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Notes on the uniqueness of meromorphic functions concerning differential polynomials

• Fengrong Zhang
• Linlin Wu
Open Access
Research

Abstract

This paper is devoted to the uniqueness problem on meromorphic functions whose differential polynomials share one nonzero finite constant. We improve some previous results and answer two open problems posed by Dyavanal.

Keywords

Differential polynomial Meromorphic function Sharing value Uniqueness

30D35

1 Introduction

We assume that the reader is familiar with the usual notation and basic results of the Nevanlinna theory [4, 10]. Let $$f(z)$$ and $$g(z)$$ be two nonconstant meromorphic functions, and let a be a complex number. We say that $$f(z)$$ and $$g(z)$$ share a CM (IM) provided that $$f(z)-a$$ and $$g(z)-a$$ have the same zeros counting multiplicity (ignoring multiplicity). In addition, f and g sharing ∞ CM (IM) means that f and g have the same poles counting multiplicity (ignoring multiplicity).

The uniqueness theory of meromorphic functions mainly studies conditions under which there is a unique function satisfying the given hypothesis. A great deal of classical results in this field can be seen in [10], where Chap. 9 introduces many works dealing with the relation between two meromorphic functions while their derivatives share values. Over past two decades, the research on the derivatives of polynomials of meromorphic functions sharing values has been ongoing. In 1996, Fang and Hua [3] investigated the relation between two transcendental entire functions f and g when $$f^{n}f'$$ and $$g^{n}g'$$ share 1 CM. Clearly, $$(f^{n+1})'=(n+1)f^{n}f'$$. Later, Yang and Hua [9] considered this problem for meromorphic functions f and g, and they proved the following theorem.

Theorem A

Letfandgbe two nonconstant meromorphic functions, let$$n\geq11$$be an integer, and let$$a\in\mathbb{C}\setminus\{0\}$$. If$$f^{n}f'$$and$$g^{n}g'$$shareaCM, then$$f(z)\equiv dg(z)$$for some$$(n+1)$$th roots of unityd, or$$g(z)=c_{1}e^{cz}$$and$$f(z)=c_{2}e^{-cz}$$, wherec, $$c_{1}$$, $$c_{2}$$are constants satisfying$$(c_{1}c_{2})^{n+1}c^{2}=-a^{2}$$.

Without loss of generality, in Theorem A the complex number a can be replaced by 1. Noting that $$(\frac{1}{n+2}f^{n+2}-\frac {1}{n+1}f^{n+1})'=f^{n}(f-1)f'$$, Fang and Hong [2] obtained the following result.

Theorem B

Letfandgbe two transcendental entire functions, let$$n\geq11$$be an integer. If$$f^{n}(f-1)f'$$and$$g^{n}(g-1)g'$$share 1 CM, then$$f(z)\equiv g(z)$$.

Three years later, Lin and Yi [6] improved their result to $$n\geq7$$ and also studied the case that f and g are meromorphic functions. Moreover, they discussed the other polynomial $$\frac{1}{n+3}f^{n+3}-\frac{2}{n+2}f^{n+2}+\frac{1}{n+1}f^{n+1}$$ of f with its derivative as $$f^{n}(f-1)^{2}f'$$. In fact, Lin and Yi proved the following two theorems.

Theorem C

Letfandgbe two nonconstant meromorphic functions, and let$$n\geq12$$be an integer. If$$f^{n}(f-1)f'$$and$$g^{n}(g-1)g'$$share 1 CM, then
$$f=\frac{(n+2)h(1-h^{n+1})}{(n+1)(1-h^{n+2})},\qquad g=\frac {(n+2)(1-h^{n+1})}{(n+1)(1-h^{n+2})},$$
(1.1)
wherehis a nonconstant meromorphic function.

Theorem D

Letfandgbe two nonconstant meromorphic functions, and let$$n\geq13$$be an integer. If$$f^{n}(f-1)^{2}f'$$and$$g^{n}(g-1)^{2}g'$$share 1 CM, then$$f(z)\equiv g(z)$$.

Recently, by introducing the notion of multiplicity, Dyavanal [1] deeply investigated such a uniqueness problem and improved Theorems A, C, and D as follows.

Theorem E

Letfandgbe two nonconstant meromorphic functions with zeros and poles of multiplicities at leasts, wheresis a positive integer. Let$$n\geq2$$be an integer satisfying$$(n+1)s\geq12$$. If$$f^{n}f'$$and$$g^{n}g'$$share 1 CM, then$$f(z)\equiv dg(z)$$for some$$(n+1)$$th roots of unityd, or$$g(z)=c_{1}e^{cz}$$and$$f(z)=c_{2}e^{-cz}$$, wherec, $$c_{1}$$, $$c_{2}$$are constants satisfying$$(c_{1}c_{2})^{n+1}c^{2}=-1$$.

Theorem F

Letfandgbe two nonconstant meromorphic functions with zeros and poles of multiplicities at leasts, wheresis a positive integer. Letnbe an integer satisfying$$(n-2)s\geq10$$. If$$f^{n}(f-1)f'$$and$$g^{n}(g-1)g'$$share 1 CM, then (1.1) holds.

Theorem G

Letfandgbe two nonconstant meromorphic functions with zeros and poles of multiplicities at leasts, wheresis a positive integer. Letnbe an integer satisfying$$(n-3)s\geq10$$. If$$f^{n}(f-1)^{2}f'$$and$$g^{n}(g-1)^{2}g'$$share 1 CM, then$$f(z)\equiv g(z)$$.

