Files
apbs/tools/python/vgrid/vgridlib.c
Noah Oblath fb6ecf9710 Nsoblath/issue 163 (#171) (#202)
* Add a Dockerfile for testing

* Switch to FETK 1.8.1 and cleanup of FETK build

* New versions of geoflow and pb_solvers for testing

* Simplified Dockerfile

* Fixing a bug for getting FETK in windows

* A little more cleanup

* Update Geoflow git tag for new release

* Test building static libs

* Update pb_solvers commit to most recent release

* Update to the latest release of pb_solvers

* Separate configure/build stage for linux and mac

* Update the build script

* Update .build.sh

* Add libopenblas-dev to the linux dependencies

* Add tmate session to debug windows packing issue

* Debugging the windows packaging failure

* Maybe it's a shell problem?

* A little more debugging of the windows cpack failure

* Separate package creation for windows to get around the cmake/chocolatey conflict

* Best if I use the proper syntax . . .

* Typo fix

* Remove debugging modifications

* Cleanup of the build workflow

* Removing AppVeyor build and badge (Windows build is now done in GitHub Actions)

* Update .build.sh

* Update index.rst

* Use software-properties-common to get python3 in the Dockerfile

* Change directory into build before running tests

* Tests don't need to be their own project

* Turning off testing and building in the build script for GHA test purposes

* Check that the geoflow tests are working with this dev branch of geoflow

* Updated to released version of Geoflow

* First attempt at a test job

* Added required dependencies for apbs linkages
Added running of an example

* Fix directory

* Fixing the path to the downloaded artifacts

* Testing for mac and windows requirements

* Syntax fix

* Mod to check mac prereqs; note about windows prereqs

* (temporarily) remove some slow tests

* Add mac prereqs for test job

* Add component specification to all install lines and use to control the package creation

* Add tmate back in for now

* Enable the build of iAPBS, with a few changes to how it's done to make sure it links into apbs

* Minor logic fix

* Removed the include/Eigen directory.  It seemed to be confusing the Windows build.

* APBS needs to know where Eigen3 is

* Geoflow updated to deconflict class name with FETK/mc.  Build of Geoflow updated, with APBS dependency moved into APBS.  Build in src is updated accordingly.

* Updating Geoflow to the new release

* Move configure_file for apbscfg.h down in the CMakeLists.txt so that it has all of the necessary info

* Enable tmate session in windows to check linking for a successful windows test

* Potential fix to incorrect arguments in calls to preRefineFE and postRefineFE

* tmate session on test job failure

* Temporarily include headers and libraries in the zip file

* Remove hardcoded apbscfg.h and maloccf.h

* Add windows dependencies to the test run

* echo the PATH variable so we can check to see if the vcpkg libraries are findable

* Add the vcpkg bin directory to the path

* Use variable ENABLE_FETK instead of FETK_ENABLED to control building with FETK

* Renaming some build variables, per some TODOs in apbscfg.h.in

* Switch use tests to using run_selected_tests.sh

* Forgot to include the script to run

* Fix permissions for the examples scripts by using the USE_SOURCE_PERMISSIONS argument

* Added CHANGELOG.md and .extract_section.sh script (copied from FETK implementation)

* Add release.yaml and release artifacts (copied implementation from FETK)

* Update version to 3.3.0.alpha

* Fix variable for tag name

* Move release of artifacts to a separate job

* Was missing the step id

* Also had the wrong id here

* Oy, hopefully the last thing I missed

* Fixing the logic of having a separate publish release job

* Reworking how the package filenames are handled

* Trigger a new build

* Attempting fix to issue with retrieving and storing the zip file name

* Use expression instead of shell expansion

* Workflow cleanup

* Back-filling the changelog's previous entries from the GitHub Releases

* Git tags are prepended with a v

* Consolidating cmake settings

* Turn PYGBE on, and a couple of associated fixes

* Stripping out Tinker support

* Enable debugging in workflows

* Add python3 to mac and linux dependencies

* Shouldn't need `vcpkg integrate install` in the use test

* Need the python library in linux

* Update .extract_section.sh to handle the rst file releases.rst

* Test conversion of release rst to md

* Oops, docker actions are linux only

* One more linux-only restriction

* Build directory and install directory check for already-set values in .build.sh

* Do initial work to accommodate building the NSIS file

* Fixing typos from the last commit

* Actually process and attempt to use the NSIS file

* Separate NSIS build into a separate step to see what's causing the job to hang

* Fixing step id

* Move release extraction to release.yaml and use setup-python@v2 for python installation

* Setup to do a little debugging

* Removing the use of git submodule updating in the build

* Remove NSIS use test for now

* Removing the use of NSIS packaging

* Setup a tmate session for container testing

* Do a test of running a windows container

* Another container test

* One more docker container attempt

* Some documentation updates

* Return to the regular build

* Copying in dependency libraries

* Fixing a library name

* Option for a fully static build (does not work when OpenMP is used)

* Try out a fully static build without OpenMP

* Working on diagnosing static build

* Two bug fixes

* Using a test version of FETK to try a static build

* YAML fix

* Not sure why it's behaving as if a git hash matches a version tag, but for now we'll force it to use the git hash FETK download

* Compile flag needed for linux, at least

* Modifying dependencies that are installed

* Updated pb_solvers for testing the use of the pbsolvers namespace; Fixed inclusion of BLAS.

* Try removing specification of compiler

* Update pb_solvers for wrapping fixes

* Enable tmate on failure

* Another pb_solvers update

* Remove openmp; I think it's screwing up finding OpenBLAS on Ubuntu

* Missing headers were causing a problem on macos

* Let's see if using libopenblas-serial-dev fixes the finding-openblas problem on linux

* Avoid some cmake warnings and use an updated pb_solvers

* Maybe the final fix to have things working?  Updating pb_solvers.

* New version of FETK

* Including some dependencies

* Added finding AMD

* git-ignore all directories that start with build

* FETK is now treated as a required dependency, much earlier in the build

* These find modules are now handled by FETK

* Updating how dependencies are searched for and handled

* Use GNU standard install directories

* Getting things in the right order

* Remove the use of EXECUTABLE_OUTPUT_PATH and LIBRARY_OUTPUT_PATH

* I think we deleted nanoshaper when we cleared the temp directory, so don't do this

* Install metis manually on mac and linux to get static libs

* Separate tar and gunzip calls

* Sudo make install on linux

* Fixing the TABIPB library install location and NanoShaper duplicate install issues.

