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Article

Some Identities and Inequalities Involving Symmetry Sums of Legendre Polynomials

College of Science, Northwest A&F University, Yangling 712100, China
*
Author to whom correspondence should be addressed.
Submission received: 13 November 2019 / Revised: 11 December 2019 / Accepted: 12 December 2019 / Published: 16 December 2019
(This article belongs to the Special Issue Current Trends in Symmetric Polynomials with Their Applications Ⅱ)

Abstract

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By using the analysis methods and the properties of Chebyshev polynomials of the first kind, this paper studies certain symmetry sums of the Legendre polynomials, and gives some new and interesting identities and inequalities for them, thus improving certain existing results.

1. Introduction

For any integer n 0 , the Legendre polynomials { P n ( x ) } are defined as follows:
P n ( x ) = 2 n 1 n x P n 1 ( x ) n 1 n P n 2 ( x )
for all n 2 , with P 0 ( x ) = 1 and P 1 ( x ) = x , see [1,2] for more information.
The first few terms of P n ( x ) are P 2 ( x ) = 1 2 3 x 2 1 , P 3 ( x ) = 1 2 5 x 3 3 x , P 4 ( x ) = 1 8 35 x 4 30 x 2 + 3 , P 5 ( x ) = 1 8 63 x 5 70 x 3 + 15 x , ⋯.
In fact, the general term of P n ( x ) is given by the formula
P n ( x ) = 1 2 n · k = 0 n 2 ( 1 ) k · ( 2 n 2 k ) ! k ! · ( n k ) ! · ( n 2 k ) ! · x n 2 k ,
where [ y ] denotes the greatest integer less than or equal to y.
It is clear that P n ( x ) is an orthogonal polynomial (see [1,2]). That is,
1 1 P m ( x ) P n ( x ) d x = 0 , if m n ; 2 2 n + 1 , if m = n .
The generating function of P n ( x ) is
1 1 2 x t + t 2 = n = 0 P n ( x ) · t n , | x | 1 , | t | < 1 .
These polynomials play a vital role in the study of function orthogonality and approximation theory, as a result, some scholars have dedicated themselves to studying their various natures and obtained a series of meaningful research results. The studies that are concerned with this content can be found in [1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20]. Recently, Shen Shimeng and Chen Li [3] give certain symmetry sums of P n ( x ) , and proved the following result:
For any positive integer k and integer n 0 , one has the identity
( 2 k 1 ) ! ! a 1 + a 2 + + a 2 k + 1 = n P a 1 ( x ) P a 2 ( x ) P a 2 k + 1 ( x ) = j = 1 k C ( k , j ) i = 0 n ( n + k + 1 i j ) ! ( n i ) ! · i + j + k 2 i x k 1 + i + j · P n + k + 1 i j ( x ) ,
where ( 2 k 1 ) ! ! = ( 2 k 1 ) · ( 2 k 3 ) 3 · 1 , and C ( k , i ) is a recurrence sequence defined by C ( k , 1 ) = 1 , C ( k + 1 , k + 1 ) = ( 2 k 1 ) ! ! and C ( k + 1 , i + 1 ) = C ( k , i + 1 ) + k 1 + i · C ( k , i ) for all 1 i k 1 .
The calculation formula for the sum of Legendre polynomials given above is virtually a linear combination of some P n ( x ) , and the coefficients C ( k , i ) are very regular. However, the result is in the form of a recursive formula, in other words, especially when k is relatively large, the formula is not actually easy to use for calculating specific values.
In an early paper, Zhou Yalan and Wang Xia [4] obtained some special cases with k = 3 and k = 5 . It is even harder to calculate their exact values for the general positive integer k, especially if k is large enough.
Naturally, we want to ask a question: Is there a more concise and specific formula for the calculation of the above problems? This is the starting point of this paper. We used the different methods to come up with additional simpler identities. It is equal to saying that we have used the analysis method and the properties of the first kind of Chebyshev polynomials, thereby establishing the symmetry of the Legendre polynomial and symmetry relationship with the first kind of Chebyshev polynomial, and proved the following three results:
Theorem 1.
For any integers k 1 and n 0 , we have the identity
a 1 + a 2 + + a k = n P a 1 ( x ) · P a 2 ( x ) P a k ( x ) = i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · T n 2 i ( x ) ,
where < x > 0 = 1 , < x > k = x ( x + 1 ) ( x + 2 ) ( x + k 1 ) for all integers k 1 , and T n ( x ) = T n ( x ) = 1 2 x + x 2 1 n + x + x 2 1 n denotes Chebyshev polynomials of the first kind.
Theorem 2.
Let q > 1 is an integer, χ is any primitive character mod q . Then for any integers k 1 and n 0 , we have the inequality
a 1 + a 2 + + a k = n a = 1 q χ ( a ) P a 1 cos 2 π a q · P a 2 cos 2 π a q P a k cos 2 π a q q · n + k 1 k 1 .
Theorem 3.
For any integer n 0 with 2 n , we have the identity
π 2 π 2 a 1 + a 2 + + a k = n P a 1 sin θ · P a 2 sin θ P a k sin θ 2 d θ = 2 π · i = 0 n 2 < k 2 > i i ! · < k 2 > n i ( n i ) ! 2 ;
If n = 2 m , then we have
π 2 π 2 a 1 + a 2 + + a k = n P a 1 sin θ · P a 2 sin θ P a k sin θ 2 d θ = 2 π · i = 0 m < k 2 > i i ! · < k 2 > 2 m i ( 2 m i ) ! 2 π · < k 2 > m m ! 4 .
Essentially, the main result of this paper is Theorem 1, which not only reveals the profound properties of Legendre polynomials and Chebyshev polynomials, but also greatly simplifies the calculation of the symmetry sum of Legendre polynomials in practice. We can replace the calculation of the symmetric sum of the Legendre polynomial with the first single Chebyshev polynomial calculation, which can greatly simplify the calculation of the symmetric sum.
Theorem 2 gives an upper bound estimate of the character sum of Legendre polynomials. Theorem 3 reveals the orthogonality of the symmetry sum of Legendre polynomials, which is a generalization of the orthogonality of functions. Of course, Theorems 2 and 3 can also be seen as the direct application of Theorem 1 in analytical number theory and the orthogonality of functions. This is of great significance in analytic number theory, and it has also made new contributions to the study of Gaussian sums.
In fact if we taking k = 1 , and note that the identity < 1 2 > h h ! = 1 4 h · 2 h h , then from our theorems we may immediately deduce the following three corollaries.
Corollary 1.
For any integer n 0 , we have the identity
P n ( x ) = 1 4 n i = 0 n 2 i i 2 n 2 i n i · T n 2 i ( x ) ,
where T n ( x ) denotes Chebyshev polynomials of the first kind.
Corollary 2.
Let q > 1 is an integer, χ is any primitive character mod q . Then for any integer n 0 , we have the inequality
a = 1 q χ ( a ) P n cos 2 π a q q .
Corollary 3.
For any integer n 0 with 2 n , we have the identity
π 2 π 2 P n 2 sin θ d θ = 2 π 4 2 n i = 0 n 2 2 i i 2 2 n 2 i n i 2 ;
If n = 2 m , then we have the identity
π 2 π 2 P n 2 sin θ d θ = 2 π 4 2 n i = 0 n 2 2 i i 2 2 n 2 i n i 2 π 4 2 n · 2 m m 4 .

