Utilitas Algorithmica (UA)

ISSN: xxxx-xxxx (print)

Utilitas Algorithmica (UA) is a premier, open-access international journal dedicated to advancing algorithmic research and its applications. Launched to drive innovation in computer science, UA publishes high-impact theoretical and experimental papers addressing real-world computational challenges. The journal underscores the vital role of efficient algorithm design in navigating the growing complexity of modern applications. Spanning domains such as parallel computing, computational geometry, artificial intelligence, and data structures, UA is a leading venue for groundbreaking algorithmic studies.

Martin Griittmiiller1, Nabil Shalaby Daniela Silvesan2
1HTWK Leipzig – University of Applied Science Germany
2Department of Mathematics and Statistics Memorial University of Newfoundland St. John’s, Newfoundland CANADA A1C 587
Abstract:

A triple system is decomposable if the blocks can be partitioned into two sets, each of which is itself a triple system. It is cyclically decomposable if the resulting triple systems are themselves cyclic. In this paper, we prove that a cyclic two-fold triple system is cyclically indecomposable if and only if it is indecomposable. Moreover, we construct cyclic three-fold triple systems of order $v$ which are cyclically indecomposable but decomposable for all \(v \equiv 3 \mod 6\). The only known example of a cyclic three-fold triple system of order \(v \equiv 1 \mod 6\) that is cyclically indecomposable but decomposable was a triple system on 19 points. We present a construction which yields infinitely many such triple systems of order \(v \equiv 1 \mod 6\). We also give several examples of cyclically indecomposable but decomposable cyclic four-fold triple systems and few constructions that yield infinitely many such triple systems.

Danny Dyer1, Sadegheh Haghshenas1, Nabil Shalaby1
1Department of Mathematics and Statistics, Memorial University of Newfoundland, St. John’s, Newfoundland, Canada, A1C 5S7
Abstract:

The spectrum problem for decomposition of trees with up to eight edges was introduced and solved in 1978 by Huang and Rosa. Additionally, the packing problem was settled for all trees with up to six edges by Roditty. For the first time, we consider obtaining all possible leaves in a maximum tree-packing of \(K_n\), which we refer to as the spectrum problem for packings of complete graphs. In particular, we completely solve this problem for trees with at most five edges. The packing designs are used in developing optimal error-correcting codes, which have applications in biology, such as in DNA sequencing.

Sin-Min Lee1, Hsin-Hao Su1, Heiko Todt2
1Hollyhock Street Dept. of Math. Union City, CA 94587, USA Stonehill College Easton, MA 02357, USA
2Dept. of Math. Stonehill College Easton, MA 02357, USA
Abstract:

Let \(G\) be a graph with vertex set \(V(G)\) and edge set \(E(G)\). A labeling \(f\) of a graph \(G\) is said to be edge-friendly if \(|e_f(0) – e_f(1)| \leq 1\), where \(e_f(i) = \text{card}\{e \in E(G) : f(e) = i\}\). An edge-friendly labeling \(f : E(G) \to \mathbb{Z}_2\) induces a partial vertex labeling \(f^+ : V(G) \to A\) defined by \(f^+(x) = 0\) if the edges incident to \(x\) are labeled \(0\) more than \(1\). Similarly, \(f^+(x) = 1\) if the edges incident to \(x\) are labeled \(1\) more than \(0\). \(f^+(x)\) is not defined if the edges incident to \(x\) are labeled \(1\) and \(0\) equally. The edge-balance index set of the graph \(G\), \(EBI(G)\), is defined as \(\{|v_f(0) – v_f(1)| : \text{the edge labeling } f \text{ is edge-friendly}\}\), where \(v_f(i) = \text{card}\{v \in V(G) : f^+(v) = i\}\).

An \(n\)-wheel is a graph consisting of \(n\) cycles, with each vertex of the cycles connected to one central hub vertex. The edge-balance index sets of \(n\)-wheels are presented.

Suhadi Wido Saputro1
1Combinatorial Mathematics Research Division Faculty of Mathematics and Natural Sciences Institut Teknologi Bandung Jl.Ganesha 10 Bandung 40132 Indonesi
Abstract:

A set of vertices \(W\) \({locally\; resolves}\) a graph \(G\) if every pair of adjacent vertices is uniquely determined by its coordinate of distances to the vertices in \(W\). The minimum cardinality of a local resolving set of \(G\) is called the \({local\; metric\; dimension}\) of \(G\). A graph \(G\) is called a \(k\)-regular graph if every vertex of \(G\) is adjacent to \(k\) other vertices of \(G\). In this paper, we determine the local metric dimension of an \((n-3)\)-regular graph \(G\) of order \(n\), where \(n \geq 5\).

