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Minimization of eigenvalues for some differential equations with integrable potentials

Abstract

In this paper we use the limiting approach to solve the minimization problem of the Dirichlet eigenvalues of Sturm-Liouville equations when the L 1 norm of integrable potentials is given. The construction of an approximating problem in this paper can simplify the analysis in the limiting process.

MSC:34L15, 34L40.

1 Introduction

Extremal problems for eigenvalues are important in applied sciences like optimal control theory, population dynamics [13] and propagation speeds of traveling waves [4, 5]. These are also interesting mathematical problems [610], because the solutions are applied in many different branches of mathematics. The aim of this paper is to solve the minimization problem of the Dirichlet eigenvalues of Sturm-Liouville equations when the L 1 norm of integrable potentials is given.

For 1p, let L p := L p ([0,1],R) denote the Lebesgue space of real functions with the L p norm p = L p [ 0 , 1 ] . Given a potential q L p , we consider Sturm-Liouville equations

y ¨ + ( λ + q ( t ) ) y=0,t[0,1],
(1.1)

with the Dirichlet boundary condition

y(0)=y(1)=0.
(1.2)

It is known that problem (1.1)-(1.2) has countably many eigenvalues (see [11, 12]). They are denoted by λ j , j=1,2, , and ordered in such a way that

< λ 1 (q)< λ 2 (q)<< λ n (q)<,and lim n λ n (q)=+.

For r(0,), denote

B p [r]= { q L p : q p r } .

In this paper, we study the following minimization problem:

L(r):= inf q B 1 [ r ] λ 1 (q).
(1.3)

Note that the minimization problems in [1, 3, 7] are taking over order intervals of potentials/weights which are compact in the weak topologies, and therefore always have minimizers. For example, Krein studied in [7] the minimization problem of weighted Dirichlet eigenvalues of

y ¨ +λw(t)y=0,t[0,1].

Given constants 0<rH<, denote

S:= { w L : 0 w H , 0 1 w ( t ) d t = r } .

The problem is to find

L ˜ := inf w S λ 1 (w).
(1.4)

Using compactness of the class S and continuity of the eigenvalues in the weak topologies, problem (1.4) can be realized by some optimal weight w. However, our problem (1.3) is taking over L 1 balls, which are not compact even in the weak topology w 1 . In order to overcome this difficulty in topology, we first solve the following approximating minimization problem of eigenvalues.

Theorem 1.1 Let

L(r,H):= inf q B 1 [ r ] B [ H ] λ 1 (q),
(1.5)

where r,H(0,). We have that

  1. (i)

    If rH, then

    L(r,H)= π 2 H.
    (1.6)

Moreover, L(r,H) is attained for

q 1 =H.
(1.7)
  1. (ii)

    If r<H, then L(r,H)(, π 2 r) is the unique solution of Z r , H (x)=0. Here, the function Z r , H :(, π 2 r)R is defined as

    Z r , H (x)={ 1 + x H x tanh x H r 2 H tanh x H r 2 H for  x ( , H ) , 1 x + H x tanh x H r 2 H tan x + H r 2 H for  x [ H , 0 ) , 1 H r 2 H tan r 2 H for  x = 0 , 1 x + H x tan x H r 2 H tan x + H r 2 H for  x ( 0 , π 2 r ) .
    (1.8)

Moreover, L(r,H) is attained for

q 1 (t)={ 0 for  t [ 0 , H r 2 H ] , H for  t ( H r 2 H , H + r 2 H ) , 0 for  t [ H + r 2 H , 1 ] .
(1.9)

Then, using the continuous dependence of eigenvalues on potentials with respect to the weak topologies (see [1316]), we obtain a complete solution for minimization problem (1.3).

Theorem 1.2 The following holds:

L(r)= lim H + L(r,H)= Z 1 (r).
(1.10)

Here, the function Z:(, π 2 ][0,) is defined as

Z(x)={ 2 x coth ( x / 2 ) for  x ( , 0 ) , 4 for  x = 0 , 2 x cot ( x / 2 ) for  x ( 0 , π 2 ] .
(1.11)

This paper is organized as follows. In Section 2, we give some preliminary results on eigenvalues. In Section 3, we first consider the approximating minimization for eigenvalues and obtain Theorem 1.1. Then, by the limiting analysis, we give the proof of Theorem 1.2.