In Theorem F, if $$f(z)\not\equiv g(z)$$, then f, g must satisfy (1.1), so that
$$f=\frac{(n+2)h(h-\beta_{1})(h-\beta_{2})\cdots(h-\beta_{n})}{(n+1)(h-\alpha _{1})(h-\alpha_{2})\cdots(h-\alpha_{n+1})},$$
(1.2)
where $$\alpha_{i}$$ (≠1) ($$i=1,2,\ldots,n+1$$) and $$\beta_{j}$$ (≠1) ($$j=1,2,\ldots,n$$) are distinct roots of $$w^{n+2}=1$$ and $$w^{n+1}=1$$, respectively. Thus by Valiron–Mokhon’ko theorem (see [10, Thm. 1.13]) $$T(r,f)=(n+1)T(r,h)+S(r,h)$$. From (1.2) it follows that the poles of h are not poles of f and
$$\overline{N}(r,f)=\sum_{i=1}^{n+1} \overline{N}\biggl(r,\frac{1}{h-\alpha_{i}}\biggr),\qquad \overline{N}\biggl(r, \frac{1}{f}\biggr)=\sum_{j=1}^{n} \overline{N}\biggl(r,\frac {1}{h-\beta_{j}}\biggr)+\overline{N}\biggl(r, \frac{1}{h}\biggr).$$
By the second main theorem we have
\begin{aligned} 2nT(r,h) \leq&\sum_{i=1}^{n+1}\overline{N} \biggl(r,\frac{1}{h-\alpha_{i}}\biggr)+\sum_{j=1}^{n} \overline{N}\biggl(r,\frac{1}{h-\beta_{j}}\biggr)+\overline{N}\biggl(r, \frac{1}{h}\biggr)+S(r,h) \\ \leq&\overline{N}(r,f)+\overline{N}\biggl(r,\frac{1}{f}\biggr)+S(r,h) \\ \leq&\frac{1}{s}N(r,f)+\frac{1}{s}N\biggl(r,\frac{1}{f} \biggr)+S(r,h) \\ \leq&\frac{2}{s}T(r,f)+S(r,h), \end{aligned}
which leads to $$n\leq(n+1)/s$$. From $$(n-2)s\geq10$$ we have $$n\geq 3$$. According to the above argument, we can deduce a contradiction for $$s\geq2$$. Therefore, in Theorem F, if $$s\geq2$$, then we must have $$f\equiv g$$.

In the end of his paper, Dyavanal posed four open problems. Two of them, which we are interested in, are as follows.

Problem 1

Can a CM shared value be replaced by an IM shared value in Theorems EG?

Problem 2

Are the conditions $$(n+1)s\geq12$$ in Theorem E, $$(n-2)s\geq10$$ in Theorem F, and $$(n-3)s\geq10$$ in Theorem G sharp?

In this paper, we try to answer these two questions. We obtain five theorems, which replace CM by IM in Theorems EG and reduce n for $$s\geq7$$ in Theorems FG in Sect. 3.

2 Preliminary lemmas

We denote by $$\overline{N}_{(k}(r,\frac{1}{f-a})$$ the reduced counting function for zeros of $$f-a$$ with multiplicity no less than k. Define
$$N_{k}\biggl(r,\frac{1}{f-a}\biggr)=\overline{N}\biggl(r, \frac{1}{f-a}\biggr)+\overline {N}_{(2}\biggl(r,\frac{1}{f-a} \biggr)+\cdots+\overline{N}_{(k}\biggl(r,\frac{1}{f-a}\biggr).$$

Lemma 2.1

(see [12, Lemma 2.1])

Let$$f(z)$$be a nonconstant meromorphic function, and letpandkbe positive integers. Then
$$N_{p}\biggl(r,\frac{1}{f^{(k)}}\biggr)\leq N_{p+k}\biggl(r, \frac{1}{f}\biggr)+k\overline {N}(r,f)+S(r,f).$$
(2.1)

This lemma can be proved in the same way as [5, Lemma 2.3] in the particular case $$p=2$$.

Lemma 2.2

(see [9, 11])

Letfandgbe two nonconstant meromorphic functions sharing 1 CM. Then we have one of the following three cases:
1. (i)

$$T(r,f)\leq N_{2}(r,1/f)+N_{2}(r,1/g)+N_{2}(r,f)+N_{2}(r,g)+S(r,f)+S(r,g)$$;

2. (ii)

$$f(z)\equiv g(z)$$;

3. (iii)

$$f(z)g(z)\equiv1$$.

Lemma 2.3

Letfandgbe two nonconstant meromorphic functions. Iffandgshare 1 IM, then we have one of the following three cases:
1. (i)

$$T(r,f)\leq N_{2}(r,1/f)+N_{2}(r,1/g)+N_{2}(r,f)+N_{2}(r,g)+2\overline {N}(r,f)+\overline{N}(r,g)+2\overline{N}(r,1/f)+ \overline {N}(r,1/g)+S(r,f)+S(r,g)$$;

2. (ii)

$$f(z)\equiv g(z)$$;

3. (iii)

$$f(z)g(z)\equiv1$$.

Proof

We first introduce some new notation. Let $$z_{0}$$ be a zero of $$f-1$$ with multiplicity p and a zero of $$g-1$$ with multiplicity q. We denote by $$N_{E}^{1)}(r,\frac{1}{f-1})$$ the counting function of the zeros of $$f-1$$ with $$p=q=1$$, by $$\overline{N}_{E}^{(2}(r,\frac{1}{f-1})$$ the counting function of the zeros of $$f-1$$ satisfying $$p=q\geq2$$, and by $$\overline{N}_{L}(r,\frac{1}{f-1})$$ the counting function of the zeros of $$f-1$$ with $$p>q\geq1$$, where each point in these counting functions is counted only once.