2. Proofs of the Theorems

In this section, we will directly prove the main results in this paper by by means of the properties of characteristic roots.
Proof of Theorem 1 
First we prove Theorem 1. Let α = x + x 2 1 and β = x x 2 1 be two characteristic roots of the characteristic equation λ 2 2 x λ + 1 = 0 . Then from the definition and properties of Chebyshev polynomials T n ( x ) of the first kind, we have
T n ( x ) = T n ( x ) = 1 2 α n + β n , n 0 .
For any positive integer k, combining properties of power series and Formula (1) we have the identity
1 1 2 x t + t 2 k = 1 1 2 x t + t 2 k 2 = 1 1 α t k 2 1 β t k 2 = n = 0 a 1 + a 2 + + a k = n P a 1 ( x ) · P a 2 ( x ) · P a 3 ( x ) P a k ( x ) · t n .
At the same time, we focus on the power series
1 ( 1 x ) k 2 = n = 0 < k 2 > n n ! · x n , | x | < 1 ,
where < x > 0 = 1 , < x > h = x ( x + 1 ) ( x + 2 ) ( x + h 1 ) for all integers h 1 .
So for any positive integer k, note that α · β = 1 , from (3) and the symmetry properties of α and β we have
1 1 2 x t + t 2 k = 1 ( 1 α t ) k 2 ( 1 β t ) k 2 = n = 0 < k 2 > n n ! · α n · t n n = 0 < k 2 > n n ! · β n · t n = n = 0 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · α i · β n i · t n = n = 0 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · β n 2 i · t n = n = 0 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · α n 2 i · t n = n = 0 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · 1 2 α n 2 i + β n 2 i · t n = n = 0 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · T n 2 i ( x ) · t n .
Combining (2) and (4), and then by comparing the coefficients on both sides of the power series, we can find
a 1 + a 2 + + a k = n P a 1 ( x ) · P a 2 ( x ) P a k ( x ) = i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · T n 2 i ( x ) .
This proves Theorem 1. □
Proof of Theorem 2 
The proof of Theorem 2 is next. Let q > 1 be any integer, χ denotes any primitive character mod q . Then from Theorem 1 with x = cos 2 π a q and the identity T n cos θ = cos ( n θ ) , we have
a 1 + a 2 + + a k = n a = 1 q χ ( a ) P a 1 cos 2 π a q · P a 2 cos 2 π a q P a k cos 2 π a q = i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · a = 1 q χ ( a ) · cos 2 π a ( n 2 i ) q = 1 2 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · a = 1 q χ ( a ) e a ( n 2 i ) q + e a ( n 2 i ) q = τ ( χ ) 2 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · χ ¯ ( n 2 i ) + χ ¯ ( n 2 i ) ,
where e ( y ) = e 2 π i y , and a = 1 q χ ( a ) e n a q = χ ¯ ( n ) τ ( χ ) .
Note that for any primitive character χ mod q , from the properties of Gauss sums, we have τ ( χ ) = q , and for any positive integer k 1 , we have
1 ( 1 x ) k = n = 0 n + k 1 k 1 · x n = 1 ( 1 x ) k 2 · 1 ( 1 x ) k 2 = n = 0 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · x n
or
n + k 1 k 1 = i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! .
Combining (5) and (6), there will be an estimation formula immediately deduced
a 1 + a 2 + + a k = n a = 1 q χ ( a ) P a 1 cos 2 π a q · P a 2 cos 2 π a q P a k cos 2 π a q = q 2 · i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · χ ¯ ( n 2 i ) + χ ¯ ( n 2 i ) q · i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! = q · n + k 1 k 1 .
Theorem 2 is proven completely. □
Proof of Theorem 3 
We prove Theorem 3 below. From the orthogonality of Chebyshev polynomials of the first kind we know that