We end the introduction with the following remark. In [17, 18], the authors first considered the approximating minimization for eigenvalues on the corresponding L p balls, 1<p<. Then minimization problem (1.3) can be solved by complicated limiting analysis of p1. In this paper, we study a different approximating problem, which also has a sense from mathematical point of view. Such a construction can simplify the analysis in the limiting process.

2 Auxiliary lemmas

In the Lebesgue spaces L p , p[1,], besides the L p norms p , one has the following weak topologies [19]. For p[1,), we use w p to indicate the topology of weak convergence in L p , and for p=, by considering L as the dual space of ( L 1 , 1 ), we have the topology w of weak convergence. In a unified way, q m q 0 in ( L p , w p ) iff

I f(t) q m (t)dt I f(t) q 0 (t)dtf L p .

Here, p :=p/(p1)[1,] is the conjugate exponent of p.

To solve problem (1.5), let us quote from [14, 16] some important properties on eigenvalues.

Lemma 2.1 As nonlinear functionals, λ n (q) are continuous in q( L p , w p ), p[1,].

By the continuity result above, we show that extremal problem (1.5) can be attained in B 1 [r] B [H].

Lemma 2.2 There exists q 1 B 1 [r] B [H] such that L(r,H)= λ 1 ( q 1 ).

Proof Notice that B [H] is compact and B 1 [r] L is closed in ( L , w ). Hence B 1 [r] B [H] is compact in ( L , w ). Consequently, the existence of minimizers of (1.5) can be deduced from Lemma 2.1 in a direct way. □

Eigenvalues possess the following monotonicity property [12].

Lemma 2.3

q 1 , q 2 L 1 , q 1 q 2 λ n ( q 1 ) λ n ( q 2 ).
(2.1)

Moreover, if, in addition, q 1 (t)< q 2 (t) holds on a subset of [0,1] of positive measure, the conclusion inequality in (2.1) is strict.

Next, we use the theory of Schwarz symmetrization as a tool. For a given nonnegative function f defined on the interval [0,1], we denote by f + (resp., f ) the symmetrically increasing (resp., decreasing) rearrangement of f. We recall that the function f + is uniquely defined by the following conditions:

  1. (i)

    f + and f are equimeasurable on [0,1]. That is, for all s0,

    m ( { t : f + ( t ) s } ) =m ( { t : f ( t ) s } ) .
  2. (ii)

    f + is symmetric about t=1/2.

  3. (iii)

    f + is decreasing in the interval [0,1/2].

Similarly, f is (uniquely) defined by (i), (ii) and (iii)’: f is increasing in the interval [0,1/2]. For more information on rearrangements, see [20] and [21].

We can compare the first eigenvalue of q with the first eigenvalue of its rearrangement.

Lemma 2.4 For any q L p , we have λ 1 (q) λ 1 ( | q | ).

Proof Let y 1 (t) be a positive eigenfunction corresponding to λ 1 (q). By [[22], Theorem 378] and [[6], Section 7], we have

λ 1 ( q ) = 0 1 y 1 2 d t 0 1 q y 1 2 d t 0 1 ( y 1 ) 2 d t 0 1 y 1 2 d t 0 1 | q | y 1 2 d t 0 1 ( y 1 ) 2 d t 0 1 y 1 2 d t 0 1 | q | ( y 1 ) 2 d t 0 1 ( y 1 ) 2 d t 0 1 ( ( y 1 ) ) 2 d t 0 1 | q | ( y 1 ) 2 d t 0 1 ( y 1 ) 2 d t λ 1 ( | q | ) .

 □

3 Main results

Now we are ready to prove the main results of this paper. First, we solve the minimization problem for eigenvalues when potentials q B 1 [r] B [H].

