Growth: A Journal of Mathematics and Mathematics Education
ISSN: xxxx-xxxx
Growth: A Journal of Mathematics and Mathematics Education aims to provide a publication platform for high quality undergraduate research in mathematics and in mathematical pedagogy. The technical scope of the journal is combinatorial mathematics, broadly interpreted—the editorial board will consider all submissions in their areas of interest. All submitted articles must have an undergraduate research component and must be certified by a senior researcher. All submissions will be peer reviewed according to standard practices in academic mathematics. Precise editorial policies are set by the editorial board.
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 171-181
- Published: 28/02/2002
As an extension of the fractional domination and fractional domatic graphical parameters, multi-fractional domination parameters are introduced. We demonstrate the Linear Programming formulations, and to these formulations we apply the Partition Class Theorem, which is a generalization of the Automorphism Class Theorem. We investigate some properties of the multi-fractional domination numbers and their relationships to the fractional domination and fractional domatic numbers.
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 167-170
- Published: 28/02/2002
In a graph, the Steiner distance of a set of vertices \(U\) is the minimum number of edges in a connected subgraph containing \(U\). For \(k \geq 2\) and \(d \geq k-1\), let \(S(k,d)\) denote the property that for all sets \(S\) of \(k\) vertices with Steiner distance \(d\), the Steiner distance of \(S\) is preserved in any induced connected subgraph containing \(S\). A \(k\)-Steiner-distance-hereditary (\(k\)-SDH) graph is one with the property \(S(k, d)\) for all \(d\). We show that property \(S(k, k)\) is equivalent to being \(k\)-SDH, and that being \(k\)-SDH implies \((k + 1)\)-SDH. This establishes a conjecture of Day, Oellermann and Swart.
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 161-165
- Published: 28/02/2002
The quantity \(g^{(k)}(v)\) was introduced in [4] as the minimum number of blocks necessary in a pairwise balanced design on \(v\) elements, subject to the condition that the longest block have cardinality \(k\). When \(k \geq (v – 1)/2\), it is known that \(g^{(k)}(v) = 1 + (v – k)(3k – v + 1)/2\), except for the case when \(v \equiv 1 \pmod{4}\) and \(k = (v – 1)/2\). This exceptional “case of first failure” was treated in [1] and [2]. In this paper, we discuss the structure of the “case of first failure” for the situation when \(v = 4s + 4\).
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 143-159
- Published: 28/02/2002
We construct some codes, designs and graphs that have the first or second Janko group, \(J_1\) or \(J_2\), respectively, acting as an automorphism group. We show computationally that the full automorphism group of the design or graph in each case is \(J_1\), \(J_2\) or \(\bar{J}_2\), the extension of \(J_2\) by its outer automorphism, and we show that for some of the codes the same is true.
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 133-142
- Published: 28/02/2002
A 3-regular graph \(G\) is called a 3-circulant if its adjacency matrix \(A(G)\) is a circulant matrix. We show how all disconnected 3-circulants are made up of connected 3-circulants and classify all connected 3-circulants as one of two basic types. The rank of \(A(G)\) is then completely determined for all 3-circulant graphs \(G\).
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 129-132
- Published: 28/02/2002
The independence number \(\beta_n\), for knights on equilateral triangular boards \(T_n\), of regular hexagons is determined for all \(n\).
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 115-127
- Published: 28/02/2002
It was conjectured by Lee that a cubic simple graph with \(4k + 2\) vertices is edge-magic [5]. In this paper we show that the conjecture is not true for multigraphs or disconnected simple graphs in general. Several new classes of cubic edge-magic graphs are exhibited.
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 97-113
- Published: 28/02/2002
In 1976 Erdős asked about the existence of Steiner triple systems that lack collections of \(j\) blocks employing just \(j+2\) points. This has led to the study of anti-Pasch, anti-mitre and 5-sparse Steiner triple systems. Simultaneously generating sets and bases for Steiner triple systems and \(t\)-designs have been determined. Combining these ideas, together with the observation that a regular graph is a 1-design, we arrive at a natural definition for the girth of a design. In turn, this provides a natural extension of the search for cages to the universe of all \(t\)-designs. We include the results of computational experiments that give an abundance of examples of these new definitions.
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 79-95
- Published: 28/02/2002
A graph \(G\) is called an \(L_1\)-graph if, for each triple of vertices \(x, y,\) and \(z\) with \(d(x,y) = 2\) and \(z \in N(x) \cap N(y)\), \(d(x) + d(y) \geq |N(x) \cup N(y) \cup N(z)| – 1\). Let \(G\) be a \(3\)-connected \(L_1\)-graph of order \(n \geq 18\). If \(\delta(G) \geq n/3\), then every pair of vertices \(u\) and \(v\) in \(G\) with \(d(u,v) \geq 3\) is connected by a Hamiltonian path of \(G\).
- Research article
- Full Text
- Journal of Combinatorial Mathematics and Combinatorial Computing
- Volume 040
- Pages: 65-78
- Published: 28/02/2002
How many vertices must we delete from a graph so that it no longer contains a path \(P_k\) on \(k\) vertices? We explore this question for various special graphs (hypercubes, square lattice graphs) as well as for some general families.