We set
$$H(z)= \biggl(\frac{f''}{f'}-2\frac{f'}{f-1} \biggr)- \biggl( \frac{g''}{g'}-2\frac {g'}{g-1} \biggr).$$
(2.2)
Suppose that $$H(z)\not\equiv0$$. Clearly, $$m(r,H)=S(r,f)+S(r,g)$$. If $$z_{0}$$ is a common simple zero of $$f-1$$ and $$g-1$$, then a simple computation on local expansions shows that $$H(z_{0})=0$$, and then
$$N_{E}^{1)}\biggl(r,\frac{1}{f-1}\biggr)\leq N\biggl(r, \frac{1}{H}\biggr)\leq N(r,H)+S(r,f)+S(r,g).$$
(2.3)
The poles of $$H(z)$$ only come from the zeros of $$f'$$ and $$g'$$, the multiple poles of f and g, and the zeros of $$f-1$$ and $$g-1$$ with different multiplicity. By analysis we can deduce that
\begin{aligned} N(r,H) \leq&\overline{N}_{(2}(r,f)+\overline{N}_{(2}(r,g)+ \overline {N}_{(2}\biggl(r,\frac{1}{f}\biggr)+ \overline{N}_{(2}\biggl(r,\frac{1}{g}\biggr) \\ &{}+\overline {N}_{L}\biggl(r,\frac{1}{f-1}\biggr)+\overline{N}_{L} \biggl(r,\frac{1}{g-1}\biggr) \\ &{}+\overline{N}_{0}\biggl(r,\frac{1}{f'}\biggr)+ \overline{N}_{0}\biggl(r,\frac {1}{g'}\biggr)+S(r,f)+S(r,g), \end{aligned}
(2.4)
where $$N_{0}(r,\frac{1}{f'})$$ denotes the counting function of the zeros of $$f'$$ but not that of $$f(f-1)$$, $$\overline{N}_{0}(r,\frac{1}{f'})$$ denotes the corresponding reduced counting function, and $$N_{0}(r,\frac{1}{g'})$$ and $$\overline{N}_{0}(r,\frac{1}{g'})$$ are defined similarly. At the same time, obviously,
$$\overline{N}\biggl(r,\frac{1}{f-1}\biggr)=N_{E}^{1)} \biggl(r,\frac{1}{f-1}\biggr)+\overline {N}_{E}^{(2} \biggl(r,\frac{1}{f-1}\biggr)+\overline{N}_{L}\biggl(r, \frac{1}{f-1}\biggr)+\overline {N}_{L}\biggl(r,\frac{1}{g-1} \biggr).$$
Combining this with (2.3) and (2.4) yields
\begin{aligned} \overline{N}\biggl(r,\frac{1}{f-1}\biggr) \leq&\overline{N}_{(2}(r,f)+ \overline {N}_{(2}(r,g)+\overline{N}_{(2}\biggl(r, \frac{1}{f}\biggr)+\overline{N}_{(2}\biggl(r,\frac {1}{g} \biggr) \\ &{}+2\overline{N}_{L}\biggl(r,\frac{1}{f-1}\biggr)+2 \overline{N}_{L}\biggl(r,\frac{1}{g-1}\biggr)+\overline{N}_{0}\biggl(r,\frac{1}{f'}\biggr) \\ &{}+ \overline{N}_{0}\biggl(r,\frac{1}{g'}\biggr)+\overline {N}_{E}^{(2}\biggl(r,\frac{1}{f-1}\biggr)+ S(r,f)+S(r,g). \end{aligned}
(2.5)
Since
$$\overline{N}\biggl(r,\frac{1}{g-1}\biggr)+\overline{N}_{L} \biggl(r,\frac{1}{g-1}\biggr)+\overline {N}_{E}^{(2} \biggl(r,\frac{1}{f-1}\biggr)\leq N\biggl(r,\frac{1}{g-1}\biggr)\leq T(r,g)+S(r,g),$$
combining this with (2.5), we have
\begin{aligned}& \overline{N}\biggl(r,\frac{1}{f-1}\biggr)+\overline{N}\biggl(r, \frac{1}{g-1}\biggr) \\& \quad \leq \overline{N}_{(2}(r,f)+ \overline{N}_{(2}(r,g)+\overline{N}_{(2}\biggl(r, \frac {1}{f}\biggr)+\overline{N}_{(2}\biggl(r,\frac{1}{g} \biggr)+2\overline{N}_{L}\biggl(r,\frac{1}{f-1}\biggr) \\& \qquad {}+\overline{N}_{L}\biggl(r,\frac{1}{g-1}\biggr)+ \overline{N}_{0}\biggl(r,\frac {1}{f'}\biggr)+ \overline{N}_{0}\biggl(r,\frac{1}{g'}\biggr)+T(r,g)+ S(r,f)+S(r,g). \end{aligned}
We apply the second fundamental theorem to f and g and consider the above inequality. Then
\begin{aligned} T(r,f)+T(r,g) \leq& \overline{N}(r,f)+\overline{N}(r,g)+\overline{N}\biggl(r, \frac {1}{f}\biggr)+\overline{N}\biggl(r,\frac{1}{g}\biggr)+ \overline{N}\biggl(r,\frac {1}{f-1}\biggr) \\ &{}+\overline{N}\biggl(r, \frac{1}{g-1}\biggr) -N_{0}\biggl(r,\frac{1}{f'}\biggr)-N_{0} \biggl(r,\frac{1}{g'}\biggr)+S(r,f)+S(r,g) \\ \leq& N_{2}(r,f)+N_{2}(r,g)+N_{2}\biggl(r, \frac{1}{f}\biggr)+N_{2}\biggl(r,\frac{1}{g}\biggr)+2 \overline {N}_{L}\biggl(r,\frac{1}{f-1}\biggr) \\ &{} +T(r,g)+\overline{N}_{L}\biggl(r,\frac{1}{g-1} \biggr)+S(r,f)+S(r,g). \end{aligned}
