Search arXivSearch

arXiv · 2411.17127

C sequential optimization numbers

Abstract

This work establishes a definition that is more basic than the previous ones, for the Stirling numbers of first kind, which is a sufficient but not necessary condition for the previous definition. Based on this definition and a combinatorial problem, we discover C sequential optimization numbers, where C is a k+1-tuple vector. For C= (0,1), we prove that C sequential optimization numbers are the unsigned Stirling numbers of first kind. We can deduce the properties of C sequential optimization numbers by following the properties of the Stirling numbers of first kind and we give specific examples such as the recurrence formula and an instance of C sequential optimization numbers. We also give specific new properties such as an explicit upper bound of them. We prove the probability that the unsigned Stirling numbers of first kind are concentrated in O(logn) is nearly 100%.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Zile Hui. 2024-11-26. C sequential optimization numbers. https://arxiv.org/abs/2411.17127

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Rooted Spider Embeddings and the Erd\H os-Sós Conjecture

Under a local density condition, we prove that every $k$-edge spider embeds at any prescribed center of degree at least $k$, unless all legs are even and the host graph has one of two specified structures. These structures contain complete bipartite subgraphs with prescribed neighborhoods. The proof uses path rerouting and three exchange lemmas that describe equality in neighborhood estimates. As a consequence, we recover the Erd\H os-Sós bound for all spiders.

math.CO

Generalized Goulden-Yong duals and signed minimal factorizations

In this paper, we give two combinatorial ways to study signed exceptional sequences. First, we show the equivalence between one-way reflections and relatively projective representations. Secondly, we construct generalized Goulden-Yong duals using reverse Garside element actions and folded chord diagrams. We then give two applications of the generalized Goulden-Yong duals: constructing generalized Prüfer codes and counting signed factorizations using the matrix-tree theorem.

math.CO

Explicit expressions for iterates of power series

We present several formulas for both the discrete and fractional iterates of an invertible power series $f$, using a new unifying approach based on umbral calculus. Known formulas are extended, and their proofs simplified, while new expressions are introduced. In particular, by employing $q$-calculus identities, we eliminate the requirement for $f'(0)$ to equal $1$ and the resulting general expressions for the iterative logarithm are obtained as well.

math.CO