* Adding Python for linux

* Add a global static-build option and set the MSVC runtime library variable to hopefully perform a static build in windows

* Run tmate for windows to check linking

* Some anticipation of the types of jobs that will be run

* Adapt to changes in FETK

* Update FETK hash

* Remove extra line and print umfpack libraries

* Verbose build, for now

* Debugging messages

* Update FETK

* Need libumfpack for the windows use tests.  And use tmate if the build fails.

* Remove the link search variables

* Enable PYGBE in Windows and add Python to use tests in all builds

* Fix copying of dlls into the Windows zip package

* Attempt at providing a windows equivalent of the use of dirname in main.c

* Typo

* We shouldn't need the installed prereqs in Windows (libraries should come with the zip file)

* Need to get rid of the extension

* Use 7z instead of zip/unzip

* Fixing the path to the package

* Need to specify the python version to CMake

* Min and max python versions

* Treat version numbers as strings until they're into CMake

* Fix python version variable

* Add ldd step for debugging windows use test

* Let's see if it's just Python/PYGBE causing problems on the windows build

* Let's see if it's the python linking or the PYGBE-enabled code is causing the Windows use test problem

* Fixing the declaration of mol_dirname for the Windows build and re-enabling the use of PYGBE

* Some documentation updates

* Try including PYGBE without doing _splitpath

* Get tmate in windows after build

* Specify Python architecture

* Revert tmate to on failure after build

* [skip ci]
Test skipping the CI process, and also minor docs update

* Retesting with all selected examples enabled

* Remove examples that fail

* Added comments on CMake policy choices

* New FETK version

* Cleanup

* Re-enable examples to check current status

* [skip ci] Updated current status of examples in run_selected_examples.sh.

* Add metis build to the Dockerfile

* Update FETK version in the Dockerfile

* Replace pbsam-auto with pbsam in a couple of examples

* Updated run_selected_examples.sh with gdb bt of geoflow/glycerol.in example

* [skip ci] Updated releases.rst

* Fixing the logic for recognizing version numbers.  The key was to put the FETK_IMPORT_VERSION variable in brackets in the if() statement.

* Fixing issues in the running and wrapping of geoflow:
* The molecule index used when calling runGeometricFlowWrapAPBS is taken from the configuration `mol` value instead of hardcoded
* The input geoflow parameters (in struct of type GeometricFlowInput) are passed by pointer instead of as a struct

* PBAM and PBSAM are now disabled by default pending further development work on their integration

* Added notes for the failure of the born/apbs-mol-fem-extmesh.in example.  Update FETK to fix the failure.

* Enable maximum verbosity in ctest to try to diagnose the weirdness in the windows ctest run

* Fix logic around finding python for cmake <v3.19 and for only having a minimum version defined

* Report test failures with raised exceptions

* See if the Windows test failures are a shell-related issue

* Adding some missing newlines

* Trying to sort the install dir for mac and linux

* Don't clean the install and build dirs.  Let cmake take care of what it needs to take care of.  And rm -rf'ing a directory passed to a script without any validation is scary.

* I do, in fact, need to create the build dir

* Un-verbose the linux and mac build

* Relative install dir

* Same thing, this time in linux too

* Non-verbose makefile in windows

* Install PYGBE if enabled

* Install in the build directory, not build/build

* Include bin directory in path for tests

* hyphens, not minuses.  fixed spaces in names

* Parse before printing

* Debugging messages for python version

* Set path to include location of libumfpack

* Fix directory name in windows

* Prevent checking of uninitialized array

* Remove the PYGBE example

* Some CMake/Python debugging

* Set swap space in Windows to handle memory-intensive tests

* Instead of setting the swap space, set the pagefile size

* Add the large-address-aware option to the linker flags under Windows

* Print the execution log on failure

* Enter tmate in windows during the build job

* Use RELEASE_TYPE variable instead of hardcoding configuration name

* Switch to debug build for debugging

* Try to catch windows build failure

* Try to resolve the python debug library issue using Python_LIBRARY_RELEASE

* Use Python3_FIND_ABI to specify non-debug library

* Undo the python ABI thing

* Test hack to get around python debug library

* Add a temporary debugging tmate session

* Let's try debugging with the mac build

* For now, just build linux and mac

* Go back to a release build to try to replicate the crashes we saw before

* Make sure all arrays get some sort of initialization

* Call destructors if pointers aren't NULL

* FETK now on 1.9.0

* Updating FETK version to 1.9.1

* Cleanup and docs updates

* Exit the build script with an error when the build fails

* Use FETK v1.9.2

* Remove -fPIE option in a strange place

* Verbose build for debug

* Skip RPATH for static builds?

* Try FETK source build instead of release download

* Switch default FETK version to the git hash at v1.9.2 (causes source build instead of binary install)

* Remove verbosity from build script

* Cleanup

* Tweaking the docs

* Updating the check for a linux build

Co-authored-by: Noah Oblath <noah.oblath@pnnl.gov>
Co-authored-by: Darren Curtis <Darren.Curtis@pnnl.gov>

Co-authored-by: Noah Oblath <noah.oblath@pnnl.gov>
Co-authored-by: Darren Curtis <Darren.Curtis@pnnl.gov>
2022-01-24 15:35:09 -08:00