Clearly, this leads to
\begin{aligned} T(r,f) \leq& N_{2}(r,f)+N_{2}(r,g)+N_{2}\biggl(r, \frac{1}{f}\biggr)+N_{2}\biggl(r,\frac {1}{g}\biggr)+2 \overline{N}_{L}\biggl(r,\frac{1}{f-1}\biggr) \\ &{}+\overline{N}_{L}\biggl(r,\frac{1}{g-1}\biggr)+S(r,f)+S(r,g). \end{aligned}
(2.6)
By Lemma 2.1 we have
$$\overline{N}_{L}\biggl(r,\frac{1}{f-1}\biggr)+ \overline{N}_{(2}\biggl(r,\frac{1}{f}\biggr)\leq \overline{N} \biggl(r,\frac{1}{f'}\biggr)\leq N_{2}\biggl(r,\frac{1}{f} \biggr)+\overline{N}(r,f)+S(r,f).$$
Then, using this inequality, we get
\begin{aligned} 2\overline{N}_{L}\biggl(r,\frac{1}{f-1}\biggr)+N_{2} \biggl(r,\frac{1}{f}\biggr) \leq&2N_{2}\biggl(r, \frac {1}{f}\biggr)+N_{1)}\biggl(r,\frac{1}{f}\biggr)+2 \overline{N}(r,f)+S(r,f) \\ \leq& N_{2}\biggl(r,\frac{1}{f}\biggr)+2\overline{N}\biggl(r, \frac{1}{f}\biggr)+2\overline {N}(r,f)+S(r,f), \end{aligned}
(2.7)
where $$N_{1)}(r,\frac{1}{f})$$ denotes the counting function of simple zeros of f. Similarly, we obtain
$$\overline{N}_{L}\biggl(r,\frac{1}{g-1}\biggr)+N_{2} \biggl(r,\frac{1}{g}\biggr)\leq N_{2}\biggl(r,\frac {1}{g} \biggr)+\overline{N}\biggl(r,\frac{1}{g}\biggr) +\overline{N}(r,g)+S(r,g).$$
(2.8)
Substituting (2.7) and (2.8) into (2.6), this yields Case (i).
It remains to treat the case $$H(z)\equiv 0$$. Integrating twice results in
$$\frac{1}{f-1}=A\frac{1}{g-1}+B,$$
(2.9)
where $$A\neq0$$ and B are two constants. If now $$B\neq0,-1$$, then we rewrite (2.9) as
$$A\frac{1}{g-1}=-\frac{B(f-\frac{1+B}{B})}{f-1},$$
and then
$$\overline{N}\biggl(r,\frac{1}{f-\frac{1+B}{B}}\biggr)=\overline{N}(r,g).$$
By the second fundamental theorem we obtain
\begin{aligned} T(r,f)&\leq \overline{N}(r,f)+\overline{N}\biggl(r,\frac{1}{f}\biggr)+ \overline{N}\biggl(r,\frac {1}{f-\frac{1+B}{B}}\biggr)+S(r,f) \\ &=\overline{N}(r,f)+\overline{N}\biggl(r,\frac{1}{f}\biggr)+ \overline{N}(r,g)+S(r,f), \end{aligned}
which leads to Case (i). A similar reasoning results in Case (i) again, unless either $$A=1$$ and $$B=0$$ or $$A=-1$$ and $$B=-1$$. Hence, if $$A=1$$ and $$B=0$$, then $$f\equiv g$$, that is, Case (ii). If $$A=-1$$ and $$B=-1$$, then $$f\cdot g\equiv1$$, which is Case (iii). □
When meromorphic functions $$f_{1}$$ and $$f_{2}$$ share 1 IM, Sun and Xu [8] once obtained a result, whose proof can be also found in [7]. They proved that $$f_{1}\equiv f_{2}$$ or $$f_{1}f_{2}\equiv1$$ if
$$\limsup_{r\rightarrow\infty,r\notin E}\frac{\overline{N}(r,f_{j})+\overline{N}(r,\frac {1}{f_{j}})}{T(r,f_{j})}< \frac{1}{7},\quad j=1,2,$$
where E is a set of finite linear measure. By Lemma 2.3, when
$$\limsup_{r\rightarrow\infty,r\notin E}\frac{2N_{2}(r,f_{j})+3\overline{N}(r,f_{j})+2N_{2}(r,\frac {1}{f_{j}})+3\overline{N}(r,\frac{1}{f_{j}})}{T(r,f_{j})}< 1, \quad j=1,2,$$
Case (i) cannot happen, and thus $$f_{1}\equiv f_{2}$$ or $$f_{1}f_{2}\equiv1$$. Since $$N_{2}(r,f)\leq2\overline{N}(r,f)$$ and $$N_{2}(r,1/f)\leq 2\overline{N}(r,1/f)$$, Lemma 2.3 is an improvement of Sun and Xu’s result.