Proof of Theorem 1.1 (i) If rH, then B 1 [r] B [H]= B [H]. From the monotonicity property (2.1) of eigenvalues, we have that the minimizer q 1 =H and then L(r,H)= π 2 H by computing directly.

  1. (ii)

    When r<H. By Lemma 2.2, Lemma 2.3 and Lemma 2.4, there exists a minimizer 0 q 1 B 1 [r] B [H] such that L(r,H)= λ 1 ( q 1 ) and q 1 (t)= q 1 (t) for a.e. t. Let y 1 (t) be a positive eigenfunction corresponding to the first eigenvalue λ 1 ( q 1 ). We have from the proof of Lemma 2.4 that y 1 (t) is also an eigenfunction corresponding to the first eigenvalue λ 1 ( q 1 ), which implies that y 1 = y 1 because 0 1 y 1 dt= 0 1 y 1 dt.

Then, we have that for each q B 1 [r] B [H],

0 1 y 1 2 d t 0 1 q 1 y 1 2 d t 0 1 y 1 2 d t = λ 1 ( q 1 )=L(r,H) λ 1 (q) 0 1 y 1 2 d t 0 1 q y 1 2 d t 0 1 y 1 2 d t .

Hence,

0 1 q 1 y 1 2 dt 0 1 q y 1 2 dt,q B 1 [r] B [H].
(3.1)

Let η:= H r 2 H (0,1/2) and ξ:= y 1 (η)>0. Since y 1 is symmetric about t=1/2 and increasing in [0,1/2], we have that

0 < y 1 ( t ) ξ for  t ( 0 , η ) ( 1 η , 1 ) , y 1 ( t ) ξ for  t ( η , 1 η ) .

Define

q η :={ 0 for  t [ 0 , η ] [ 1 η , 1 ] , H for  t ( η , 1 η ) .

We claim that

0 1 q η y 1 2 dt 0 1 q 1 y 1 2 dt.
(3.2)

In fact,

0 1 q η y 1 2 d t 0 1 q 1 y 1 2 d t = η 1 η ( H q 1 ) y 1 2 d t ( 0 η + 1 η 1 ) q 1 y 1 2 d t ξ 2 η 1 η ( H q 1 ) d t ξ 2 ( 0 η + 1 η 1 ) q 1 d t = ξ 2 ( r 0 1 q 1 d t ) 0 .

Notice that q η B 1 [r] B [H]. Comparing (3.1) and (3.2), we know that the equality holds in (3.2) and y 1 (t) is an eigenfunction corresponding to λ 1 ( q η ). Since (3.2) is an equality, we have from the proof that λ 1 ( q 1 )= λ 1 ( q η ) and q 1 (t)= q η (t) for a.e. t.

Let μ 1 := λ 1 ( q 1 ). Now, (1.1) becomes

{ y ¨ 1 + μ 1 y 1 = 0 for  t ( 0 , η ) ( 1 η , 1 ) , y ¨ 1 + ( μ 1 + H ) y 1 = 0 for  t ( η , 1 η ) , y 1 ( 0 ) = y 1 ( 1 ) = 0 , y 1 ( η ) = y 1 ( 1 η ) = ξ .
(3.3)

We can find that the solution y 1 of (3.3) is given by

y 1 (t)={ a sin μ 1 ( t η ) + ξ cos μ 1 ( t η ) for  t [ 0 , η ] , ξ cos μ 1 + H r 2 H cos μ 1 + H ( t 1 / 2 ) for  t ( η , 1 η ) , a sin μ 1 ( t 1 + η ) + ξ cos μ 1 ( t 1 + η ) for  t [ 1 η , 1 ] ,
(3.4)

where a=ξ μ 1 + H μ 1 tan μ 1 + H r 2 H . Since y 1 (0)= y 1 (1)=0 and μ 1 π 2 r, we get from (3.4) that μ 1 is the unique solution of Z r , H (x)=0, where Z r , H (x) is as in (1.8). □

Finally, we use the limiting approach to obtain a complete solution for the minimization problem of eigenvalues when the L 1 norm of integrable potentials is given.