3233 lines
95 KiB
C

/* ----------------------------------------------------------------------------
* This file was automatically generated by SWIG (http://www.swig.org).
* Version 1.3.25
*
* This file is not intended to be easily readable and contains a number of
* coding conventions designed to improve portability and efficiency. Do not make
* changes to this file unless you know what you are doing--modify the SWIG
* interface file instead.
* ----------------------------------------------------------------------------- */
#define SWIGPYTHON
/***********************************************************************
*
* This section contains generic SWIG labels for method/variable
* declarations/attributes, and other compiler dependent labels.
*
************************************************************************/
/* template workaround for compilers that cannot correctly implement the C++ standard */
#ifndef SWIGTEMPLATEDISAMBIGUATOR
# if defined(__SUNPRO_CC) && (__SUNPRO_CC <= 0x560)
# define SWIGTEMPLATEDISAMBIGUATOR template
# else
# define SWIGTEMPLATEDISAMBIGUATOR
# endif
#endif
/* inline attribute */
#ifndef SWIGINLINE
# if defined(__cplusplus) || (defined(__GNUC__) && !defined(__STRICT_ANSI__))
# define SWIGINLINE inline
# else
# define SWIGINLINE
# endif
#endif
/* attribute recognised by some compilers to avoid 'unused' warnings */
#ifndef SWIGUNUSED
# if defined(__GNUC__) || defined(__ICC)
# define SWIGUNUSED __attribute__ ((unused))
# else
# define SWIGUNUSED
# endif
#endif
/* internal SWIG method */
#ifndef SWIGINTERN
# define SWIGINTERN static SWIGUNUSED
#endif
/* internal inline SWIG method */
#ifndef SWIGINTERNINLINE
# define SWIGINTERNINLINE SWIGINTERN SWIGINLINE
#endif
/* exporting methods for Windows DLLs */
#ifndef SWIGEXPORT
# if defined(_WIN32) || defined(__WIN32__) || defined(__CYGWIN__)
# if defined(STATIC_LINKED)
# define SWIGEXPORT
# else
# define SWIGEXPORT __declspec(dllexport)
# endif
# else
# define SWIGEXPORT
# endif
#endif
/* calling conventions for Windows */
#ifndef SWIGSTDCALL
# if defined(_WIN32) || defined(__WIN32__) || defined(__CYGWIN__)
# define SWIGSTDCALL __stdcall
# else
# define SWIGSTDCALL
# endif
#endif
#ifdef _DEBUG
#define _DEBUG_WAS_DEFINED
#undef _DEBUG
#endif
#include <Python.h>
#ifdef _DEBUG_WAS_DEFINED
#define _DEBUG
#undef _DEBUG_WAS_DEFINED
#endif
/***********************************************************************
* swigrun.swg
*
* This file contains generic CAPI SWIG runtime support for pointer
* type checking.
*
************************************************************************/
/* This should only be incremented when either the layout of swig_type_info changes,
or for whatever reason, the runtime changes incompatibly */
#define SWIG_RUNTIME_VERSION "2"
/* define SWIG_TYPE_TABLE_NAME as "SWIG_TYPE_TABLE" */
#ifdef SWIG_TYPE_TABLE
# define SWIG_QUOTE_STRING(x) #x
# define SWIG_EXPAND_AND_QUOTE_STRING(x) SWIG_QUOTE_STRING(x)
# define SWIG_TYPE_TABLE_NAME SWIG_EXPAND_AND_QUOTE_STRING(SWIG_TYPE_TABLE)
#else
# define SWIG_TYPE_TABLE_NAME
#endif
/*
You can use the SWIGRUNTIME and SWIGRUNTIMEINLINE macros for
creating a static or dynamic library from the swig runtime code.
In 99.9% of the cases, swig just needs to declare them as 'static'.
But only do this if is strictly necessary, ie, if you have problems
with your compiler or so.
*/
#ifndef SWIGRUNTIME
# define SWIGRUNTIME SWIGINTERN
#endif
#ifndef SWIGRUNTIMEINLINE
# define SWIGRUNTIMEINLINE SWIGRUNTIME SWIGINLINE
#endif
#include <string.h>
#ifdef __cplusplus
extern "C" {
#endif
typedef void *(*swig_converter_func)(void *);
typedef struct swig_type_info *(*swig_dycast_func)(void **);
/* Structure to store inforomation on one type */
typedef struct swig_type_info {
const char *name; /* mangled name of this type */
const char *str; /* human readable name of this type */
swig_dycast_func dcast; /* dynamic cast function down a hierarchy */
struct swig_cast_info *cast; /* linked list of types that can cast into this type */
void *clientdata; /* language specific type data */
} swig_type_info;
/* Structure to store a type and conversion function used for casting */
typedef struct swig_cast_info {
swig_type_info *type; /* pointer to type that is equivalent to this type */
swig_converter_func converter; /* function to cast the void pointers */
struct swig_cast_info *next; /* pointer to next cast in linked list */
struct swig_cast_info *prev; /* pointer to the previous cast */
} swig_cast_info;
/* Structure used to store module information
* Each module generates one structure like this, and the runtime collects
* all of these structures and stores them in a circularly linked list.*/
typedef struct swig_module_info {
swig_type_info **types; /* Array of pointers to swig_type_info structures that are in this module */
size_t size; /* Number of types in this module */
struct swig_module_info *next; /* Pointer to next element in circularly linked list */
swig_type_info **type_initial; /* Array of initially generated type structures */
