首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 46 毫秒
1.
Let G be a graph with n vertices and m edges and let μ(G) = μ1(G) ? ? ? μn(G) be the eigenvalues of its adjacency matrix. Set s(G)=∑uV(G)d(u)-2m/n∣. We prove that
  相似文献   

2.
Let 1=d1(n)<d2(n)<?<dτ(n)=n be the sequence of all positive divisors of the integer n in increasing order. We say that the divisors of n are y-dense iff max1?i<τ(n)di+1(n)/di(n)?y. Let D(x,y,z) be the number of positive integers not exceeding x whose divisors are y-dense and whose prime divisors are bigger than z, and let , and . We show that is equivalent, in a large region, to a function d(u,v) which satisfies a difference-differential equation. Using that equation we find that d(u,v)?(1−u/v)/(u+1) for v?3+ε. Finally, we show that d(u,v)=eγd(u)+O(1/v), where γ is Euler's constant and d(u)∼x−1D(x,y,1), for fixed u. This leads to a new estimate for d(u).  相似文献   

3.
Let G = (VE) be a connected graph. The distance between two vertices u, v ∈ V, denoted by d(uv), is the length of a shortest u − v path in G. The distance between a vertex v ∈ V and a subset P ⊂ V is defined as , and it is denoted by d(vP). An ordered partition {P1P2, … , Pt} of vertices of a graph G, is a resolving partition of G, if all the distance vectors (d(vP1), d(vP2), … , d(vPt)) are different. The partition dimension of G, denoted by pd(G), is the minimum number of sets in any resolving partition of G. In this article we study the partition dimension of Cartesian product graphs. More precisely, we show that for all pairs of connected graphs G, H, pd(G × H) ? pd(G) + pd(H) and pd(G × H) ? pd(G) + dim(H), where dim(H) denotes the metric dimension of H. Consequently, we show that pd(G × H) ? dim(G) + dim(H) + 1.  相似文献   

4.
Let G be a graph of order n and S be a vertex set of q vertices. We call G,S-pancyclable, if for every integer i with 3≤iq there exists a cycle C in G such that |V(C)∩S|=i. For any two nonadjacent vertices u,v of S, we say that u,v are of distance two in S, denoted by dS(u,v)=2, if there is a path P in G connecting u and v such that |V(P)∩S|≤3. In this paper, we will prove that if G is 2-connected and for all pairs of vertices u,v of S with dS(u,v)=2, , then there is a cycle in G containing all the vertices of S. Furthermore, if for all pairs of vertices u,v of S with dS(u,v)=2, , then G is S-pancyclable unless the subgraph induced by S is in a class of special graphs. This generalizes a result of Fan [G. Fan, New sufficient conditions for cycles in graphs, J. Combin. Theory B 37 (1984) 221-227] for the case when S=V(G).  相似文献   

5.
Let G=(V,E) be a simple graph with vertex degrees d1,d2,…,dn. The Randi? index R(G) is equal to the sum over all edges (i,j)∈E of weights . We prove several conjectures, obtained by the system AutoGraphiX, relating R(G) and the chromatic number χ(G). The main result is χ(G)≤2R(G). To prove it, we also show that if vV is a vertex of minimum degree δ of G, Gv the graph obtained from G by deleting v and all incident edges, and Δ the maximum degree of G, then .  相似文献   

6.
Let G=(V,E) be a tree on n?2 vertices and let vV. Let L(G) be the Laplacian matrix of G and μ(G) be its algebraic connectivity. Let Gk,l, be the graph obtained from G by attaching two new paths P:vv1v2vk and Q:vu1u2ul of length k and l, respectively, at v. We prove that if l?k?1 then μ(Gk-1,l+1)?μ(Gk,l). Let (v1,v2) be an edge of G. Let be the tree obtained from G by deleting the edge (v1,v2) and identifying the vertices v1 and v2. Then we prove that As a corollary to the above results, we obtain the celebrated theorem on algebraic connectivity which states that among all trees on n vertices, the path has the smallest and the star has the largest algebraic connectivity.  相似文献   

