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1.
Letk be a positive integer, and letG be a graph of ordern withn 4k – 5,kn even and minimum degree at leastk. We prove that if the degree sum of each pair of nonadjacent vertices is at leastn, thenG has ak-factor.  相似文献   

2.
Let G be an edge weighted graph with n nodes, and let A(3,G) be the average weight of a triangle in G. We show that the number of triangles with weight at most equal to A(3,G) is at least (n−2) and that this bound is sharp for all n≥7. Extensions of this result to cliques of cardinality k>3 are also discussed.  相似文献   

3.
In [4] we constructed certain homology representations of a finite group G of type An, Bn or Cn, and showed that these representations can be used to sift out the reflection compound characters of G. In the present note, we show that for a group G of type Dn, each reflection compound character π(k), 2 k n − 2, determines a unique “obstruction” character θ(k), which occurs with positive multiplicity in every homology representation containing π(k).  相似文献   

4.
In this work we show that among all n-vertex graphs with edge or vertex connectivity k, the graph G=Kk(K1+Knk−1), the join of Kk, the complete graph on k vertices, with the disjoint union of K1 and Knk−1, is the unique graph with maximum sum of squares of vertex degrees. This graph is also the unique n-vertex graph with edge or vertex connectivity k whose hyper-Wiener index is minimum.  相似文献   

5.
A variation in the classical Turan extrernal problem is studied. A simple graphG of ordern is said to have propertyPk if it contains a clique of sizek+1 as its subgraph. Ann-term nonincreasing nonnegative integer sequence π=(d1, d2,⋯, d2) is said to be graphic if it is the degree sequence of a simple graphG of ordern and such a graphG is referred to as a realization of π. A graphic sequence π is said to be potentiallyP k-graphic if it has a realizationG having propertyP k . The problem: determine the smallest positive even number σ(k, n) such that everyn-term graphic sequence π=(d1, d2,…, d2) without zero terms and with degree sum σ(π)=(d 1+d 2+ …+d 2) at least σ(k,n) is potentially Pk-graphic has been proved positive. Project supported by the National Natural Science Foundation of China (Grant No. 19671077) and the Doctoral Program Foundation of National Education Department of China.  相似文献   

6.
A function f:V(G)→{+1,−1} defined on the vertices of a graph G is a signed dominating function if for any vertex v the sum of function values over its closed neighborhood is at least 1. The signed domination number γs(G) of G is the minimum weight of a signed dominating function on G. By simply changing “{+1,−1}” in the above definition to “{+1,0,−1}”, we can define the minus dominating function and the minus domination number of G. In this note, by applying the Turán theorem, we present sharp lower bounds on the signed domination number for a graph containing no (k+1)-cliques. As a result, we generalize a previous result due to Kang et al. on the minus domination number of k-partite graphs to graphs containing no (k+1)-cliques and characterize the extremal graphs.  相似文献   

7.
Greedily Finding a Dense Subgraph   总被引:3,自引:0,他引:3  
Given an n-vertex graph with nonnegative edge weights and a positive integer k ≤ n, our goal is to find a k-vertex subgraph with the maximum weight. We study the following greedy algorithm for this problem: repeatedly remove a vertex with the minimum weighted-degree in the currently remaining graph, until exactly k vertices are left. We derive tight bounds on the worst case approximation ratio R of this greedy algorithm: (1/2 + n/2k)2 − O(n − 1/3) ≤ R ≤ (1/2 + n/2k)2 + O(1/n) for k in the range n/3 ≤ k ≤ n and 2(n/k − 1) − O(1/k) ≤ R ≤ 2(n/k − 1) + O(n/k2) for k < n/3. For k = n/2, for example, these bounds are 9/4 ± O(1/n), improving on naive lower and upper bounds of 2 and 4, respectively. The upper bound for general k compares well with currently the best (and much more complicated) approximation algorithm based on semidefinite programming.  相似文献   