1 1 T m ( x ) T n ( x ) 1 x 2 d x = 0 , if m n ; π 2 , if m = n > 0 , π , if m = n = 0 .
If integer n 1 with 2 n , then for any integer 0 i n , we have n 2 i 0 , note that T n ( x ) = T n ( x ) , so from (7) and Theorem 1 we have
1 1 1 1 x 2 a 1 + a 2 + + a k = n P a 1 ( x ) · P a 2 ( x ) P a k ( x ) 2 d x = 1 1 1 1 x 2 i = 0 n < k 2 > i i ! · < k 2 > n i ( n i ) ! · T n 2 i ( x ) 2 d x = 4 1 1 1 1 x 2 i = 0 n 2 < k 2 > i i ! · < k 2 > n i ( n i ) ! · T n 2 i ( x ) 2 d x = 2 π · i = 0 n 2 < k 2 > i i ! · < k 2 > n i ( n i ) ! 2 .
For n = 2 m , if n 2 i = 0 , then i = m . So from (7), Theorem 1 and the methods of proving (8) we have
1 1 1 1 x 2 a 1 + a 2 + + a k = n P a 1 ( x ) · P a 2 ( x ) P a k ( x ) 2 d x = 1 1 1 1 x 2 < k 2 > m m ! 2 + 2 i = 0 m 1 < k 2 > i i ! · < k 2 > 2 m i ( 2 m i ) ! · T 2 m 2 i ( x ) 2 d x = π · < k 2 > m m ! 4 + 2 π · i = 0 m 1 < k 2 > i i ! · < k 2 > n i ( n i ) ! 2 = 2 π · i = 0 m < k 2 > i i ! · < k 2 > 2 m i ( 2 m i ) ! 2 π · < k 2 > m m ! 4 .
Let x = sin θ , then we have
1 1 1 1 x 2 a 1 + a 2 + + a k = n P a 1 ( x ) · P a 2 ( x ) P a k ( x ) 2 d x = π 2 π 2 a 1 + a 2 + + a k = n P a 1 sin θ · P a 2 sin θ P a k sin θ 2 d θ .
Now Theorem 3 follows from (8), (9), and (10). □

3. Conclusions

Three theorems and three inferences are the main results in the paper. Theorem 1 gives proof of the symmetry of Legendre polynomials and the symmetry relationship with Chebyshev polynomials of the first kind. This conclusion also improves the early results in [4], and also gives us a different representation for the result in [3]. Theorem 2 obtained an inequality involving Dirichlet characters and Legendre polynomials; this is actually a new contribution to the study of Legendre polynomials and character sums mod q . Theorem 3 established an integral identity involving the symmetry sums of the Legendre polynomials. The three corollaries are some special cases of our three theorems for k = 1 , and can not only enrich the research content of the Legendre polynomials, but also promote its research development.

Author Contributions

All authors have equally contributed to this work. All authors read and approved the final manuscript.

Funding

This work is supported by the Y. S. T. N. S. P (2019KJXX-076) and N. S. B. R. P in Shaanxi Province (2019JM-207).

Acknowledgments

The authors would like to thank the editor and referee for their very helpful and detailed comments, which have significantly improved the presentation of this paper.

Conflicts of Interest

The authors declare that there are no conflicts of interest regarding the publication of this paper.

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MDPI and ACS Style

Wang, T.; Qiao, L. Some Identities and Inequalities Involving Symmetry Sums of Legendre Polynomials. Symmetry 2019, 11, 1521. https://doi.org/10.3390/sym11121521

AMA Style

Wang T, Qiao L. Some Identities and Inequalities Involving Symmetry Sums of Legendre Polynomials. Symmetry. 2019; 11(12):1521. https://doi.org/10.3390/sym11121521

Chicago/Turabian Style

Wang, Tingting, and Liang Qiao. 2019. "Some Identities and Inequalities Involving Symmetry Sums of Legendre Polynomials" Symmetry 11, no. 12: 1521. https://doi.org/10.3390/sym11121521

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