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Proceeding Paper

Growth of Solutions of Homogeneous Differential–Difference Equations †

Department of Mathematics, Laboratory of Pure and Applied Mathematics, University of Mostaganem (UMAB), Mostaganem B. P. 227, Algeria
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Authors to whom correspondence should be addressed.
Presented at the 1st International Online Conference on Mathematics and Applications, 1–15 May 2023; Available online: https://iocma2023.sciforum.net/.
Comput. Sci. Math. Forum 2023, 7(1), 51; https://doi.org/10.3390/IOCMA2023-14381
Published: 28 April 2023

Abstract

:
In this article, we study the growth properties of solutions of homogeneous linear differential–difference equations in the whole complex plane j = 0 n A j z f j z + c j = 0 ,   n N + , where c j ,   j = 0 , . . . , n are complex numbers, and A j ( z ) ,   j = 0 ,   ,   n are entire functions of the same order.

1. Introduction

Throughout this paper, we use the standard notations of the value distribution theory of meromorphic functions founded by Nevanlinna, see [1,2,3]. We denote ρ ( f ) and λ f , respectively, as the order of growth and the exponent of convergence of the zeros of a meromorphic function f .
In [4], Lan and Chen studied the growth and oscillation of meromorphic solutions of a homogeneous complex linear difference equation
j = 1 n A j z f z + c j = 0 ,   n N + ,
where n N + ,    A j z   ( j = 1 ,    . . . ,   n )   are entire functions and c j ,   j = 1 ,    . . . ,   n are distinct complex numbers. Under some conditions on the coefficients, they obtained an estimation of the order of growth of meromorphic solutions and studied the relationship between the exponent of convergence of zeros and the order of growth of the entire solutions of the above linear difference equation.

2. Main Results

In this paper, we improve and extend the main results of Lan and Chen. In particular, we study the growth of meromorphic solutions of the equation:
j = 0 n A j z f j z + c j = 0 ,   n N + .
The key result here is the difference analogue of the lemma on the logarithmic derivative obtained independently by Hulburd and Korhonen [5] and Chiang and Feng [6]. In fact, we prove the following two results.
Theorem 1.
Let c j ,   j = 0 ,   ,   n be complex constants and let
A j z = P j z e h j z + Q j z ,
where h j z = a j k z k + a j k 1 z k 1 + + a j 0 are polynomials of degree k 1   and P j z 0 and Q j ( z ) are entire functions whose order is lower than k . Suppose that a 0 k > max 1 j n a j k . If f z ( 0 ) is a meromorphic solution of Equation (1), then f z k + 1 .
Example 1.
The function f z = e z 2 is a solution of the equation:
            A 2 ( z ) f ( z + i ) + A 1 ( z ) f ( z + i ) + A 0 ( z ) f ( z 4 i ) = 0 ,
where
A 0 z = 4 i z 3 4 i π z 2 + 2 z 4 π + i + 2 i π e 8 i z + 16 ,
A 1 z = [ 2 z 3 z e 2 i z + 1 ( 2 z 2 + 4 i z 1 ) ] ,
A 2 z = z 2 i π e 2 i z + 1 z + i ,
P 0 z = 4 i z 3 4 i π z 2 + 2 z 4 π + i + 2 i π ,   h 0 z = 8 i z + 16 ,   Q 0 ( z ) 0 ,
P 1 z = 2 z 3 z ,   h 1 z = 2 i z + 1 ,   Q 1 z = ( 2 z 2 + 4 i z 1 ) ,
P 2 z = z 2 i π ,   h 2 z = 2 i z + 1 ,   Q 2 z = z + i .
Furthermore, ρ P j ( z ) = 0 ,    j = 0 ,   1 ,   2 and
a 01 = 8 i = 8 > max a 11 ,   a 21 = max 2 i ,   2 i = 2 .
Hence, the conditions of Theorem 1 are satisfied. We see that for j = 0 ,   1 ,   2 :
ρ f = 2 = ρ A j + 1 = deg h j + 1 = 1 + 1 = 2 .
Corollary 1.
Let k ,   A j z 0 ,   j = 0 ,   ,   n satisfy the assumptions of Theorem 1, let B i z ,    i = 1 ,   ,   m be entire functions whose order is lower than k , and let c j ,    j = 0 ,   ,   n + m be complex constants. If f z ( 0 ) is a meromorphic solution of the equation:
B m z f n + m z + c n + m + + B 1 z f n + 1 z + c n + 1 + A n z f n z + c n + + A 1 z f ( z + c 1 ) + A 0 z f z + c 0 = 0
then ρ f k + 1 .
Example 2.
The function f z = e 2 z 2 is a solution of the equation:
B 1 ( z ) f ( z + 2 ) + A 1 ( z ) f ( z 1 ) + A 0 ( z ) f ( z + 2 ) = 0 ,
where
  B 1 z = z 4 i π ,  
  A 1 z = ( 4 z 5 + i π z 2 ) e 4 z 2 ,
A 0 z = 4 z 2 4 z 4 4 z 3 + i π ( z 1 ) e 8 z 8 4 [ 4 z 6 + 16 z 5 + 17 z 4 i π 4 z 2 + 16 z + 17 ] ,
P 0 z = 4 z 2 4 z 4 4 z 3 + i π ( z 1 ) ,   h 0 z = 8 z 1 ,  
Q 0 z = 4 [ 4 z 6 + 16 z 5 + 17 z 4 i π 4 z 2 + 16 z + 17 ] ,
P 1 z = 4 z 5 + i π z 2 ,   h 1 z = 4 z 2 ,   Q 1 ( z ) 0 .
Moreover, ρ P 0 = ρ P 1 = 0 and
ρ B 1 = 0 < ρ A 1 = ρ A 2 = 1 ,
a 01 = 8 = 8 > a 11 = 4 = 4 .
Thus, the conditions of Corollary 1 are satisfied. We see that for j = 0 ,   1 :
ρ f = 2 = ρ A j + 1 = deg h j + 1 = 2 .