Proof of Theorem 1.2 By the definitions of Z r , H in (1.8) and Z in (1.11), we have that

lim H + Z r , H (x)=1 r Z ( x ) ,

which implies that

lim H + L(r,H)= Z 1 (r).

Since B 1 [r] B 1 [r] B [H], we have that L(r)L(r,H) and then

L(r) lim H + L(r,H).
(3.5)

On the other hand, since λ 1 (q) is continuous in q( L 1 , w 1 ), λ 1 (q) is continuous in q( L 1 , 1 ). Notice that B 1 [r] H > 0 ( B 1 [ r ] B [ H ] ) ¯ , where the closure is taken in the L 1 space ( L 1 , 1 ). We have that for arbitrary ϵ>0 and q B 1 [r], there exist H 0 and q H 0 B 1 [r] B [ H 0 ] such that

| λ 1 ( q H 0 ) λ 1 ( q ) | <ϵ.

Hence,

λ 1 (q)+ϵ> λ 1 ( q H 0 )L(r, H 0 ) lim H + L(r,H).

Because q B 1 [r] is arbitrary, it holds that

L(r)+ϵ lim H + L(r,H).

Therefore, we have that

L(r) lim H + L(r,H)
(3.6)

since ϵ>0 is arbitrary.

By (3.5) and (3.6), the proof is complete. □

Remark 3.1 Fix r>0. Assume that q H B 1 [r] B [H] is as in (1.7) when rH and as in (1.9) when r<H. Then L(r,H)= λ 1 ( q H ). Moreover, we have that

q H r δ 1 / 2 in  ( ( C [ 0 , 1 ] ) , w )

as H+. In fact, for any fC[0,1], it holds that

0 1 f q H d t = H H r 2 H H + r 2 H f d t = r f ( t ˜ ) ( where  t ˜ [ H r 2 H , H + r 2 H ] ) r f ( 1 / 2 ) = 0 1 f r δ 1 / 2 d t

as H+.

Notice that r δ 1 / 2 is not in the L 1 space. So, we get the so-called measure differential equations. For some basic theory for eigenvalues of the second-order linear measure differential equations, see [23].

References

  1. Derlet A, Gossez J-P, Takáč P: Minimization of eigenvalues for a quasilinear elliptic Neumann problem with indefinite weight. J. Math. Anal. Appl. 2010, 371: 69-79. 10.1016/j.jmaa.2010.03.068

    Article  MathSciNet  Google Scholar 

  2. Kao C-Y, Lou Y, Yanagida E: Principal eigenvalue for an elliptic problem with indefinite weight on cylindrical domains. Math. Biosci. Eng. 2008, 5: 315-335.

    Article  MathSciNet  Google Scholar 

  3. Lou Y, Yanagida E: Minimization of the principal eigenvalue for an elliptic boundary value problem with indefinite weight, and applications to population dynamics. Jpn. J. Ind. Appl. Math. 2006, 23: 275-292. 10.1007/BF03167595

    Article  MathSciNet  Google Scholar 

  4. Liang X, Lin X, Matano H: A variational problem associated with the minimal speed of travelling waves for spatially periodic reaction-diffusion equations. Trans. Am. Math. Soc. 2010, 362: 5605-5633. 10.1090/S0002-9947-2010-04931-1

    Article  MathSciNet  Google Scholar 

  5. Liang X, Yi Y, Zhao X-Q: Spreading speeds and traveling waves for periodic evolution systems. J. Differ. Equ. 2006, 231: 57-77. 10.1016/j.jde.2006.04.010

    Article  MathSciNet  Google Scholar 

  6. Karaa S: Sharp estimates for the eigenvalues of some differential equations. SIAM J. Math. Anal. 1998, 29: 1279-1300. 10.1137/S0036141096307849

    Article  MathSciNet  Google Scholar 

  7. Krein MG: On certain problems on the maximum and minimum of characteristic values and on the Lyapunov zones of stability. Transl. Am. Math. Soc. 1955, 1: 163-187.