swig_cast_info **cast_initial; /* Array of initially generated casting structures */
void *clientdata; /* Language specific module data */
} swig_module_info;
/*
Compare two type names skipping the space characters, therefore
"char*" == "char *" and "Class<int>" == "Class<int >", etc.
Return 0 when the two name types are equivalent, as in
strncmp, but skipping ' '.
*/
SWIGRUNTIME int
SWIG_TypeNameComp(const char *f1, const char *l1,
const char *f2, const char *l2) {
for (;(f1 != l1) && (f2 != l2); ++f1, ++f2) {
while ((*f1 == ' ') && (f1 != l1)) ++f1;
while ((*f2 == ' ') && (f2 != l2)) ++f2;
if (*f1 != *f2) return (int)(*f1 - *f2);
}
return (l1 - f1) - (l2 - f2);
}
/*
Check type equivalence in a name list like <name1>|<name2>|...
Return 0 if not equal, 1 if equal
*/
SWIGRUNTIME int
SWIG_TypeEquiv(const char *nb, const char *tb) {
int equiv = 0;
const char* te = tb + strlen(tb);
const char* ne = nb;
while (!equiv && *ne) {
for (nb = ne; *ne; ++ne) {
if (*ne == '|') break;
}
equiv = (SWIG_TypeNameComp(nb, ne, tb, te) == 0) ? 1 : 0;
if (*ne) ++ne;
}
return equiv;
}
/*
Check type equivalence in a name list like <name1>|<name2>|...
Return 0 if equal, -1 if nb < tb, 1 if nb > tb
*/
SWIGRUNTIME int
SWIG_TypeCompare(const char *nb, const char *tb) {
int equiv = 0;
const char* te = tb + strlen(tb);
const char* ne = nb;
while (!equiv && *ne) {
for (nb = ne; *ne; ++ne) {
if (*ne == '|') break;
}
equiv = (SWIG_TypeNameComp(nb, ne, tb, te) == 0) ? 1 : 0;
if (*ne) ++ne;
}
return equiv;
}
/* think of this as a c++ template<> or a scheme macro */
#define SWIG_TypeCheck_Template(comparison, ty) \
if (ty) { \
swig_cast_info *iter = ty->cast; \
while (iter) { \
if (comparison) { \
if (iter == ty->cast) return iter; \
/* Move iter to the top of the linked list */ \
iter->prev->next = iter->next; \
if (iter->next) \
iter->next->prev = iter->prev; \
iter->next = ty->cast; \
iter->prev = 0; \
if (ty->cast) ty->cast->prev = iter; \
ty->cast = iter; \
return iter; \
} \
iter = iter->next; \
} \
} \
return 0
/*
Check the typename
*/
SWIGRUNTIME swig_cast_info *
SWIG_TypeCheck(const char *c, swig_type_info *ty) {
SWIG_TypeCheck_Template(strcmp(iter->type->name, c) == 0, ty);
}
/* Same as previous function, except strcmp is replaced with a pointer comparison */
SWIGRUNTIME swig_cast_info *
SWIG_TypeCheckStruct(swig_type_info *from, swig_type_info *into) {
SWIG_TypeCheck_Template(iter->type == from, into);
}
/*
Cast a pointer up an inheritance hierarchy
*/
SWIGRUNTIMEINLINE void *
SWIG_TypeCast(swig_cast_info *ty, void *ptr) {
return ((!ty) || (!ty->converter)) ? ptr : (*ty->converter)(ptr);
}
/*
Dynamic pointer casting. Down an inheritance hierarchy
*/
SWIGRUNTIME swig_type_info *
SWIG_TypeDynamicCast(swig_type_info *ty, void **ptr) {
swig_type_info *lastty = ty;
if (!ty || !ty->dcast) return ty;
while (ty && (ty->dcast)) {
ty = (*ty->dcast)(ptr);
if (ty) lastty = ty;
}
return lastty;
}
/*
Return the name associated with this type
*/
SWIGRUNTIMEINLINE const char *
SWIG_TypeName(const swig_type_info *ty) {
return ty->name;
}
/*
Return the pretty name associated with this type,
that is an unmangled type name in a form presentable to the user.
*/
SWIGRUNTIME const char *
SWIG_TypePrettyName(const swig_type_info *type) {
/* The "str" field contains the equivalent pretty names of the
type, separated by vertical-bar characters. We choose
to print the last name, as it is often (?) the most
specific. */
if (type->str != NULL) {
const char *last_name = type->str;
const char *s;
for (s = type->str; *s; s++)
if (*s == '|') last_name = s+1;
return last_name;
}
else
return type->name;
}
/*
Set the clientdata field for a type
*/
SWIGRUNTIME void
SWIG_TypeClientData(swig_type_info *ti, void *clientdata) {
if (!ti->clientdata) {
swig_cast_info *cast = ti->cast;
/* if (ti->clientdata == clientdata) return; */
ti->clientdata = clientdata;
while (cast) {
if (!cast->converter)
SWIG_TypeClientData(cast->type, clientdata);
cast = cast->next;
}
}
}
/*
Search for a swig_type_info structure only by mangled name
Search is a O(log #types)
We start searching at module start, and finish searching when start == end.
Note: if start == end at the beginning of the function, we go all the way around
the circular list.
*/
SWIGRUNTIME swig_type_info *
SWIG_MangledTypeQueryModule(swig_module_info *start,
swig_module_info *end,
const char *name) {
swig_module_info *iter = start;
do {
if (iter->size) {
register size_t l = 0;
register size_t r = iter->size - 1;
do {
/* since l+r >= 0, we can (>> 1) instead (/ 2) */
register size_t i = (l + r) >> 1;
const char *iname = iter->types[i]->name;
if (iname) {
register int compare = strcmp(name, iname);
if (compare == 0) {
return iter->types[i];
} else if (compare < 0) {
if (i) {
r = i - 1;
} else {
break;
}
} else if (compare > 0) {
l = i + 1;
}
} else {
break; /* should never happen */
}
} while (l <= r);
}
iter = iter->next;
} while (iter != end);
return 0;
}
/*
Search for a swig_type_info structure for either a mangled name or a human readable name.