3. Preliminary Lemmas

For the proof of our results, we need the following lemmas.
Lemma 1 ([7]).
Suppose that f ( z ) is a meromorphic function with ρ f = ρ < + . Then, for any given ε > 0 , one can find a set E ( 1 , + )   of finite linear measure or finite logarithmic measure such that
| f z | e r ρ + ε
holds for all z satisfying z = r 0,1 E   a s   r + .
Lemma 2 ([6]).
Let η 1 ,   η 2 be two arbitrary complex numbers and let f ( z ) be a meromorphic function of finite order ρ . For any given ε > 0 , there exists a subset E ( 0 , + ) of finite logarithmic measure such that for all z satisfying z = r 0 ,   1 E , the following double inequality holds:
e r ρ 1 + ε f z + η 1 f z + η 2 e r ρ 1 + ε .
Lemma 3 ([8]).
Let f ( z )  be a transcendaental meromorphic function of finite order ρ , and let ε > 0 be a given constant. Then, there exists a subset E ( 1 , + ) that has finite logarithmic measure, such that for all z satisfying z = r 0 ,   1 E , and for all k ,   j ,   0 j < k , we have:
f k z f j z r k j ρ 1 + ε .

4. Proofs

Proof of Theorem 1.
Contrary to our assertion, we assume that ρ = ρ f < k + 1 . Let
h j z = a j k z k + h j * ( z ) ,
where a j k 0 are complex constants and h j * ( z ) are polynomials with deg h j * k 1 ,   j = 0 ,   ,   n . We set
a 0 k > a j k ,    θ 0 θ j ,           θ j = arg a j k 0 ,   2 π ,    1 j n .
We now choose θ such that
c o s ( k θ + θ 0 ) = 1 .
Thus, by θ j θ 0 , 1 j n , we find:
c o s k θ + θ j   < 1 ,     1 j n .
Denote
a = a 0 k ,    b = max 1 j n | a j k | ,    c = max 1 j n b cos k θ + θ j < a
and
  β = max 0 j n ρ P j ,   ρ Q j < k .
Clearly,
ρ P j P 0 max 1 j n ρ P j , ρ P 0 β , ρ Q j P 0 max 0 j n ρ P 0 , ρ Q j β .
By Lemma 1, for any given ε satisfying
0 < 2 ε < min 1 ,   k + 1 ρ ,   k β ,   a c ,
there is a set E 1 ( 1 , + )   with finite logarithmic measure such that for all z satisfying z = r 0 ,   1 E 1 , we have:
P j ( z ) P 0 ( z ) e r β + ε ,    1 j n ,    Q j ( z ) P 0 ( z ) e r β + ε ,    0 j n .
By the definition of the order of entire function, for any given ε > 0 and all sufficiently large z ,   z = r ,   we obtain:
e h 0 * ( z ) e r k 1 + ε ,    e h j * ( z ) e r k 1 + ε ,    1 j n .
Applying Lemmas 2 and 3 to f ( z ) , we conclude that there is a set E 2 ( 1 , + ) with a finite logarithmic measure such that for all z satisfying z = r 0 ,   1 E 2 , we have for 1 j n
f j ( z + c j ) f ( z + c 0 ) = f j ( z + c j ) f ( z + c j ) f ( z + c j ) f ( z + c 0 ) r j ρ 1 + ε e r ρ 1 + ε .
By substituting (2) into Equation (1), we obtain:
e a 0 k z k j = 1 n e h 0 * z f j ( z + c j ) f z + c 0 P j z P 0 z e a j k z k + h j * z + Q j z P 0 z + e h 0 * ( z ) Q 0 ( z ) P 0 ( z ) .
Let z = r e i θ , where r 0 ,   1 E 1 E 2 .   Substituting (5)–(7) and (9)–(11) into (12), we find:
e a r k j = 1 n r j ρ 1 + ε e r k 1 + ε + r ρ 1 + ε + r β + ε e b cos k θ + θ j r k + r k 1 + ε + 1 + e r k 1 + ε + r β + ε .
Thus for 0 < 2 ε < min 1 , k + 1 ρ , k β , a c ,   w e   o b t a i n
e a r k ( n + 1 ) r n ρ 1 + ε e c + ε r k + 2 r k 1 + ε + r ρ 1 + ε + r β + ε ( n + 1 ) r n ρ 1 + ε e c + 2 ε r k .
Dividing both sides of (13) by ( n + 1 ) r n ρ 1 + ε e c + 2 ε r k and letting r + , since 0 < 2 ε < a c ,   we obtain + 1 . This is a contradiction, hence ρ f k + 1 .
