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Many physical application problems are axis-symmetric.
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There has been considerable interest in the Kadomtsev-Petviashvili (KP) equation, which arises in many physical applications including shallow water waves and plasma physics.
This feature of our approach may be important in many physical applications because the locations of the zeros and poles have physically meaningful consequences, including the resonant frequencies and linewidths of the effective trapped cavity modes resulting in the network due to feedback.
The constant impulse is a class of common impulsive perturbations appearing in many physical applications.
However, in many physical applications, we need to consider geometries that are more sophisticated.
This equation appears in many physical applications and is used as a model for nonlinear dispersive waves.
In many physical applications, large scales numerical simulation is no longer possible because of a lack of computing resources.
There are many physical applications in science and engineering that can be represented by models using fractional differential equations [1 10], which are quite useful for many physical problems.
It is expected that this new solver will allow many physical applications to optimally use the parallel resources on current supercomputers.
In many physical applications, one wishes to control the development of multi-dimensional instabilities around a one-dimensional (1D) complex flow.
Spectral problems of differential operators arise in many different physical applications.
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