Abstract
Kim et al. (Proc. Jangjeon Math. Soc. 21(4):589–598, 2018) have studied the central Fubini polynomials associated with central factorial numbers of the second kind. Motivated by their work, we introduce degenerate version of the central Fubini polynomials. We show that these polynomials can be represented by the fermionic p-adic integral on \(\mathbb{Z}_{p}\). From the fermionic p-adic integral equations, we derive some new properties related to degenerate central factorial numbers of the second kind and degenerate Euler numbers of the second kind.
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1 Introduction
Let p be chosen as a fixed odd prime number. We make use of the following notations: \(\mathbb{Z}_{p}\), \(\mathbb{Q}_{p}\), \(\mathbb{C}_{p}\), \(\mathbb{N} \), \(\mathbb{N} _{0}\) and \(\mathbb{R} \) denote the ring of p-adic integers, the field of p-adic rational numbers, the completion of an algebraic closure of \(\mathbb{Q}_{p}\), the set of natural number, the set of natural numbers containing zero and the set of real numbers, respectively. We say that \(\vert \cdot \vert _{p}\) is normalized if \(\vert {p} \vert _{p}=p^{-1}\). Let \(C ( \mathbb{Z} _{p} ) \) be the space of \(\mathbb{C} _{p}\)-valued continuous functions on \(\mathbb{Z} _{p}\). For \(f\in C ( \mathbb{Z} _{p} ) \), the fermionic p-adic integral of a function f was originally constructed by Kim [12] as follows:
Here \(I_{-1}\) is used symbolically due to its fermionic distribution \(\mu _{-1}\). It follows from (1) that
with the assumption \(f_{1} ( x ) :=f ( x+1 ) \). For more information about the applications of p-adic integrals, one can refer to [4, 8, 9, 14, 17, 22] and the references cited therein.
Very recently, Kim et al. [20] showed that the Fubini polynomials can be represented by the fermionic p-adic integral on \(\mathbb{Z}_{p}\) as follows:
For more information about the Fubini polynomials, one can look at the references [5, 10, 24]. The Stirling numbers of the second kind are defined by (see [11])
where
or equivalently by
Let \(\lambda \neq 0\) be any real numbers. Carlitz [1] introduced the degenerate Bernoulli polynomials by means of the following generating function:
When \(x=0\) in (6), \(\beta _{n}(\lambda )=:\beta _{n}(0;\lambda )\) are the degenerate Bernoulli numbers. It is clear from (6) that
where \(B_{n} ( x ) \) are the Bernoulli polynomials given by
Parallel to (6), the degenerate Euler polynomials are defined by means of the following generating function:
When \(x=0\) in (9), \(\mathit{E}_{n}(\lambda )=:\mathit{E}_{n}(0;\lambda )\) are the degenerate Euler numbers.
For \(0\neq \lambda \in \mathbb{R} \), it is worth noting from [16, 21] that
where
The degenerate Euler numbers of the second kind are given by
It is obvious that
where \(E_{n}^{\ast }\) are the Euler numbers of the second kind given by
By (5) and (6), the degenerate Stirling polynomials of the second kind are defined by the generating function
where \(x\in \mathbb{R}\), and k is a nonnegative integer (see [13]). In the case \(x=0\), \(S_{2,\lambda }^{(0)}(n,k):=S_{2,\lambda }(n,k)\) are the degenerate Stirling numbers of the second kind, cf. [1–4, 6, 7].
Since
we have
where \(S_{2}^{(x)}(n,k)\) are the Stirling polynomials of the second kind given by
The central factorial numbers of the second kind, denoted by \(T(j,k)\) with the conditions \(j\geqslant 0\) and \(k\geq 0\), are defined by
where
or equivalently by
Kim–Kim [15] introduced the degenerate central factorial polynomials of the second kind as follows:
where k is a nonnegative integer. The case \(x=0\) yields \(T_{\lambda }(j,k)=:T_{\lambda }(j,k| 0)\) that are the degenerate central factorial numbers of the second kind.
This paper is organized as follows. In Sect. 2, we consider the generating function of type 2 degenerate central Fubini polynomials and give some properties of these numbers and polynomials. In Sect. 3, we introduce degenerate central Fubini numbers and polynomials and derive some properties of these polynomials by using p-adic fermionic integrals on \(\mathbb{Z}_{p} \). In Sect. 4, we introduce type 2 degenerate central Fubini polynomials of two variables and construct some properties of these polynomials. Also, these polynomials are closely related to degenerate central factorial numbers of the second kind and degenerate Euler numbers of the second kind.