3 Main results

Based on Problems 1 and 2 in Sect. 1, we introduce our main results.

Theorem 3.1

Letfandgbe two nonconstant meromorphic functions with multiplicities of zeros and poles no less thans, wheresis a positive integer. Let$$n\geq2$$be an integer satisfying$$(n-4)s\geq19$$for$$s=1,2$$and$$ns\geq28$$for$$s\geq 3$$. If$$f^{n}f'$$and$$g^{n}g'$$share 1 IM, then$$f(z)\equiv dg(z)$$for some$$(n+1)$$th rootdof unity, or$$g(z)=c_{1}e^{cz}$$and$$f(z)=c_{2}e^{-cz}$$, wherec, $$c_{1}$$, $$c_{2}$$are constants satisfying$$(c_{1}c_{2})^{n+1}c^{2}=-1$$.

Proof

Let $$F=\frac{1}{n+1}f^{n+1}$$ and $$G=\frac{1}{n+1}g^{n+1}$$. Then $$T(r,F)=(n+1)T(r,f)$$, $$T(r,G)=(n+1)T(r,g)$$, and $$F'$$, $$G'$$ share 1 IM. Suppose first that Case (i) of Lemma 2.3 holds. From this we have
\begin{aligned} T\bigl(r,F'\bigr) \leq& N_{2}\biggl(r,\frac{1}{F'} \biggr)+N_{2}\biggl(r,\frac {1}{G'}\biggr)+N_{2} \bigl(r,F'\bigr)+N_{2}\bigl(r,G'\bigr)+2 \overline{N}\bigl(r,F'\bigr)+\overline{N}\bigl(r,G' \bigr) \\ &{}+ 2\overline{N}\biggl(r,\frac{1}{F'}\biggr)+\overline{N}\biggl(r, \frac {1}{G'}\biggr)+S(r,f)+S(r,g) \\ \leq&4\overline{N}\biggl(r,\frac{1}{f}\biggr)+N_{2}\biggl(r, \frac{1}{f'}\biggr)+3\overline {N}\biggl(r,\frac{1}{g} \biggr)+N_{2}\biggl(r,\frac{1}{g'}\biggr)+4\overline{N}(r,f)+3 \overline{N}(r,g) \\ &{}+2\overline{N}\biggl(r,\frac{1}{f'}\biggr)+\overline{N}\biggl(r, \frac {1}{g'}\biggr)+S(r,f)+S(r,g). \end{aligned}
(3.1)
At the same time, we have
\begin{aligned} T(r,F) \leq& T\bigl(r,F'\bigr)+N\biggl(r,\frac{1}{F} \biggr)-N\biggl(r,\frac{1}{F'}\biggr)+S(r,f) \\ \leq& T\bigl(r,F'\bigr)+N\biggl(r,\frac{1}{f}\biggr)-N \biggl(r,\frac{1}{f'}\biggr)+S(r,f). \end{aligned}
Then from this inequality and (3.1) it follows that
\begin{aligned} T(r,F) \leq&4\overline{N}\biggl(r,\frac{1}{f}\biggr)+3\overline{N} \biggl(r,\frac {1}{g}\biggr)+N_{2}\biggl(r,\frac{1}{g'} \biggr) +4\overline{N}(r,f)+3\overline{N}(r,g) \\ &{}+2\overline{N}\biggl(r,\frac{1}{f'}\biggr)+\overline{N}\biggl(r, \frac{1}{g'}\biggr)+N\biggl(r,\frac {1}{f}\biggr)+S(r,f)+S(r,g). \end{aligned}
(3.2)
Using Lemma 2.1, we get
\begin{aligned}& \begin{aligned}[b] N_{2}\biggl(r,\frac{1}{g'}\biggr)+\overline{N}\biggl(r, \frac{1}{g'}\biggr)&\leq 2N\biggl(r,\frac{1}{g}\biggr)+2 \overline{N}(r,g)+S(r,g) \\ &\leq 2\biggl(1+\frac{1}{s}\biggr)T(r,g)+S(r,g), \end{aligned} \end{aligned}
(3.3)
\begin{aligned}& 2\overline{N}\biggl(r,\frac{1}{f'}\biggr)\leq 2N\biggl(r, \frac{1}{f}\biggr)+2\overline{N}(r,f)+S(r,f)\leq 2\biggl(1+ \frac{1}{s}\biggr)T(r,f)+S(r,f). \end{aligned}
(3.4)
Then substituting (3.3) and (3.4) into (3.2) yields
$$T(r,F)\leq\biggl(3+\frac{10}{s}\biggr)T(r,f)+\biggl(2+\frac {8}{s} \biggr)T(r,g)+S(r,f)+S(r,g).$$
(3.5)
A similar inequality for G also holds. Therefore we can conclude that
\begin{aligned} (n+1)\bigl\{ T(r,f)+T(r,g)\bigr\} &=T(r,F)+T(r,G) \\ &\leq\biggl(5+\frac{18}{s} \biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g), \end{aligned}
which contradicts the condition $$(n-4)s\geq19$$ for $$s=1,2$$.
Again using Lemma 2.1, we have
\begin{aligned}& \begin{aligned}[b] N_{2}\biggl(r,\frac{1}{g'}\biggr)+\overline{N}\biggl(r, \frac{1}{g'}\biggr)&\leq N_{3}\biggl(r,\frac{1}{g} \biggr)+N_{2}\biggl(r,\frac{1}{g}\biggr)+2\overline{N}(r,g)+S(r,g) \\ &\leq \frac{7}{s}T(r,g)+S(r,g), \end{aligned} \end{aligned}
(3.6)
\begin{aligned}& 2\overline{N}\biggl(r,\frac{1}{f'}\biggr)\leq 2N_{2}\biggl(r, \frac{1}{f}\biggr)+2\overline{N}(r,f)+S(r,f)\leq \frac{6}{s}T(r,f)+S(r,f). \end{aligned}
(3.7)
Then substituting the two inequalities into (3.2) leads to
$$T(r,F)\leq\biggl(1+\frac{14}{s}\biggr)T(r,f)+\frac{13}{s}T(r,g)+S(r,f)+S(r,g).$$
(3.8)
Similarly, we can get
$$(n+1)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(1+\frac{27}{s}\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which contradicts the condition $$ns\geq28$$ for $$s\geq3$$.
Thus by Lemma 2.3 there we must have $$F'G'\equiv1$$ or $$F'\equiv G'$$. Consider case $$F'G'\equiv1$$, that is $$f^{n}f'g^{n}g'\equiv1$$. Suppose that f has a pole $$z_{0}$$ with multiplicity p. Then $$z_{0}$$ must be a zero of g of order q satisfying $$nq+q-1=np+p+1$$. We rewrite it as $$(q-p)(n+1)=2$$, which is a contradiction since $$n\geq2$$. Similarly to [9], we get $$g=c_{1}e^{cz}$$, $$f=c_{2}e^{-cz}$$. For the case $$F'\equiv G'$$, it is easy to see that $$F\equiv G+c$$, where c is a constant, so that $$T(r,f)=T(r,g)+S(r,g)$$. If $$c\neq0$$, then
$$\overline{N}\biggl(r,\frac{1}{G-c}\biggr)=\overline{N}\biggl(r, \frac{1}{F}\biggr)=\frac {1}{s}T(r,f)+S(r,f)=\frac{1}{s}T(r,g)+S(r,g).$$
Applying the second main theorem to G, we have
$$T(r,G)\leq\overline{N}(r,G)+\overline{N}\biggl(r,\frac{1}{G}\biggr)+ \overline {N}\biggl(r,\frac{1}{G-c}\biggr)+S(r,g)\leq\frac{3}{s}T(r,g)+S(r,g),$$
which leads to $$(n+1)s\leq3$$. This contradicts the condition on n and s. Therefore, $$c=0$$, and thus $$F\equiv G$$, that is, $$f^{n+1}=g^{n+1}$$. Hence $$f\equiv dg$$ for some $$(n+1)$$th root d of unity. □