It first searches the mangled names of the types, which is a O(log #types)
If a type is not found it then searches the human readable names, which is O(#types).
We start searching at module start, and finish searching when start == end.
Note: if start == end at the beginning of the function, we go all the way around
the circular list.
*/
SWIGRUNTIME swig_type_info *
SWIG_TypeQueryModule(swig_module_info *start,
swig_module_info *end,
const char *name) {
/* STEP 1: Search the name field using binary search */
swig_type_info *ret = SWIG_MangledTypeQueryModule(start, end, name);
if (ret) {
return ret;
} else {
/* STEP 2: If the type hasn't been found, do a complete search
of the str field (the human readable name) */
swig_module_info *iter = start;
do {
register size_t i = 0;
for (; i < iter->size; ++i) {
if (iter->types[i]->str && (SWIG_TypeEquiv(iter->types[i]->str, name)))
return iter->types[i];
}
iter = iter->next;
} while (iter != end);
}
/* neither found a match */
return 0;
}
/*
Pack binary data into a string
*/
SWIGRUNTIME char *
SWIG_PackData(char *c, void *ptr, size_t sz) {
static const char hex[17] = "0123456789abcdef";
register const unsigned char *u = (unsigned char *) ptr;
register const unsigned char *eu = u + sz;
for (; u != eu; ++u) {
register unsigned char uu = *u;
*(c++) = hex[(uu & 0xf0) >> 4];
*(c++) = hex[uu & 0xf];
}
return c;
}
/*
Unpack binary data from a string
*/
SWIGRUNTIME const char *
SWIG_UnpackData(const char *c, void *ptr, size_t sz) {
register unsigned char *u = (unsigned char *) ptr;
register const unsigned char *eu = u + sz;
for (; u != eu; ++u) {
register char d = *(c++);
register unsigned char uu = 0;
if ((d >= '0') && (d <= '9'))
uu = ((d - '0') << 4);
else if ((d >= 'a') && (d <= 'f'))
uu = ((d - ('a'-10)) << 4);
else
return (char *) 0;
d = *(c++);
if ((d >= '0') && (d <= '9'))
uu |= (d - '0');
else if ((d >= 'a') && (d <= 'f'))
uu |= (d - ('a'-10));
else
return (char *) 0;
*u = uu;
}
return c;
}
/*
Pack 'void *' into a string buffer.
*/
SWIGRUNTIME char *
SWIG_PackVoidPtr(char *buff, void *ptr, const char *name, size_t bsz) {
char *r = buff;
if ((2*sizeof(void *) + 2) > bsz) return 0;
*(r++) = '_';
r = SWIG_PackData(r,&ptr,sizeof(void *));
if (strlen(name) + 1 > (bsz - (r - buff))) return 0;
strcpy(r,name);
return buff;
}
SWIGRUNTIME const char *
SWIG_UnpackVoidPtr(const char *c, void **ptr, const char *name) {
if (*c != '_') {
if (strcmp(c,"NULL") == 0) {
*ptr = (void *) 0;
return name;
} else {
return 0;
}
}
return SWIG_UnpackData(++c,ptr,sizeof(void *));
}
SWIGRUNTIME char *
SWIG_PackDataName(char *buff, void *ptr, size_t sz, const char *name, size_t bsz) {
char *r = buff;
size_t lname = (name ? strlen(name) : 0);
if ((2*sz + 2 + lname) > bsz) return 0;
*(r++) = '_';
r = SWIG_PackData(r,ptr,sz);
if (lname) {
strncpy(r,name,lname+1);
} else {
*r = 0;
}
return buff;
}
SWIGRUNTIME const char *
SWIG_UnpackDataName(const char *c, void *ptr, size_t sz, const char *name) {
if (*c != '_') {
if (strcmp(c,"NULL") == 0) {
memset(ptr,0,sz);
return name;
} else {
return 0;
}
}
return SWIG_UnpackData(++c,ptr,sz);
}
#ifdef __cplusplus
}
#endif
/* -----------------------------------------------------------------------------
* SWIG API. Portion that goes into the runtime
* ----------------------------------------------------------------------------- */
#ifdef __cplusplus
extern "C" {
#endif
/* -----------------------------------------------------------------------------
* for internal method declarations
* ----------------------------------------------------------------------------- */
#ifndef SWIGINTERN
# define SWIGINTERN static SWIGUNUSED
#endif
#ifndef SWIGINTERNINLINE
# define SWIGINTERNINLINE SWIGINTERN SWIGINLINE
#endif
/*
Exception handling in wrappers
*/
#define SWIG_fail goto fail
#define SWIG_arg_fail(arg) SWIG_Python_ArgFail(arg)
#define SWIG_append_errmsg(msg) SWIG_Python_AddErrMesg(msg,0)
#define SWIG_preppend_errmsg(msg) SWIG_Python_AddErrMesg(msg,1)
#define SWIG_type_error(type,obj) SWIG_Python_TypeError(type,obj)
#define SWIG_null_ref(type) SWIG_Python_NullRef(type)
/*
Contract support
*/
#define SWIG_contract_assert(expr, msg) \
if (!(expr)) { PyErr_SetString(PyExc_RuntimeError, (char *) msg ); goto fail; } else
/* -----------------------------------------------------------------------------
* Constant declarations
* ----------------------------------------------------------------------------- */
/* Constant Types */
#define SWIG_PY_INT 1
#define SWIG_PY_FLOAT 2
#define SWIG_PY_STRING 3
#define SWIG_PY_POINTER 4
#define SWIG_PY_BINARY 5
/* Constant information structure */
typedef struct swig_const_info {
int type;
char *name;
long lvalue;
double dvalue;
void *pvalue;
swig_type_info **ptype;
} swig_const_info;
/* -----------------------------------------------------------------------------
* Alloc. memory flags
* ----------------------------------------------------------------------------- */
#define SWIG_OLDOBJ 1
#define SWIG_NEWOBJ SWIG_OLDOBJ + 1
#define SWIG_PYSTR SWIG_NEWOBJ + 1
#ifdef __cplusplus
}
#endif
