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981.
We give a simple proof of the Uncertainty Principle for finite nonabelian groups, which generalizes directly to compact groups.  相似文献   
982.
1IntroductionTheBoussinesqequationarisesinseveralphysicalapplicationandhasbeenstudiedquiteextensivelyinthepast[1--3].Inarecentpaper[4],itwasfoundthattheBoussinesqhierarchycanbeobtainedfromthezero-curvatureconditionassociatedwiththegroupSL(3,R).ThisshowsadirectrelationshipbetweenthegroupSL(3,R)andtheW3algebraofZamolodchikov.Recentlytherehasbeenconsiderableinterestinthedecompositionofsolitonequationsviaconstraintsrelatingpotentialandeigenfunctions,becausethedecompositionprovidesaneffectiveme…  相似文献   
983.
本文从一简化的新经典MHD方程组出发,利用气球模表示及多尺度近似等方法,在q=1磁面附近的过渡层内导出了包含新经典MHD效应的内扭曲模本征方程。与从前相关工作的比较表明,新经典MHD效应对通常采用的磁流体或电阻磁流体内扭曲模本征方程,均产生十分重要的修正。  相似文献   
984.
AMODELFORWHITENOISEANALYSISINP-ADICNUMBERFIELDS(黄志远)¥AndrewKhrennikov(MoscowInst.ofElectronicEngineering,103498,Zelenograd,K-...  相似文献   
985.
Let (L2)B?? and (L2)b?? be the spaces of generalized Brownian functionals of the white noises ? and ?, respectively. A Fourier transform from (L2)B?? into (L2)b?? is defined by ??(?) = ∫S1: exp[?i ∫R?(t) ?(t) dt]: b??(B?) dμ(B?), where : :b? denotes the renormalization with respect to ? and μ is the standard Gaussian measure on the space S1 of tempered distributions. It is proved that the Fourier transform carries ?(t)-differentiation into multiplication by i?(t). The integral representation and the action of?? as a generalized Brownian functional are obtained. Some examples of Fourier transform are given.  相似文献   
986.
In the context of solving nonlinear partial differential equations, Shu and Osher introduced representations of explicit Runge-Kutta methods, which lead to stepsize conditions under which the numerical process is total-variation-diminishing (TVD). Much attention has been paid to these representations in the literature.

In general, a Shu-Osher representation of a given Runge-Kutta method is not unique. Therefore, of special importance are representations of a given method which are best possible with regard to the stepsize condition that can be derived from them.

Several basic questions are still open, notably regarding the following issues: (1) the formulation of a simple and general strategy for finding a best possible Shu-Osher representation for any given Runge-Kutta method; (2) the question of whether the TVD property of a given Runge-Kutta method can still be guaranteed when the stepsize condition, corresponding to a best possible Shu-Osher representation of the method, is violated; (3) the generalization of the Shu-Osher approach to general (possibly implicit) Runge-Kutta methods.

In this paper we give an extension and analysis of the original Shu-Osher representation, by means of which the above questions can be settled. Moreover, we clarify analogous questions regarding properties which are referred to, in the literature, by the terms monotonicity and strong-stability-preserving (SSP).

  相似文献   

987.
988.
Karasev  M. V.  Novikova  E. M. 《Mathematical Notes》2002,72(1-2):48-65
We present a class of non-Lie commutation relations admitting representations by point-supported operators (i.e., by operators whose integral kernels are generalized point-supported functions). For such relations we construct all operator-irreducible representations (up to equivalence). Each representation is realized by point-supported operators in the Hilbert space of antiholomorphic functions. We show that the reproducing kernels of these spaces can be represented via hypergeometric series and the theta function, as well as via their modifications. We construct coherent states that intertwine abstract representations with irreducible representations.  相似文献   
989.

In this paper we consider the Magnus representation of the Torelli group. We prove that it is not faithful by showing a non-trivial element in the kernel of this representaion.

  相似文献   

990.
Von zur Gathen proposed an efficient parallel exponentiation algorithm in finite fields using normal basis representations. In this paper we present a processor-efficient parallel exponentiation algorithm in GF(qn) which improves upon von zur Gathen's algorithm. We also show that exponentiation in GF(qn) can be done in O((log2n)2/logqn) time using n/(log2n)2 processors. Hence we get a processor-time bound of O(n/logqn), which matches the best known sequential algorithm. Finally, we present an efficient on-line processor assignment scheme which was missing in von zur Gathen's algorithm.  相似文献   
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