8.
Let denote the subspace arrangement formed by all linear subspaces in given by equations of the form
1xi1=2xi2==kxik,
where 1i1<<ikn and (1,…,k){+1,−1}k.Some important topological properties of such a subspace arrangement depend on the topology of its intersection lattice. In a previous work on a larger class of subspace arrangements by Björner and Sagan (J. Algebraic Combin. 5 (1996) 291–314) the topology of the intersection lattice turned out to be a particularly interesting and difficult case.We prove in this paper that Pure(Πn,k±) is shellable, hence that Πn,k± is shellable for k>n/2. Moreover, we prove that unless in−2 (mod k−2) or in−3 (mod k−2), and that is free abelian for in−2 (mod k−2). In the special case of Π2k,k± we determine homology completely. Our tools are generalized lexicographic shellability, as introduced in Kozlov (Ann. Combin. 1 (1997) 67–90), and a spectral sequence method for the computation of poset homology first used in Hanlon (Trans. Amer. Math. Soc. 325 (1991) 1–37).We state implications of our results on the cohomology of the complements of the considered arrangements.  相似文献   

9.
The odd girth of a graph G gives the length of a shortest odd cycle in G. Let ƒ(k, g) denote the smallest n such that there exists a k-regular graph of order n and odd girth g. It is known that ƒ(k, g) ≥ kg/2 and that ƒ(k, g) = kg/2 if k is even. The exact values of ƒ(k, g) are also known if k = 3 or g = 5. Let xe denote the smallest even integer no less than x, δ(g) = (−1)g − 1/2, and s(k) = min {p + q | k = pq, where p and q are both positive integers}. It is proved that if k ≥ 5 and g ≥ 7 are both odd, then [formula] with the exception that ƒ(5, 7) = 20.  相似文献   

10.
The old well-known result of Chartrand, Kaugars and Lick says that every k-connected graph G with minimum degree at least 3k/2 has a vertex v such that Gv is still k-connected. In this paper, we consider a generalization of the above result [G. Chartrand, A. Kaigars, D.R. Lick, Critically n-connected graphs, Proc. Amer. Math. Soc. 32 (1972) 63–68]. We prove the following result:Suppose G is a k-connected graph with minimum degree at least 3k/2+2. Then G has an edge e such that GV(e) is still k-connected.The bound on the minimum degree is essentially best possible.  相似文献   

11.
We consider the class of primitive stochastic n×n matrices A, whose exponent is at least (n2−2n+2)/2+2. It is known that for such an A, the associated directed graph has cycles of just two different lengths, say k and j with k>j, and that there is an α between 0 and 1 such that the characteristic polynomial of A is λn−αλnj−(1−α)λnk. In this paper, we prove that for any mn, if α1/2, then Am+kAmAm1wT, where 1 is the all-ones vector and wT is the left-Perron vector for A, normalized so that wT1=1. We also prove that if jn/2, n31 and , then Am+jAmAm1wT for all sufficiently large m. Both of these results lead to lower bounds on the rate of convergence of the sequence Am.  相似文献   

12.
A family of simple (that is, cycle-free) paths is a path decomposition of a tournament T if and only if partitions the acrs of T. The path number of T, denoted pn(T), is the minimum value of | | over all path decompositions of T. In this paper it is shown that if n is even, then there is a tournament on n vertices with path number k if and only if n/2 k n2/4, k an integer. It is also shown that if n is odd and T is a tournament on n vertices, then (n + 1)/2 pn(T) (n2 − 1)/4. Moreover, if k is an integer satisfying (i) (n + 1)/2 k n − 1 or (ii) n < k (n2 − 1)/4 and k is even, then a tournament on n vertices having path number k is constructed. It is conjectured that there are no tournaments of odd order n with odd path number k for n k < (n2 − 1)/4.  相似文献   

13.
Paul Seymour conjectured that any graphG of ordern and minimum degree of at leastk/k+1n contains thekth power of a Hamiltonian cycle. Here, we prove this conjecture for sufficiently largen.  相似文献   

14.
The Randić index R(G) of a graph G is defined by , where d(u) is the degree of a vertex u in G and the summation extends over all edges uv of G. A conjecture about the Randić index says that for any triangle-free graph G of order n with minimum degree δk≥1, one has , where the equality holds if and only if G=Kk,nk. In this short note we give a confirmative proof for the conjecture.  相似文献   