Sean Bailey 1, LeRoy B. Beasley1
1Department of Mathematics and Statistics, Utah State University Logan, Utah 84322-3900, USA
Abstract:

Let \(\mathcal{G}_n\) be the set of all simple loopless undirected graphs on \(n\) vertices. Let \(T\) be a linear mapping, \(T: \mathcal{G}_n \to \mathcal{G}_n\), such that the dot product dimension of \(T(G)\) is the same as the dot product dimension of \(G\) for any \(G \in \mathcal{G}_n\). We show that \(T\) is necessarily a vertex permutation. Similar results are obtained for mappings that preserve sets of graphs with specified dot product dimensions.

Michelle Robinette1, Jessica Thunet1
1Department of Mathematical Sciences University of Nevada Las Vegas Las Vegas, NV 89154
Abstract:

A permutation \(\pi\) on a set of positive integers \(\{a_1, a_2, \ldots, a_n\}\) is said to be graphical if there exists a graph containing exactly \(a_i\) vertices of degree \(\pi(a_i)\) for each \(i\) (\(1 \leq i \leq n\)). It has been shown that for positive integers with \(a_1 < a_2 < \ldots < a_n\), if \(\pi(a_n) = a_n\), then the permutation \(\pi\) is graphical if and only if the sum \(\sum_{i=1}^n a_i \pi(a_i)\) is even and \(a_n \leq \sum_{i=1}^{n-1} a_i\pi(a_i)\).

We use a criterion of Tripathi and Vijay to provide a new proof of this result and to establish a similar result for permutations \(\pi\) such that \(\pi(a_{n-1}) = a_n\). We prove that such a permutation is graphical if and only if the sum \(\sum_{i=1}^n a_i \pi(a_i)\) is even and \(a_na_{n-1} \leq a_{n-1}(a_{n-1} – 1) + \sum_{i\neq n-1} a_i\pi(a_i)\). We also consider permutations such that \(\pi(a_n) = a_{n-1}\) and, more generally, those such that \(\pi(a_n) = a_{n-j}\) for some \(j\) (\(1 < j < n\)).

S. A. Katre1, Laleh Yahyaei1
1Department of Mathematics, S. P. Pune University, Pune-411007, INDIA.
Abstract:

A \(k\)-labeling of a graph is a labeling of the vertices of the graph by \(k\)-tuples of non-negative integers such that two vertices of \(G\) are adjacent if and only if their label \(k\)-tuples differ in each coordinate. The dimension of a graph \(G\) is the least \(k\) such that \(G\) has a \(k\)-labeling.

Lovász et al. showed that for \(n \geq 3\), the dimension of a path of length \(n\) is \((\log_2 n)^+\). Lovász et al. and Evans et al. determined the dimension of a cycle of length \(n\) for most values of \(n\). In the present paper, we obtain the dimension of a caterpillar or provide close bounds for it in various cases.

Shuya Chiba1, Masao Tsugaki2
1Department of Mathematics and Engineering, Kumamoto University, 2-39-1 Kurokami, Kumamoto 860-8555, Japan
2Institute of mathematical and system sciences, Chinese Academy of Science, Beijing, P. R. China
Abstract:

Let \(G\) be a graph of order \(n\). In [A. Saito, Degree sums and graphs that are not covered by two cycles, J. Graph Theory 32 (1999), 51–61.], Saito characterized the graphs with \(\sigma_3(G) \geq n-1\) that are not covered by two cycles. In this paper, we characterize the graphs with \(\sigma_4(G) \geq n-1\) that are not covered by three cycles. Moreover, to prove our main theorem, we show several new results which are useful in the study of this area.

Zhongxun Zhu1
1 College of Mathematics and Statistics, South Central University for Nationalities, Wuhan 430074, P.R. China
Abstract:

Let \(\mathcal{B}(n, a)\) be the set of bicyclic graphs on \(n\) vertices with matching number \(\alpha\). In this paper, we characterize the extremal bicyclic graph with minimal Hosoya index and maximal Merrifield-Simmons index in \(\mathcal{B}(n, a)\).

Andrew Crites1, Greta Panova2, Gregory S.Warrington3
1Dept. of Mathematics, University of Washington, Seattle, WA 98195,
2Dept. of Mathematics, University of California, Los Angeles Los Angeles, CA $0095
3Dept. of Mathematics and Statistics, University of Vermont, Burlington, VT 05401,
Abstract:

A word has a shape determined by its image under the Robinson-Schensted-Knuth correspondence. We show that when a word \(w\) contains a separable (i.e., \(3142\)- and \(2413\)-avoiding) permutation \(\sigma\) as a pattern, the shape of \(w\) contains the shape of \(\sigma\). As an application, we exhibit lower bounds for the lengths of supersequences of sets containing separable permutations.

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