Proof of Corollary 1.
Assume that ρ = ρ f < k + 1 . By using the similar steps as in the proof of Theorem 1, we also obtain (4)–(10). By Lemma 1, there is a set E 3 ( 1 , + ) with a finite logarithmic measure such that, for any given ε > 0 and all z satisfying z = r 0 ,   1 E 3 , we obtain:
B j z e r β 1 + ε ,    1 j m ,
where
β 1 = max 1 j m ρ B j < k .
We take
γ = max 1 j m { ρ B j z ,   ρ P 0 < k ,          ρ B j ( z ) P 0 ( z ) max 1 j m ρ B j ,   ρ P 0 .
Additionally, by applying Lemmas 2 and 3 to f ( z ) we conclude that there is a set E 4 ( 1 , + ) with a finite logarithmic measure such that, for all z satisfying | z | = r     [ 0 ,   1 ] E 4 , we have for 1 j n + m :
f j ( z + c j ) f ( z + c 0 ) = f j ( z + c j ) f ( z + c j ) f ( z + c j ) f ( z + c 0 ) r j ρ 1 + ε e r ρ 1 + ε ,
and
B j ( z ) P 0 ( z ) e r γ + ε ,          n + 1 j n + m .
By substituting (2) into (3), we find:
e a 0 k z k j = 1 n e h 0 * z f j z + c j f z + c 0 P j z P 0 z e a j k z k + h j * z + Q j z P 0 z + j = n + 1 m + n e h 0 * z f j z + c j f z + c 0 B j n z P 0 ( z ) + e h 0 * ( z ) Q 0 ( z ) P 0 ( z ) .
Let z = r e i θ ,    w h e r e   r 0 ,   1 E 1 E 2 E 3 E 4 . Substituting (5)–(7), (9)–(10), (14) and (15) into (16) we obtain:
e a r k j = 1 n r j ρ 1 + ε e r k 1 + ε + r ρ 1 + ε + r β + ε e b cos k θ + θ j r k + r k 1 + ε + 1 + j = n + 1 m + n r j ρ 1 + ε e r k 1 + ε + r ρ 1 + ε + r γ + ε + e r k 1 + ε + r β + ε ,  
thus,
e a r k n r n ρ 1 + ε e c + ε r k + 2 r k 1 + ε + r ρ 1 + ε + r β + ε + m r m + n ρ 1 + ε e r k 1 + ε + r ρ 1 + ε + r γ + ε + e r k 1 + ε + r β + ε n r n ρ 1 + ε e c + 2 ε r k + m r m + n ρ 1 + ε e r k 1 + ε + r ρ 1 + ε + r γ + ε + e r k 1 + ε + r β + ε .
Dividing both sides of (17) by e a r k and letting r + , we obtain 1 0 since 0 < 2 ε < min 1 ,   k + 1 ρ ,   k β ,   a c ,   k γ . This is a contradiction, thus ρ f k + 1 .

Author Contributions

Conceptualization, B.B.; Investigation, H.L., writing—original draft preparation, H.L.; writing—review and editing, H.L. and B.B.; supervision, B.B. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

No data available.

Conflicts of Interest

The authors declare no conflict of interest.

References

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Lassal, H.; Belaϊdi, B. Growth of Solutions of Homogeneous Differential–Difference Equations. Comput. Sci. Math. Forum 2023, 7, 51. https://doi.org/10.3390/IOCMA2023-14381

AMA Style

Lassal H, Belaϊdi B. Growth of Solutions of Homogeneous Differential–Difference Equations. Computer Sciences & Mathematics Forum. 2023; 7(1):51. https://doi.org/10.3390/IOCMA2023-14381

Chicago/Turabian Style

Lassal, Hakima, and Benharrat Belaϊdi. 2023. "Growth of Solutions of Homogeneous Differential–Difference Equations" Computer Sciences & Mathematics Forum 7, no. 1: 51. https://doi.org/10.3390/IOCMA2023-14381

APA Style

Lassal, H., & Belaϊdi, B. (2023). Growth of Solutions of Homogeneous Differential–Difference Equations. Computer Sciences & Mathematics Forum, 7(1), 51. https://doi.org/10.3390/IOCMA2023-14381

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