7.
8.
9.
The bandwidth B(G) of a graph G is the minimum of the quantity max{|f(x)-f(y)|:xyE(G)} taken over all proper numberings f of G. The strong product of two graphs G and H, written as G(SP)H, is the graph with vertex set V(GV(H) and with (u1,v1) adjacent to (u2,v2) if one of the following holds: (a) u1 and v1 are adjacent to u2 and v2 in G and H, respectively, (b) u1 is adjacent to u2 in G and v1=v2, or (c) u1=u2 and v1 is adjacent to v2 in H. In this paper, we investigate the bandwidth of the strong product of two connected graphs. Let G be a connected graph. We denote the diameter of G by D(G). Let d be a positive integer and let x,y be two vertices of G. Let denote the set of vertices v so that the distance between x and v in G is at most d. We define δd(G) as the minimum value of over all vertices x of G. Let denote the set of vertices z such that the distance between x and z in G is at most d-1 and z is adjacent to y. We denote the larger of and by . We define η(G)=1 if G is complete and η(G) as the minimum of over all pair of vertices x,y of G otherwise. Let G and H be two connected graphs. Among other results, we prove that if δD(H)(G)?B(G)D(H)+1 and B(H)=⌈(|V(H)|+η(H)-2)/D(H)⌉, then B(G(SP)H)=B(G)|V(H)|+B(H). Moreover, we show that this result determines the bandwidth of the strong product of some classes of graphs. Furthermore, we study the bandwidth of the strong product of power of paths with complete bipartite graphs.  相似文献   

10.
Let G=(V,E) be a simple, undirected graph of order n and size m with vertex set V, edge set E, adjacency matrix A and vertex degrees Δ=d1d2≥?≥dn=δ. The average degree of the neighbor of vertex vi is . Let D be the diagonal matrix of degrees of G. Then L(G)=D(G)−A(G) is the Laplacian matrix of G and Q(G)=D(G)+A(G) the signless Laplacian matrix of G. Let μ1(G) denote the index of L(G) and q1(G) the index of Q(G). We survey upper bounds on μ1(G) and q1(G) given in terms of the di and mi, as well as the numbers of common neighbors of pairs of vertices. It is well known that μ1(G)≤q1(G). We show that many but not all upper bounds on μ1(G) are still valid for q1(G).  相似文献   

11.
Let K denote a field, and let V denote a vector space over K with finite positive dimension. We consider a pair of linear transformations A : V → V and A : V → V that satisfy (i) and (ii) below:
(i)
There exists a basis for V with respect to which the matrix representing A is irreducible tridiagonal and the matrix representing A is diagonal.
(ii)
There exists a basis for V with respect to which the matrix representing A is irreducible tridiagonal and the matrix representing A is diagonal.
We call such a pair a Leonard pair on V. Let diag(θ0θ1, … , θd) denote the diagonal matrix referred to in (ii) above and let denote the diagonal matrix referred to in (i) above. It is known that there exists a basis u0u1, … , ud for V and there exist scalars ?1?2, … , ?d in K such that Aui = θiui + ui+1 (0 ? i ? d − 1), Aud = θdud, , . The sequence ?1?2, … , ?d is called the first split sequence of the Leonard pair. It is known that there exists a basis v0v1, … , vd for V and there exist scalars ?1?2, … , ?d in K such that Avi = θdivi + vi+1 (0 ? i ? d − 1),Avd = θ0vd, , . The sequence ?1?2, … , ?d is called the second split sequence of the Leonard pair. We display some attractive formulae for the first and second split sequence that involve the trace function.  相似文献   

12.
Let P be a finite poset and H(P) be the hypergraph whose vertices are the points of P and whose edges are the maximal intervals in P. We study the domatic number d(G(P)) and the total domatic number dt(G(P)) of the 2-section graph G(P) of H(P). For the subset Pl,u of P induced by consecutive levels of P, we give exact values of d(G(Pl,u)) when P is the chain product Cn1×Cn2. According to the values of l,u,n1,n2, the maximal domatic partition is exhibited. Moreover, we give some exact values or lower bounds for d(G(PQ)) and dt(G(Pl,u)), when ∗ is the direct sum, the linear sum or the Cartesian product. Finally we show that the domatic number and the total domatic number problems in this class of graphs are NP-complete.  相似文献   

13.
The Wiener index W(G)=∑{u,v}⊂V(G)d(u,v), the hyper-Wiener index and the reverse-Wiener index , where d(u,v) is the distance of two vertices u,v in G, d2(u,v)=d(u,v)2, n=|V(G)| and D is the diameter of G. In [M. Eliasi, B. Taeri, Four new sums of graphs and their Wiener indices, Discrete Appl. Math. 157 (2009) 794-803], Eliasi and Taeri introduced the F-sums of two connected graphs. In this paper, we determine the hyper- and reverse-Wiener indices of the F-sum graphs and, subject to some condition, we present some exact expressions of the reverse-Wiener indices of the F-sum graphs.  相似文献   