/***********************************************************************
* pyrun.swg
*
* This file contains the runtime support for Python modules
* and includes code for managing global variables and pointer
* type checking.
*
* Author : David Beazley (beazley@cs.uchicago.edu)
************************************************************************/
/* Common SWIG API */
#define SWIG_ConvertPtr(obj, pp, type, flags) SWIG_Python_ConvertPtr(obj, pp, type, flags)
#define SWIG_NewPointerObj(p, type, flags) SWIG_Python_NewPointerObj(p, type, flags)
#define SWIG_MustGetPtr(p, type, argnum, flags) SWIG_Python_MustGetPtr(p, type, argnum, flags)
/* Python-specific SWIG API */
#define SWIG_ConvertPacked(obj, ptr, sz, ty, flags) SWIG_Python_ConvertPacked(obj, ptr, sz, ty, flags)
#define SWIG_NewPackedObj(ptr, sz, type) SWIG_Python_NewPackedObj(ptr, sz, type)
/* Runtime API */
#define SWIG_GetModule(clientdata) SWIG_Python_GetModule()
#define SWIG_SetModule(clientdata, pointer) SWIG_Python_SetModule(pointer)
/* -----------------------------------------------------------------------------
* Pointer declarations
* ----------------------------------------------------------------------------- */
/*
Use SWIG_NO_COBJECT_TYPES to force the use of strings to represent
C/C++ pointers in the python side. Very useful for debugging, but
not always safe.
*/
#if !defined(SWIG_NO_COBJECT_TYPES) && !defined(SWIG_COBJECT_TYPES)
# define SWIG_COBJECT_TYPES
#endif
/* Flags for pointer conversion */
#define SWIG_POINTER_EXCEPTION 0x1
#define SWIG_POINTER_DISOWN 0x2
/* Add PyOS_snprintf for old Pythons */
#if PY_VERSION_HEX < 0x02020000
#define PyOS_snprintf snprintf
#endif
#ifdef __cplusplus
extern "C" {
#endif
/* -----------------------------------------------------------------------------
* Create a new pointer string
* ----------------------------------------------------------------------------- */
#ifndef SWIG_BUFFER_SIZE
#define SWIG_BUFFER_SIZE 1024
#endif
#if defined(SWIG_COBJECT_TYPES)
#if !defined(SWIG_COBJECT_PYTHON)
/* -----------------------------------------------------------------------------
* Implements a simple Swig Object type, and use it instead of PyCObject
* ----------------------------------------------------------------------------- */
typedef struct {
PyObject_HEAD
void *ptr;
const char *desc;
} PySwigObject;
/* Declarations for objects of type PySwigObject */
SWIGRUNTIME int
PySwigObject_print(PySwigObject *v, FILE *fp, int flags)
{
char result[SWIG_BUFFER_SIZE];
flags = flags;
if (SWIG_PackVoidPtr(result, v->ptr, v->desc, sizeof(result))) {
fputs("<Swig Object at ", fp); fputs(result, fp); fputs(">", fp);
return 0;
} else {
return 1;
}
}
SWIGRUNTIME PyObject *
PySwigObject_repr(PySwigObject *v)
{
char result[SWIG_BUFFER_SIZE];
return SWIG_PackVoidPtr(result, v->ptr, v->desc, sizeof(result)) ?
PyString_FromFormat("<Swig Object at %s>", result) : 0;
}
SWIGRUNTIME PyObject *
PySwigObject_str(PySwigObject *v)
{
char result[SWIG_BUFFER_SIZE];
return SWIG_PackVoidPtr(result, v->ptr, v->desc, sizeof(result)) ?
PyString_FromString(result) : 0;
}
SWIGRUNTIME PyObject *
PySwigObject_long(PySwigObject *v)
{
return PyLong_FromVoidPtr(v->ptr);
}
SWIGRUNTIME PyObject *
PySwigObject_format(const char* fmt, PySwigObject *v)
{
PyObject *res = NULL;
PyObject *args = PyTuple_New(1);
if (args && (PyTuple_SetItem(args, 0, PySwigObject_long(v)) == 0)) {
PyObject *ofmt = PyString_FromString(fmt);
if (ofmt) {
res = PyString_Format(ofmt,args);
Py_DECREF(ofmt);
}
Py_DECREF(args);
}
return res;
}
SWIGRUNTIME PyObject *
PySwigObject_oct(PySwigObject *v)
{
return PySwigObject_format("%o",v);
}
SWIGRUNTIME PyObject *
PySwigObject_hex(PySwigObject *v)
{
return PySwigObject_format("%x",v);
}
SWIGRUNTIME int
PySwigObject_compare(PySwigObject *v, PySwigObject *w)
{
int c = strcmp(v->desc, w->desc);
if (c) {
return (c > 0) ? 1 : -1;
} else {
void *i = v->ptr;
void *j = w->ptr;
return (i < j) ? -1 : ((i > j) ? 1 : 0);
}
}
SWIGRUNTIME void
PySwigObject_dealloc(PySwigObject *self)
{
PyObject_DEL(self);
}
SWIGRUNTIME PyTypeObject*
PySwigObject_type(void) {
static char pyswigobject_type__doc__[] =
"Swig object carries a C/C++ instance pointer";
static PyNumberMethods PySwigObject_as_number = {
(binaryfunc)0, /*nb_add*/
(binaryfunc)0, /*nb_subtract*/
(binaryfunc)0, /*nb_multiply*/
(binaryfunc)0, /*nb_divide*/
(binaryfunc)0, /*nb_remainder*/
(binaryfunc)0, /*nb_divmod*/
(ternaryfunc)0,/*nb_power*/
(unaryfunc)0, /*nb_negative*/
(unaryfunc)0, /*nb_positive*/
(unaryfunc)0, /*nb_absolute*/
(inquiry)0, /*nb_nonzero*/
0, /*nb_invert*/
0, /*nb_lshift*/
0, /*nb_rshift*/
0, /*nb_and*/
0, /*nb_xor*/
0, /*nb_or*/
(coercion)0, /*nb_coerce*/
(unaryfunc)PySwigObject_long, /*nb_int*/
(unaryfunc)PySwigObject_long, /*nb_long*/
(unaryfunc)0, /*nb_float*/
(unaryfunc)PySwigObject_oct, /*nb_oct*/
(unaryfunc)PySwigObject_hex, /*nb_hex*/
#if PY_VERSION_HEX >= 0x02000000
0,0,0,0,0,0,0,0,0,0,0,0,0,0,0 /* nb_inplace_add -> nb_inplace_true_divide */
#endif
};
static PyTypeObject pyswigobject_type
#if !defined(__cplusplus)
;