15.
Given a graph G and a subgraph H of G, let rb(G,H) be the minimum number r for which any edge-coloring of G with r colors has a rainbow subgraph H. The number rb(G,H) is called the rainbow number of H with respect to G. Denote as mK2 a matching of size m and as Bn,k the set of all the k-regular bipartite graphs with bipartition (X,Y) such that X=Y=n and kn. Let k,m,n be given positive integers, where k≥3, m≥2 and n>3(m−1). We show that for every GBn,k, rb(G,mK2)=k(m−2)+2. We also determine the rainbow numbers of matchings in paths and cycles.  相似文献   

16.
Let and be two intersecting families of k-subsets of an n-element set. It is proven that | | ≤ (k−1n−1) + (k−1n−1) holds for , and equality holds only if there exist two points a, b such that {a, b} ∩ F ≠ for all F . For an example showing that in this case max | | = (1−o(1))(kn) is given. This disproves an old conjecture of Erdös [7]. In the second part we deal with several generalizations of Kneser's conjecture.  相似文献   

17.
We consider the problem of finding a smallest set of edges whose addition four-connects a triconnected graph. This is a fundamental graph-theoretic problem that has applications in designing reliable networks and improving statistical database security. We present an O(n · α(m, n) + m)-time algorithm for four-connecting an undirected graph G that is triconnected by adding the smallest number of edges, where n and m are the number of vertices and edges in G, respectively, and α(m, n) is the inverse Ackermann function. This is the first polynomial time algorithm to solve this problem exactly.In deriving our algorithm, we present a new lower bound for the number of edges needed to four-connect a triconnected graph. The form of this lower bound is different from the form of the lower bound known for biconnectivity augmentation and triconnectivity augmentation. Our new lower bound applies for arbitrary k and gives a tighter lower bound than the one known earlier for the number of edges needed to k-connect a (k − 1)-connected graph. For k = 4, we show that this lower bound is tight by giving an efficient algorithm to find a set of edges whose size equals the new lower bound and whose addition four-connects the input triconnected graph.  相似文献   

18.
Let n and k be positive integers. Let Cq be a cyclic group of order q. A cyclic difference packing (covering) array, or a CDPA(k, n; q) (CDCA(k, n; q)), is a k × n array (aij) with entries aij (0 ≤ ik−1, 0 ≤ jn−1) from Cq such that, for any two rows t and h (0 ≤ t < hk−1), every element of Cq occurs in the difference list at most (at least) once. When q is even, then nq−1 if a CDPA(k, n; q) with k ≥ 3 exists, and nq+1 if a CDCA(k, n; q) with k ≥ 3 exists. It is proved that a CDCA(4, q+1; q) exists for any even positive integers, and so does a CDPA(4, q−1; q) or a CDPA(4, q−2; q). The result is established, for the most part, by means of a result on cyclic difference matrices with one hole, which is of interest in its own right.  相似文献   

19.
We describe an infinite family Mn,k, with n≥4 and 1≤kn−2, of minimal non-orientable matroids of rank n on a set with 2n elements. For k=1,n−2, Mn,k is isomorphic to the Bland–Las Vergnas matroid Mn. For every 2≤kn−3 a new minimal non-orientable matroid is obtained. All proper minors of the matroids Mn,k are representable over .  相似文献   

20.
A near perfect matching is a matching saturating all but one vertex in a graph. If G is a connected graph and any n independent edges in G are contained in a near perfect matching, then G is said to be defect n-extendable. If for any edge e in a defect n-extendable graph G, Ge is not defect n-extendable, then G is minimal defect n-extendable. The minimum degree and the connectivity of a graph G are denoted by δ(G) and κ(G) respectively. In this paper, we study the minimum degree of minimal defect n-extendable bipartite graphs. We prove that a minimal defect 1-extendable bipartite graph G has δ(G)=1. Consider a minimal defect n-extendable bipartite graph G with n≥2, we show that if κ(G)=1, then δ(G)≤n+1 and if κ(G)≥2, then 2≤δ(G)=κ(G)≤n+1. In addition, graphs are also constructed showing that, in all cases but one, there exist graphs with minimum degree that satisfies the established bounds.  相似文献   

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