution method for the classical radial solutions of the mean curvature equation
- (p,Q) systems with critical singular exponential nonlinearities in the Heisenberg group
- Quasilinear Dirichlet problems with competing operators and convection
- Hyers-Ulam-Rassias stability of (m, n)-Jordan derivations
- Special Issue on Evolution Equations, Theory and Applications
- Instantaneous blow-up of solutions to the Cauchy problem for the fractional Khokhlov-Zabolotskaya equation
- Three classes of decomposable distributions