    MathSciNet  Google Scholar 

  8. Zhang M:Extremal values of smallest eigenvalues of Hill’s operators with potentials in L 1 balls. J. Differ. Equ. 2009, 246: 4188-4220. 10.1016/j.jde.2009.03.016

    Article  Google Scholar 

  9. Zhang M: Extremal eigenvalues of measure differential equations with fixed variation. Sci. China Math. 2010, 53: 2573-2588. 10.1007/s11425-010-4081-9

    Article  MathSciNet  Google Scholar 

  10. Zhang M: Minimization of the zeroth Neumann eigenvalues with integrable potentials. Ann. Inst. Henri Poincaré, Anal. Non Linéaire 2012, 29: 501-523. 10.1016/j.anihpc.2012.01.007

    Article  Google Scholar 

  11. Zettl A Math. Surveys & Monographs 121. In Sturm-Liouville Theory. Am. Math. Soc., Providence; 2005.

    Google Scholar 

  12. Zhang M: The rotation number approach to eigenvalues of the one-dimensional p -Laplacian with periodic potentials. J. Lond. Math. Soc. 2001, 64: 125-143. 10.1017/S0024610701002277

    Article  Google Scholar 

  13. Meng G, Yan P, Zhang M: Spectrum of one-dimensional p -Laplacian with an indefinite integrable weight. Mediterr. J. Math. 2010, 7: 225-248. 10.1007/s00009-010-0040-5

    Article  MathSciNet  Google Scholar 

  14. Meng G, Zhang M: Continuity in weak topology: First order linear systems of ODE. Acta Math. Sin. Engl. Ser. 2010, 26: 1287-1298. 10.1007/s10114-010-8103-x

    Article  MathSciNet  Google Scholar 

  15. Yan P, Zhang M: Continuity in weak topology and extremal problems of eigenvalues of the p -Laplacian. Trans. Am. Math. Soc. 2011, 363: 2003-2028. 10.1090/S0002-9947-2010-05051-2

    Article  Google Scholar 

  16. Zhang M: Continuity in weak topology: Higher order linear systems of ODE. Sci. China Ser. A 2008, 51: 1036-1058.

    Article  MathSciNet  Google Scholar 

  17. Meng G, Yan P, Zhang M: Minimization of eigenvalues of one-dimensional p -Laplacian with integrable potentials. J. Optim. Theory Appl. 2013, 156: 294-319. 10.1007/s10957-012-0125-3

    Article  MathSciNet  Google Scholar 

  18. Wei Q, Meng G, Zhang M:Extremal values of eigenvalues of Sturm-Liouville operators with potentials in L 1 balls. J. Differ. Equ. 2009, 247: 364-400. 10.1016/j.jde.2009.04.008

    Article  MathSciNet  Google Scholar 

  19. Dunford N, Schwartz JT: Linear Operators, Part I. Interscience, New York; 1958.

    Google Scholar 

  20. Bandle C: Isoperimetric Inequalities and Applications. Pitman, London; 1980.

    Google Scholar 

  21. Schwarz B: On the extrema of a nonhomogeneous string with equimeasurable density. J. Math. Mech. 1961, 10: 401-422.

    MathSciNet  Google Scholar 

  22. Hardy GH, Littlewood JE, Polya G: Inequalities. Cambridge University Press, Cambridge; 1934.

    Google Scholar 

  23. Meng G, Zhang M: Dependence of solutions and eigenvalues of measure differential equations on measures. J. Differ. Equ. 2013, 254: 2196-2232. 10.1016/j.jde.2012.12.001

    Article  MathSciNet  Google Scholar 

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Acknowledgements

The author is supported by the National Natural Science Foundation of China (Grant No. 11201471), the Marine Public Welfare Project of China (No. 201105032) and the President Fund of GUCAS.

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Meng, G. Minimization of eigenvalues for some differential equations with integrable potentials. Bound Value Probl 2013, 220 (2013). https://doi.org/10.1186/1687-2770-2013-220

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