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Titlebook: Adaptive Multiscale Schemes for Conservation Laws; Siegfried Müller Book 2003 Springer-Verlag Berlin Heidelberg 2003 Approximation.Wavelet

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https://doi.org/10.1007/978-3-663-13795-5articular, we are interested in applications to . arising from problems in engineering. For this purpose, we present several computations for the two-dimensional Euler equations for a polytropic gas with γ = 1.4, see Example 3. These have been carried out on PC’s with a 600 MHz processor (Pentium III).
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Lecture Notes in Computational Science and Engineeringhttp://image.papertrans.cn/a/image/144713.jpg
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https://doi.org/10.1007/978-3-663-02339-5here the solution is smooth and a coarser grid would be sufficient for appropriately resolving the solution. Instead, the grid should be adapted to the problem at hand to produce an economic representation of the solution. By means of local grid refinements the complexity of the problem, i.e., the n
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Bericht der britischen Monopol-Kommission,lowing we will discuss the design of data structures where we deduce some fundamental . from ., see Sect. 6.1. Here the concept of . turns out to be an efficient tool which fulfills these criteria. The basic ideas of . and . are summarized in Sect. 6.2, although they can be found in standard text bo
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https://doi.org/10.1007/978-3-663-13795-5niques to a reference scheme. For scalar conservation laws we have been able to derive an error estimate of the form (5.1). This is based on an a priori error estimate for the . of the reference FVS and the . in the sense of (5.3). In [CKMP01] parameter studies have been presented for scalar one-dim
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