Theorem 3.2

Letfandgbe two nonconstant meromorphic functions with multiplicities of zeros and poles no less thans. Suppose that$$f^{n}(f-1)f'$$and$$g^{n}(g-1)g'$$share 1 IM, wheresandnare positive integers. Then we have one of the following two cases:
1. (i)

if$$s=1$$and$$n\geq27$$, then$$f(z)\equiv g(z)$$, or we have (1.1);

2. (ii)

if$$(n-8)s\geq19$$for$$s=2$$and$$(n-4)s\geq28$$for$$s\geq5$$, then$$f(z)\equiv g(z)$$.

Proof

Let $$F=\frac{1}{n+2}f^{n+2}-\frac{1}{n+1}f^{n+1}$$ and $$G=\frac {1}{n+2}g^{n+2}-\frac{1}{n+1}g^{n+1}$$. Then $$F'$$ and $$G'$$ share 1 IM, and by the Valiron–Mokhon’ko theorem we have
$$T(r,F)=(n+2)T(r,f)+S(r,f),\qquad T(r,G)=(n+2)T(r,g)+S(r,g).$$
(3.9)
Suppose now that Case (i) of Lemma 2.3 holds. Then we have
\begin{aligned} T\bigl(r,F'\bigr) \leq&4\overline{N}\biggl(r,\frac{1}{f} \biggr)+N_{2}\biggl(r,\frac {1}{f-1}\biggr)+N_{2}\biggl(r, \frac{1}{f'}\biggr)+3\overline{N}\biggl(r,\frac{1}{g} \biggr)+N_{2}\biggl(r,\frac{1}{ g-1}\biggr) \\ &{}+N_{2}\biggl(r, \frac{1}{g'}\biggr)+2\overline{N}\biggl(r,\frac{1}{f-1}\biggr)+2\overline{N}\biggl(r, \frac{1}{f'}\biggr)+\overline {N}\biggl(r,\frac{1}{g-1}\biggr)+ \overline{N}\biggl(r,\frac{1}{g'}\biggr) \\ &{}+4\overline{N}(r,f)+3\overline{N}(r,g)+S(r,f)+S(r,g). \end{aligned}
(3.10)
Since $$T(r,F)\leq T(r,F')+N(r,1/F)-N(r,1/F')+S(r,f)$$, we get
\begin{aligned} T(r,F) \leq& T\bigl(r,F'\bigr)+N\biggl(r,\frac{1}{f}\biggr)+N \biggl(r,\frac {1}{f-(n+2)/(n+1)}\biggr) \\ &{}-N\biggl(r,\frac{1}{f-1}\biggr)-N\biggl(r, \frac{1}{f'}\biggr)+S(r,f). \end{aligned}
Combining this inequality with (3.10) leads to
\begin{aligned} T(r,F) \leq&4\overline{N}\biggl(r,\frac{1}{f}\biggr)+3\overline{N} \biggl(r,\frac {1}{g}\biggr)+N_{2}\biggl(r,\frac{1}{g-1} \biggr)+N_{2}\biggl(r,\frac{1}{g'}\biggr) +2\overline{N}\biggl(r, \frac{1}{f-1}\biggr) \\ &{}+2\overline{N}\biggl(r,\frac{1}{f'}\biggr)+\overline{N}\biggl(r,\frac{1}{g-1}\biggr)+\overline{N}\biggl(r, \frac{1}{g'}\biggr)+4\overline {N}(r,f)+3\overline{N}(r,g)+N\biggl(r, \frac{1}{f}\biggr) \\ &{}+N\biggl(r,\frac{1}{f-(n+2)/(n+1)}\biggr)+S(r,f)+S(r,g). \end{aligned}
(3.11)
If we use (3.3) and (3.4), then (3.11) means
$$T(r,F)\leq\biggl(6+\frac{10}{s}\biggr)T(r,f)+\biggl(4+\frac{8}{s} \biggr)T(r,g)+S(r,f)+S(r,g).$$
Then this yields
$$(n+2)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(10+\frac{18}{s}\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which contradicts to $$(n-8)s\geq19$$ for $$s=1,2$$. If we use (3.6) and (3.7), then (3.11) implies
$$T(r,F)\leq\biggl(4+\frac{14}{s}\biggr)T(r,f)+\biggl(2+\frac{13}{s} \biggr)T(r,g)+S(r,f)+S(r,g).$$
Similarly as before, we conclude that
$$(n+2)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(6+\frac{28}{s}\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which contradicts with $$(n-4)s\geq28$$ when $$s\geq3$$.
Thus, by Lemma 2.3, $$F'G'\equiv1$$ or $$F'\equiv G'$$. Consider the case $$F'G'\equiv1$$, that is,
$$f^{n}(f-1)f'g^{n}(g-1)g' \equiv1.$$
(3.12)
Let $$z_{0}$$ be a zero of f with multiplicity $$p_{0}$$. Then $$z_{0}$$ must be a pole of g of order $$q_{0}$$ satisfying
$$np_{0}+p_{0}-1=nq_{0}+2q_{0}+1.$$
We rewrite it as $$(n+1)(p_{0}-q_{0})=q_{0}+2$$, which implies $$p_{0}\geq q_{0}+1$$ and $$q_{0}+2\geq n+1$$, so that $$p_{0}\geq t=\max\{n, s+1\}$$. Let $$z_{1}$$ be a zero of $$f-1$$ with multiplicity $$p_{1}$$. Then by (3.12) $$z_{1}$$ must be a pole of g of order $$q_{1}$$ satisfying
$$2p_{1}-1=nq_{1}+2q_{1}+1.$$
Rewrite it as $$p_{1}=1+(n+2)q_{1}/2$$, so that $$p_{1}\geq1+(n+2)s/2$$. Again from (3.12) we have
\begin{aligned} \overline{N}(r,f) =&\overline{N}\biggl(r,\frac{1}{g}\biggr)+\overline{N} \biggl(r,\frac {1}{g-1}\biggr)+\overline{N}_{0}\biggl(r, \frac{1}{g'}\biggr) \\ \leq&\frac{1}{t}N\biggl(r,\frac{1}{g}\biggr)+\frac{2}{(n+2)s+2}N \biggl(r,\frac {1}{g-1}\biggr)+N_{0}\biggl(r,\frac{1}{g'} \biggr). \end{aligned}
By the second main theorem we obtain
\begin{aligned} T(r,f) \leq&\overline{N}(r,f)+\overline{N}\biggl(r,\frac{1}{f}\biggr)+ \overline {N}\biggl(r,\frac{1}{f-1}\biggr)-N_{0}\biggl(r, \frac{1}{f'}\biggr)+S(r,f) \\ \leq&\frac{1}{t}N\biggl(r,\frac{1}{f}\biggr)+\frac{1}{t}N \biggl(r,\frac{1}{g}\biggr)+\frac {2}{(n+2)s+2}N\biggl(r,\frac{1}{f-1} \biggr)+S(r,f) \\ &{}+\frac{2}{(n+2)s+2}N\biggl(r,\frac{1}{g-1}\biggr)+N_{0} \biggl(r,\frac{1}{g'}\biggr)-N_{0}\biggl(r,\frac {1}{f'} \biggr) \end{aligned}
(3.13)
and a similar inequality for $$T(r,g)$$. Combining the two inequalities, we get
$$T(r,f)+T(r,g)\leq \biggl(\frac{2}{t}+\frac{4}{(n+2)s+2} \biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g).$$
(3.14)
Since $$(n-8)s\geq19$$ for $$s=1,2$$ and $$(n-4)s\geq28$$ for $$s\geq3$$, we have
$$\frac{1}{t}\leq\frac{1}{4},\qquad \frac{1}{(n+2)s+2}\leq \frac{1}{21+6s}\leq\frac{1}{27}.$$
Thus (3.14) leads to a contradiction. Similarly as in the proof of Theorem 3.1, $$F'\equiv G'$$ means that $$F\equiv G$$. Let $$h\equiv f/g$$. If $$h\not\equiv1$$, then $$F\equiv G$$ implies (1.1). As we pointed out in Sect. 1, (1.1) leads to a contradiction for $$s\geq2$$. Hence, when $$s\geq2$$, we must have $$f(z)\equiv g(z)$$. For $$s=1$$, $$f(z)\equiv g(z)$$, or (1.1) holds. □

Theorem 3.3

Letfandgbe two nonconstant meromorphic functions with multiplicities of zeros and poles no less thans. Suppose that$$f^{n}(f-1)^{2}f'$$and$$g^{n}(g-1)^{2}g'$$share 1 IM, wheresandnare positive integers. If$$(n-9)s\geq19$$for$$s=1,2$$and$$(n-5)s\geq28$$for$$s\geq3$$, then$$f(z)\equiv g(z)$$.

