./wip/py-opentmm, OpenTMM is an object-oriented electrodynamic S-matrix

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Branch: CURRENT, Version: 0.1.0, Package name: py310-opentmm-0.1.0, Maintainer: jihbed.research

OpenTMM is an object-oriented electrodynamic S-matrix (transfer matrix)
code with modern applications.

Electromagnetic wave propagation through planar stratified media
(multilayer stack); the three-dimensional space is divided into layers.
The interfaces separating the layers are assumed to be perfectly planar
and the layers are assumed to be isotropic and homogeneous, with a complex
permittivity and permeability. Moreover, the layers may be composed of a
left-handed material (negative refractive material) and/or a right-handed
material. The implementation is suitable for the study of modern
applications, e.g., Anderson localization of light and sub-wavelength imaging


Required to run:
[devel/py-setuptools] [math/py-scipy] [math/py-numpy] [lang/gcc7]

Required to build:
[pkgtools/cwrappers]

Master sites:

RMD160: 9c848a83b60152e6552038802622236a9cdedce2
Filesize: 511.43 KB

Version history: (Expand)


CVS history: (Expand)


   2014-12-31 14:58:32 by Thomas Klausner | Files touched by this commit (37)
Log message:
Improve EGG_NAME default to work for packages with '-' in their name.
Remove now unnecessary overrides in various packages.

Fix various problems while here, including marking packages as not ready
for python-3.x.
   2012-11-14 01:16:14 by othyro | Files touched by this commit (42)
Log message:
Fixed invalid CATEGORIES. Some of these also got DISTNAME modified and
minor formatting fixes.
   2012-10-07 14:25:28 by Aleksej Saushev | Files touched by this commit (17)
Log message:
Drop superfluous PKG_DESTDIR_SUPPORT, "user-destdir" is default these days.
Mark packages that don't or might probably not have staged installation.
   2012-08-25 18:50:42 by Kamel Derouiche | Files touched by this commit (4) | Imported package
Log message:
Import py27-opentmm-0.1.0 as wip/py-opentmm.

OpenTMM is an object-oriented electrodynamic S-matrix (transfer matrix)
code with modern applications.

Electromagnetic wave propagation through planar stratified media
(multilayer stack); the three-dimensional space is divided into layers.
The interfaces separating the layers are assumed to be perfectly planar
and the layers are assumed to be isotropic and homogeneous, with a complex
permittivity and permeability.  Moreover, the layers may be composed of a
left-handed material  (negative refractive material) and/or a right-handed
material. The implementation is suitable for the study of modern
applications, e.g., Anderson localization of light and sub-wavelength imaging