static int type_init = 0;
if (!type_init) {
PyTypeObject tmp
#endif
= {
PyObject_HEAD_INIT(&PyType_Type)
0, /*ob_size*/
(char *)"PySwigObject", /*tp_name*/
sizeof(PySwigObject), /*tp_basicsize*/
0, /*tp_itemsize*/
/* methods */
(destructor)PySwigObject_dealloc, /*tp_dealloc*/
(printfunc)PySwigObject_print, /*tp_print*/
(getattrfunc)0, /*tp_getattr*/
(setattrfunc)0, /*tp_setattr*/
(cmpfunc)PySwigObject_compare, /*tp_compare*/
(reprfunc)PySwigObject_repr, /*tp_repr*/
&PySwigObject_as_number, /*tp_as_number*/
0, /*tp_as_sequence*/
0, /*tp_as_mapping*/
(hashfunc)0, /*tp_hash*/
(ternaryfunc)0, /*tp_call*/
(reprfunc)PySwigObject_str, /*tp_str*/
/* Space for future expansion */
0,0,0,0,
pyswigobject_type__doc__, /* Documentation string */
#if PY_VERSION_HEX >= 0x02000000
0, /* tp_traverse */
0, /* tp_clear */
#endif
#if PY_VERSION_HEX >= 0x02010000
0, /* tp_richcompare */
0, /* tp_weaklistoffset */
#endif
#if PY_VERSION_HEX >= 0x02020000
0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, /* tp_iter -> tp_weaklist */
#endif
#if PY_VERSION_HEX >= 0x02030000
0, /* tp_del */
#endif
#ifdef COUNT_ALLOCS
0,0,0,0 /* tp_alloc -> tp_next */
#endif
};
#if !defined(__cplusplus)
pyswigobject_type = tmp;
type_init = 1;
}
#endif
return &pyswigobject_type;
}
SWIGRUNTIME PyObject *
PySwigObject_FromVoidPtrAndDesc(void *ptr, const char *desc)
{
PySwigObject *self = PyObject_NEW(PySwigObject, PySwigObject_type());
if (self) {
self->ptr = ptr;
self->desc = desc;
}
return (PyObject *)self;
}
SWIGRUNTIMEINLINE void *
PySwigObject_AsVoidPtr(PyObject *self)
{
return ((PySwigObject *)self)->ptr;
}
SWIGRUNTIMEINLINE const char *
PySwigObject_GetDesc(PyObject *self)
{
return ((PySwigObject *)self)->desc;
}
SWIGRUNTIMEINLINE int
PySwigObject_Check(PyObject *op) {
return ((op)->ob_type == PySwigObject_type())
|| (strcmp((op)->ob_type->tp_name,"PySwigObject") == 0);
}
/* -----------------------------------------------------------------------------
* Implements a simple Swig Packed type, and use it instead of string
* ----------------------------------------------------------------------------- */
typedef struct {
PyObject_HEAD
void *pack;
const char *desc;
size_t size;
} PySwigPacked;
SWIGRUNTIME int
PySwigPacked_print(PySwigPacked *v, FILE *fp, int flags)
{
char result[SWIG_BUFFER_SIZE];
flags = flags;
fputs("<Swig Packed ", fp);
if (SWIG_PackDataName(result, v->pack, v->size, 0, sizeof(result))) {
fputs("at ", fp);
fputs(result, fp);
}
fputs(v->desc,fp);
fputs(">", fp);
return 0;
}
SWIGRUNTIME PyObject *
PySwigPacked_repr(PySwigPacked *v)
{
char result[SWIG_BUFFER_SIZE];
if (SWIG_PackDataName(result, v->pack, v->size, 0, sizeof(result))) {
return PyString_FromFormat("<Swig Packed at %s%s>", result, v->desc);
} else {
return PyString_FromFormat("<Swig Packed %s>", v->desc);
}
}
SWIGRUNTIME PyObject *
PySwigPacked_str(PySwigPacked *v)
{
char result[SWIG_BUFFER_SIZE];
if (SWIG_PackDataName(result, v->pack, v->size, 0, sizeof(result))){
return PyString_FromFormat("%s%s", result, v->desc);
} else {
return PyString_FromFormat("%s", v->desc);
}
}
SWIGRUNTIME int
PySwigPacked_compare(PySwigPacked *v, PySwigPacked *w)
{
int c = strcmp(v->desc, w->desc);
if (c) {
return (c > 0) ? 1 : -1;
} else {
size_t i = v->size;
size_t j = w->size;
int s = (i < j) ? -1 : ((i > j) ? 1 : 0);
return s ? s : strncmp((char *)v->pack, (char *)w->pack, 2*v->size);
}
}
SWIGRUNTIME void
PySwigPacked_dealloc(PySwigPacked *self)
{
free(self->pack);
PyObject_DEL(self);
}
SWIGRUNTIME PyTypeObject*
PySwigPacked_type(void) {
static char pyswigpacked_type__doc__[] =
"Swig object carries a C/C++ instance pointer";
static PyTypeObject pyswigpacked_type
#if !defined(__cplusplus)
;
static int type_init = 0;
if (!type_init) {
PyTypeObject tmp
#endif
= {
PyObject_HEAD_INIT(&PyType_Type)
0, /*ob_size*/
(char *)"PySwigPacked", /*tp_name*/
sizeof(PySwigPacked), /*tp_basicsize*/
0, /*tp_itemsize*/
/* methods */
(destructor)PySwigPacked_dealloc, /*tp_dealloc*/
(printfunc)PySwigPacked_print, /*tp_print*/
(getattrfunc)0, /*tp_getattr*/
(setattrfunc)0, /*tp_setattr*/
(cmpfunc)PySwigPacked_compare, /*tp_compare*/
(reprfunc)PySwigPacked_repr, /*tp_repr*/
0, /*tp_as_number*/
0, /*tp_as_sequence*/
0, /*tp_as_mapping*/
(hashfunc)0, /*tp_hash*/
(ternaryfunc)0, /*tp_call*/
(reprfunc)PySwigPacked_str, /*tp_str*/
/* Space for future expansion */
0,0,0,0,
pyswigpacked_type__doc__, /* Documentation string */
#if PY_VERSION_HEX >= 0x02000000
0, /* tp_traverse */
0, /* tp_clear */
#endif
#if PY_VERSION_HEX >= 0x02010000
0, /* tp_richcompare */
0, /* tp_weaklistoffset */
#endif
#if PY_VERSION_HEX >= 0x02020000
0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, /* tp_iter -> tp_weaklist */
#endif
#if PY_VERSION_HEX >= 0x02030000
0, /* tp_del */
#endif
#ifdef COUNT_ALLOCS
0,0,0,0 /* tp_alloc -> tp_next */
#endif
};
#if !defined(__cplusplus)
pyswigpacked_type = tmp;
type_init = 1;
}
#endif
return &pyswigpacked_type;
}
SWIGRUNTIME PyObject *
PySwigPacked_FromDataAndDesc(void *ptr, size_t size, const char *desc)
{
PySwigPacked *self = PyObject_NEW(PySwigPacked, PySwigPacked_type());