Proof

Let $$F=\frac{1}{n+3}f^{n+3}-\frac{2}{n+2}f^{n+2}+\frac{1}{n+1}f^{n+1}$$ and $$G=\frac{1}{n+3}g^{n+3}-\frac{2}{n+1}g^{n+2}+\frac{1}{n+1}g^{n+1}$$. Then $$F'$$ and $$G'$$ share 1 IM, and
$$T(r,F)=(n+3)T(r,f)+S(r,f),\qquad T(r,G)=(n+3)T(r,g)+S(r,g).$$
(3.15)
Suppose now that Case (i) of Lemma 2.3 holds. Then we have
\begin{aligned} T\bigl(r,F'\bigr) \leq&4\overline{N}\biggl(r,\frac{1}{f} \biggr)+4\overline{N}\biggl(r,\frac {1}{f-1}\biggr)+N_{2}\biggl(r, \frac{1}{f'}\biggr) \\ &{}+3\overline{N}\biggl(r,\frac{1}{g}\biggr)+3 \overline {N}\biggl(r,\frac{1}{ g-1}\biggr)+N_{2}\biggl(r, \frac{1}{g'}\biggr) \\ &{}+4\overline{N}(r,f)+3\overline{N}(r,g)+2\overline{N}\biggl(r,\frac {1}{f'} \biggr)+\overline{N}\biggl(r,\frac{1}{g'}\biggr) \\ &{}+S(r,f)+S(r,g). \end{aligned}
(3.16)
Consider $$T(r,F)\leq T(r,F')+N(r,1/F)-N(r,1/F')+S(r,f)$$. Then we obtain
\begin{aligned} T(r,F) \leq& T\bigl(r,F'\bigr)+N\biggl(r,\frac{1}{f}\biggr)+N \biggl(r,\frac{1}{f-a_{1}}\biggr)+N\biggl(r,\frac {1}{f-a_{2}}\biggr) \\ &{}-2N\biggl(r, \frac{1}{f-1}\biggr) -N\biggl(r,\frac{1}{f'}\biggr)+S(r,f), \end{aligned}
where $$a_{1}$$ and $$a_{2}$$ are distinct solutions of the equation $$\frac{1}{n+3}w^{2}-\frac{2}{n+2}w+\frac{1}{n+1}=0$$. Combining this with (3.16), we get
\begin{aligned} T(r,F) \leq&4\overline{N}\biggl(r,\frac{1}{f}\biggr)+2\overline{N} \biggl(r,\frac {1}{f-1}\biggr)+3\overline{N}\biggl(r,\frac{1}{g} \biggr)+3\overline{N}\biggl(r,\frac{1}{ g-1}\biggr) \\ &{}+N_{2}\biggl(r, \frac{1}{g'}\biggr)+4\overline{N}(r,f)+3\overline{N}(r,g) \\ &{}+2\overline{N}\biggl(r,\frac{1}{f'}\biggr)+\overline{N}\biggl(r, \frac{1}{g'}\biggr)+N\biggl(r,\frac {1}{f}\biggr)+N\biggl(r, \frac{1}{f-a_{1}}\biggr) \\ &{}+N\biggl(r,\frac{1}{f-a_{2}}\biggr)+S(r,f)+S(r,g). \end{aligned}
(3.17)
By (3.3) and (3.4) from (3.17) it follows that
$$T(r,F)\leq \biggl(7+\frac{10}{s}\biggr)T(r,f)+\biggl(5+\frac{8}{s} \biggr)T(r,g)+S(r,f)+S(r,g).$$
This implies
$$(n+3)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(12+\frac{18}{s}\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which is a contradiction unless $$(n-9)s\geq19$$. For $$s\geq3$$, we use (3.6) and (3.7), and (3.17) leads to
$$T(r,F)\leq\biggl(5+\frac{15}{s}\biggr)T(r,f)+\biggl(3+\frac{12}{s} \biggr)T(r,g)+S(r,f)+S(r,g).$$
Similarly as before, we can conclude that
$$(n+3)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(8+\frac{27}{s}\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which contradicts to $$(n-5)s\geq28$$. Thus, by Lemma 2.3, $$F'G'\equiv1$$ or $$F'\equiv G'$$. As in the proof Theorem 3.2, the case $$F'G'\equiv1$$ leads to a contradiction, so we obtain that $$F\equiv G$$. Let $$h\equiv f/g$$. Then, similarly as in the proof of Theorem G, we only get $$h\equiv1$$. Hence $$f(z)\equiv g(z)$$. □

Given specific values of s in Theorems 3.13.3, we can compare n in the two conditions of n and s and see that the second condition is always better than the first one for $$s\geq3$$. For example, we consider $$(n-4)s\geq19$$: if $$s=3$$, then $$n\geq11$$; if $$s=4$$, then $$n\geq9$$; if $$s=5,6$$, then $$n\geq8$$; if $$s=7,8,9$$, then $$n\geq7$$; if $$10\leq s\leq18$$, then $$n\geq6$$; and if $$s\geq19$$, then $$n\geq5$$. For the condition $$ns\geq28$$, if $$s=3$$, then $$n\geq10$$; if $$s=4$$, then $$n\geq7$$; if $$s=5,6$$, then $$n\geq5$$; if $$s=7,8$$, then $$n\geq4$$; if $$s=9,10$$, then $$n\geq3$$; and if $$11\leq s\leq18$$, then $$n\geq2$$.

Theorem 3.4

Letfandgbe two nonconstant meromorphic functions with multiplicities of zeros and poles no less thans, wheres (≥7) is a positive integer. Letnbe an integer satisfying$$(n-1)s\geq13$$. If$$f^{n}(f-1)f'$$and$$g^{n}(g-1)g'$$share 1 CM, then$$f(z)\equiv g(z)$$.

Proof

Let $$F=\frac{1}{n+2}f^{n+2}-\frac{1}{n+1}f^{n+1}$$ and $$G=\frac {1}{n+2}g^{n+2}-\frac{1}{n+1}g^{n+1}$$. Then $$F'$$ and $$G'$$ share 1 CM, and (3.9) holds. Suppose now that Case (i) of Lemma 2.2 holds. Then
\begin{aligned} T\bigl(r,F'\bigr) \leq& N_{2}\biggl(r,\frac{1}{F'} \biggr)+N_{2}\biggl(r,\frac {1}{G'}\biggr)+N_{2} \bigl(r,F'\bigr)+N_{2}\bigl(r,G' \bigr))+S(r,f)+S(r,g) \\ \leq&2\overline{N}\biggl(r,\frac{1}{f}\biggr)+N_{2}\biggl(r, \frac{1}{f-1}\biggr)+N_{2}\biggl(r,\frac {1}{f'}\biggr)+2 \overline{N}\biggl(r,\frac{1}{g}\biggr)+N_{2}\biggl(r, \frac{1}{ g-1}\biggr) \\ &{}+N_{2}\biggl(r,\frac{1}{g'}\biggr)+2\overline{N}(r,f)+2\overline {N}(r,g)+S(r,f)+S(r,g). \end{aligned}
(3.18)
From (3.18) we get
\begin{aligned} T(r,F) \leq& T\bigl(r,F'\bigr)+N\biggl(r,\frac{1}{f} \biggr)+N\biggl(r,\frac {1}{f-(n+2)/(n+1)}\biggr) \\ &{}-N\biggl(r,\frac{1}{f-1}\biggr)-N \biggl(r,\frac{1}{f'}\biggr)+S(r,f) \\ \leq&2\overline{N}\biggl(r,\frac{1}{f}\biggr)+2\overline{N}\biggl(r, \frac {1}{g}\biggr)+N_{2}\biggl(r,\frac{1}{g-1} \biggr)+N_{2}\biggl(r,\frac{1}{g'}\biggr) \\ &{}+2\overline{N}(r,f)+2 \overline{N}(r,g)+N\biggl(r,\frac{1}{f}\biggr) \\ &{}+N\biggl(r,\frac{1}{f-(n+2)/(n+1)}\biggr)+S(r,f)+S(r,g) \\ \leq& \biggl(\frac{4}{s}+2\biggr)T(r,f)+\biggl(\frac{8}{s}+1 \biggr)T(r,g)+S(r,f)+S(r,g), \end{aligned}
(3.19)
where by Lemma 2.1 for $$N_{2}(r,1/g')$$, we use
$$N_{2}\biggl(r,\frac{1}{g'}\biggr)\leq N_{3}\biggl(r, \frac{1}{g}\biggr)+\overline{N}(r,g)+S(r,g)\leq \frac{4}{s}T(r,g)+S(r,g).$$
There also exists a similar inequality for $$T(r,G)$$. Therefore we have
$$(n+2)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(\frac{12}{s}+3\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which contradicts to $$(n-1)s\geq13$$. Thus, by Lemma 2.2, $$F'G'\equiv1$$ or $$F'\equiv G'$$. Then, as in the proof of Theorem 3.2, we can deduce $$f(z)\equiv g(z)$$. □