14.
For a connected graph G and any two vertices u and v in G, let D(u,v) denote the length of a longest u-v path in G. A hamiltonian coloring of a connected graph G of order n is an assignment c of colors (positive integers) to the vertices of G such that |c(u)−c(v)|+D(u,v)≥n−1 for every two distinct vertices u and v in G. The value of a hamiltonian coloring c is the maximum color assigned to a vertex of G. The hamiltonian chromatic number of G is taken over all hamiltonian colorings c of G. In this paper we discuss the hamiltonian chromatic number of graphs G with . As examples, we determine the hamiltonian chromatic number for a class of caterpillars, and double stars.  相似文献   

15.
As an edge variant of the well-known irregularity strength of a graph G=(V,E) we investigate edge irregular total labellings, i.e. functions f:VE→{1,2,…,k} such that f(u)+f(uv)+f(v)≠f(u)+f(uv)+f(v) for every pair of different edges uv,uvE. The smallest possible k is the total edge irregularity strength of G. Confirming a conjecture by Ivan?o and Jendrol’ for a large class of graphs we prove that the natural lower bound is tight for every graph of order n, size m and maximum degree Δ with m>111000Δ. This also implies that the probability that a random graph from G(n,p(n)) satisfies the Ivan?o-Jendrol’ Conjecture tends to 1 as n for all functions p∈[0,1]N. Furthermore, we prove that is an upper bound for every graph G of order n and size m≥3 whose edges are not all incident to a single vertex.  相似文献   

16.
A Roman domination function on a graph G=(V(G),E(G)) is a function f:V(G)→{0,1,2} satisfying the condition that every vertex u for which f(u)=0 is adjacent to at least one vertex v for which f(v)=2. The weight of a Roman dominating function is the value f(V(G))=∑uV(G)f(u). The minimum weight of a Roman dominating function on a graph G is called the Roman domination number of G. Cockayne et al. [E. J. Cockayne et al. Roman domination in graphs, Discrete Mathematics 278 (2004) 11-22] showed that γ(G)≤γR(G)≤2γ(G) and defined a graph G to be Roman if γR(G)=2γ(G). In this article, the authors gave several classes of Roman graphs: P3k,P3k+2,C3k,C3k+2 for k≥1, Km,n for min{m,n}≠2, and any graph G with γ(G)=1; In this paper, we research on regular Roman graphs and prove that: (1) the circulant graphs and , n⁄≡1 (mod (2k+1)), (n≠2k) are Roman graphs, (2) the generalized Petersen graphs P(n,2k+1)( (mod 4) and ), P(n,1) (n⁄≡2 (mod 4)), P(n,3) ( (mod 4)) and P(11,3) are Roman graphs, and (3) the Cartesian product graphs are Roman graphs.  相似文献   

17.
The Randi? index of a graph G is defined as , where d(u) is the degree of vertex u and the summation goes over all pairs of adjacent vertices u, v. A conjecture on R(G) for connected graph G is as follows: R(G)≥r(G)−1, where r(G) denotes the radius of G. We proved that the conjecture is true for biregular graphs, connected graphs with order n≤10 and tricyclic graphs.  相似文献   

18.
Hao Li  Jianping Li 《Discrete Mathematics》2008,308(19):4518-4529
Let G=(V,E) be a connected graph of order n, t a real number with t?1 and MV(G) with . In this paper, we study the problem of some long paths to maintain their one or two different endpoints in M. We obtain the following two results: (1) for any vertex vV(G), there exists a vertex uM and a path P with the two endpoints v and u to satisfy , , dG(u)+1-t}; (2) there exists either a cycle C to cover all vertices of M or a path P with two different endpoints u0 and up in M to satisfy , where .  相似文献   

19.
If G is a connected graph with vertex set V, then the degree distance of G, D(G), is defined as , where degw is the degree of vertex w, and d(u,v) denotes the distance between u and v. We prove the asymptotically sharp upper bound for graphs of order n and diameter d. As a corollary we obtain the bound for graphs of order n. This essentially proves a conjecture by Tomescu [I. Tomescu, Some extremal properties of the degree distance of a graph, Discrete Appl. Math. (98) (1999) 159-163].  相似文献   

20.
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号