2 On type 2 degenerate central Fubini polynomials
In this section, we assume that \(\lambda \neq 0\) is any real number. We begin with giving type 2 degenerate central Fubini polynomials as follows:
Note that
By (14), one may see that
Thus, we state the following theorem.
Theorem 2.1
Let n be a nonnegative integer. Then the following holds:
The degenerate ordered Bell numbers are defined by the generating function to be
where
Corollary 2.1
Taking \(x=1\) in (15) gives
By (14), we have
Thus, we state the following theorem.
Theorem 2.2
Let n be a nonnegative integer. Then the following relation holds true:
By (9), we have
Thus we arrive at the following theorem.
Theorem 2.3
Let n be a nonnegative integer. Then the following relation between \(E_{n,\lambda }^{\ast }\) and \(T_{\lambda }(n,2k)\) holds true:
The following computations based on (14) show that
Thus, we obtain the following theorem.
Theorem 2.4
Let n be a nonnegative integer. Then the following explicit summation formula holds true:
3 On type 2 degenerate central Fubini polynomials by the fermionic p-adic integral on \(\mathbb{Z}_{p}\)
In this section, let us assume that \(\lambda \in \mathbb{C} _{p}\) and \(t\in \mathbb{C}_{p}\) with the condition \(\vert \lambda t \vert _{p}< p^{-\frac{1}{p-1}}\). By (3) and (14), it becomes
From (18), we have
Thus, we get the following theorem.
Theorem 3.1
Let n be a nonnegative integer. The following symmetric relation holds true:
By (19), we get
It follows from (20) that
Thus we state the following theorem.
Theorem 3.2
For \(n>0\), we have
For \(n\in \mathbb{N}\), by (21), we get
Thus we get the following corollary.
Corollary 3.1
Let n be a positive integer satisfying with \(n\geq 2\). Then the following equation holds true:
4 On type 2 degenerate central Fubini polynomials of two variable
In this section, we assume that \(\lambda \neq 0\) is any real number. We are now in a position to state the type 2 degenerate central Fubini polynomials of two variable as follows:
When \(x=0\), \(F_{n,\lambda }^{(C)}(0;y)=F_{n,\lambda }^{(C)}(y)\), \(F_{n,\lambda }^{(C)}(0;1)=F_{n,\lambda }^{(C)} ( 1 ) \) are called the central Fubini polynomials and the central Fubini numbers, respectively.
Since
it is not difficult to show that
which is the generating function of the central Fubini polynomials of two variables; see [18].
From (22), we have
Thus, we obtain the following theorem.
Theorem 4.1
Let n be a nonnegative integer. Then the following identity holds:
Changing t to \(\frac{e^{\lambda t}-1}{\lambda }\) in (22) gives
By (5) and (23), we have the following theorem.
Theorem 4.2
Let n be a nonnegative integer. Then the following identity holds:
By (22), we see that
By (8) and (24), we obtain the following theorem.
Theorem 4.3
Let n be a nonnegative integer. The following formula holds true:
Let us observe that
Therefore, by (26), we obtain the following theorem.
Theorem 4.4
Let n be a nonnegative integer with \(y_{1}\neq y_{2}\). The following formula holds true:
Remark 4.1
Taking \(x_{1}=x_{2}=0\) in Theorem 4.4 reduces to
5 Conclusion
In the present paper, we have considered type 2 degenerate central Fubini and type 2 degenerate central Fubini polynomials of two variables. We investigated some properties, identities and recurrence relations for these polynomials by making use of generating functions and p-adic fermionic integrals on \(\mathbb{Z}_{p}\). In addition, we have obtained some results related to degenerate central factorial numbers of the second kind and degenerate Euler numbers of the second kind.
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Acknowledgements
We would like to thank the reviewers for their valuable suggestions and comments. We are also indebted to and thank Prof. Dr. Dae San Kim at Sogang University (South Korea) for his valuable suggestions and comments.
Funding
The authors would like to thank the Deanship of Scientific Research at Majmaah University for supporting this work under project number No. R-1441-169.
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Sharma, S.K., Khan, W.A., Araci, S. et al. New construction of type 2 degenerate central Fubini polynomials with their certain properties. Adv Differ Equ 2020, 587 (2020). https://doi.org/10.1186/s13662-020-03055-4
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DOI: https://doi.org/10.1186/s13662-020-03055-4