Theorem 3.5

Letfandgbe two nonconstant meromorphic functions with multiplicities of zeros and poles no less thans, wheres (≥7) is a positive integer. Letnbe an integer satisfying$$(n-2)s\geq13$$. If$$f^{n}(f-1)^{2}f'$$and$$g^{n}(g-1)^{2}g'$$share 1 CM, then$$f(z)\equiv g(z)$$.

Proof

Let $$F=\frac{1}{n+3}f^{n+3}-\frac{2}{n+2}f^{n+2}+\frac{1}{n+1}f^{n+1}$$ and $$G=\frac{1}{n+3}g^{n+3}-\frac{2}{n+1}g^{n+2}+\frac{1}{n+1}g^{n+1}$$. Then $$F'$$ and $$G'$$ share 1 CM, and (3.15) holds. Suppose now that Case (i) of Lemma 2.2 holds. Proceeding as in the proof of Theorem 3.4, we have
\begin{aligned} T\bigl(r,F'\bigr) \leq&2\overline{N}\biggl(r,\frac{1}{f} \biggr)+2\overline{N}\biggl(r,\frac {1}{f-1}\biggr)+N_{2}\biggl(r, \frac{1}{f'}\biggr)+2\overline{N}\biggl(r,\frac{1}{g}\biggr)+2 \overline {N}\biggl(r,\frac{1}{ g-1}\biggr) \\ &{}+N_{2}\biggl(r,\frac{1}{g'}\biggr)+2\overline{N}(r,f)+2\overline {N}(r,g)+S(r,f)+S(r,g). \end{aligned}
(3.20)
Then we obtain
\begin{aligned} T(r,F) \leq& T\bigl(r,F'\bigr)+N\biggl(r,\frac{1}{f} \biggr)+N\biggl(r,\frac{1}{f-a_{1}}\biggr)+N\biggl(r,\frac {1}{f-a_{2}}\biggr) \\ &{}-2N \biggl(r,\frac{1}{f-1}\biggr)-N\biggl(r,\frac{1}{f'}\biggr)+S(r,f) \\ \leq&2\overline{N}\biggl(r,\frac{1}{f}\biggr)+2\overline{N}\biggl(r, \frac {1}{g}\biggr)+2\overline{N}\biggl(r,\frac{1}{g-1} \biggr)+N_{2}\biggl(r,\frac{1}{g'}\biggr) \\ &{}+2\overline{N}(r,f)+2 \overline{N}(r,g)+N\biggl(r,\frac{1}{f}\biggr) \\ &{}+N\biggl(r,\frac{1}{f-a_{1}}\biggr)+N\biggl(r,\frac{1}{f-a_{1}} \biggr)+S(r,f)+S(r,g) \\ \leq& \biggl(\frac{4}{s}+3\biggr)T(r,f)+\biggl(\frac{8}{s}+2 \biggr)T(r,g)+S(r,f)+S(r,g), \end{aligned}
(3.21)
where we use the inequality $$N_{2}(r,1/g')\leq(4/s)T(r,g)+S(r,g)$$. Similarly as before, we get
$$(n+3)\bigl\{ T(r,f)+T(r,g)\bigr\} \leq\biggl(\frac{12}{s}+5\biggr)\bigl\{ T(r,f)+T(r,g)\bigr\} +S(r,f)+S(r,g),$$
which contradicts to $$(n-2)s\geq13$$. Thus by Lemma 2.2, $$F'G'\equiv1$$ or $$F'\equiv G'$$. As in the proof Theorem 3.3, we must have $$f(z)\equiv g(z)$$. □

By giving specific values for $$s\geq7$$ it is easy to see that the condition $$(n-1)s\geq13$$ in Theorem 3.4 and $$(n-2)s\geq13$$ in Theorem 3.5 are sharper than the condition $$(n-2)s\geq10$$ in Theorem F and $$(n-3)s\geq10$$ in Theorem G, respectively.

For further study of related problems, we would like to pose the following question.

Open question

Let n, k be positive integers, and let m be a nonnegative integer. Suppose that $$f^{n}(f-1)^{m}f^{(k)}$$ and $$g^{n}(g-1)^{m}g^{(k)}$$ share a CM (or IM), where a ($$\not\equiv0,\infty$$) is a small function of f and g. Under what conditions can we get $$f\equiv g$$?

4 Conclusions

Using the notion of multiplicity, in this paper, we provide five results, which extend the main results that were derived in the paper [1] and answer two open problems posed by Dyavanal in the same paper. Obtaining our results from more general hypotheses without complicated calculations is probably the most interesting feature of this paper. Finally, in this paper, we pose one more general open question for further studies.

Notes

Acknowledgements

The authors would like to thank Professors Weiran Lü and Jun Wang for giving enthusiastic help.

Authors’ contributions

Both authors contributed in drafting this manuscript. Both authors read and approved the final manuscript.

Funding

This work was supported by the National Natural Science Foundation of China (No. 11602305) and the Fundamental Research Funds for the Central Universities (No. 18CX02045A).

Competing interests

The authors declare that they have no competing interests.

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Authors and Affiliations

1. 1.College of ScienceChina University of Petroleum (East China)QingdaoP.R. China