if (self == NULL) {
return NULL;
} else {
void *pack = malloc(size);
if (pack) {
memcpy(pack, ptr, size);
self->pack = pack;
self->desc = desc;
self->size = size;
return (PyObject *) self;
}
return NULL;
}
}
SWIGRUNTIMEINLINE const char *
PySwigPacked_UnpackData(PyObject *obj, void *ptr, size_t size)
{
PySwigPacked *self = (PySwigPacked *)obj;
if (self->size != size) return 0;
memcpy(ptr, self->pack, size);
return self->desc;
}
SWIGRUNTIMEINLINE const char *
PySwigPacked_GetDesc(PyObject *self)
{
return ((PySwigPacked *)self)->desc;
}
SWIGRUNTIMEINLINE int
PySwigPacked_Check(PyObject *op) {
return ((op)->ob_type == PySwigPacked_type())
|| (strcmp((op)->ob_type->tp_name,"PySwigPacked") == 0);
}
#else
/* -----------------------------------------------------------------------------
* Use the old Python PyCObject instead of PySwigObject
* ----------------------------------------------------------------------------- */
#define PySwigObject_GetDesc(obj) PyCObject_GetDesc(obj)
#define PySwigObject_Check(obj) PyCObject_Check(obj)
#define PySwigObject_AsVoidPtr(obj) PyCObject_AsVoidPtr(obj)
#define PySwigObject_FromVoidPtrAndDesc(p, d) PyCObject_FromVoidPtrAndDesc(p, d, NULL)
#endif
#endif
/* -----------------------------------------------------------------------------
* errors manipulation
* ----------------------------------------------------------------------------- */
SWIGRUNTIME void
SWIG_Python_TypeError(const char *type, PyObject *obj)
{
if (type) {
#if defined(SWIG_COBJECT_TYPES)
if (obj && PySwigObject_Check(obj)) {
const char *otype = (const char *) PySwigObject_GetDesc(obj);
if (otype) {
PyErr_Format(PyExc_TypeError, "a '%s' is expected, 'PySwigObject(%s)' is received",
type, otype);
return;
}
} else
#endif
{
const char *otype = (obj ? obj->ob_type->tp_name : 0);
if (otype) {
PyObject *str = PyObject_Str(obj);
const char *cstr = str ? PyString_AsString(str) : 0;
if (cstr) {
PyErr_Format(PyExc_TypeError, "a '%s' is expected, '%s(%s)' is received",
type, otype, cstr);
} else {
PyErr_Format(PyExc_TypeError, "a '%s' is expected, '%s' is received",
type, otype);
}
Py_XDECREF(str);
return;
}
}
PyErr_Format(PyExc_TypeError, "a '%s' is expected", type);
} else {
PyErr_Format(PyExc_TypeError, "unexpected type is received");
}
}
SWIGRUNTIMEINLINE void
SWIG_Python_NullRef(const char *type)
{
if (type) {
PyErr_Format(PyExc_TypeError, "null reference of type '%s' was received",type);
} else {
PyErr_Format(PyExc_TypeError, "null reference was received");
}
}
SWIGRUNTIME int
SWIG_Python_AddErrMesg(const char* mesg, int infront)
{
if (PyErr_Occurred()) {
PyObject *type = 0;
PyObject *value = 0;
PyObject *traceback = 0;
PyErr_Fetch(&type, &value, &traceback);
if (value) {
PyObject *old_str = PyObject_Str(value);
Py_XINCREF(type);
PyErr_Clear();
if (infront) {
PyErr_Format(type, "%s %s", mesg, PyString_AsString(old_str));
} else {
PyErr_Format(type, "%s %s", PyString_AsString(old_str), mesg);
}
Py_DECREF(old_str);
}
return 1;
} else {
return 0;
}
}
SWIGRUNTIME int
SWIG_Python_ArgFail(int argnum)
{
if (PyErr_Occurred()) {
/* add information about failing argument */
char mesg[256];
PyOS_snprintf(mesg, sizeof(mesg), "argument number %d:", argnum);
return SWIG_Python_AddErrMesg(mesg, 1);
} else {
return 0;
}
}
/* -----------------------------------------------------------------------------
* pointers/data manipulation
* ----------------------------------------------------------------------------- */
/* Convert a pointer value */
SWIGRUNTIME int
SWIG_Python_ConvertPtr(PyObject *obj, void **ptr, swig_type_info *ty, int flags) {
swig_cast_info *tc;
const char *c = 0;
static PyObject *SWIG_this = 0;
int newref = 0;
PyObject *pyobj = 0;
void *vptr;
if (!obj) return 0;
if (obj == Py_None) {
*ptr = 0;
return 0;
}
#ifdef SWIG_COBJECT_TYPES
if (!(PySwigObject_Check(obj))) {
if (!SWIG_this)
SWIG_this = PyString_FromString("this");
pyobj = obj;
obj = PyObject_GetAttr(obj,SWIG_this);
newref = 1;
if (!obj) goto type_error;
if (!PySwigObject_Check(obj)) {
Py_DECREF(obj);
goto type_error;
}
}
vptr = PySwigObject_AsVoidPtr(obj);
c = (const char *) PySwigObject_GetDesc(obj);
if (newref) { Py_DECREF(obj); }
goto type_check;
#else
if (!(PyString_Check(obj))) {
if (!SWIG_this)
SWIG_this = PyString_FromString("this");
pyobj = obj;
obj = PyObject_GetAttr(obj,SWIG_this);
newref = 1;
if (!obj) goto type_error;
if (!PyString_Check(obj)) {
Py_DECREF(obj);
goto type_error;
}
}
c = PyString_AS_STRING(obj);
/* Pointer values must start with leading underscore */
c = SWIG_UnpackVoidPtr(c, &vptr, ty->name);
if (newref) { Py_DECREF(obj); }
if (!c) goto type_error;
#endif
type_check:
if (ty) {
tc = SWIG_TypeCheck(c,ty);
if (!tc) goto type_error;
*ptr = SWIG_TypeCast(tc,vptr);
} else {
*ptr = vptr;
}
if ((pyobj) && (flags & SWIG_POINTER_DISOWN)) {
PyObject_SetAttrString(pyobj,(char*)"thisown",Py_False);
}
return 0;
type_error:
PyErr_Clear();
if (pyobj && !obj) {
obj = pyobj;
if (PyCFunction_Check(obj)) {
/* here we get the method pointer for callbacks */
char *doc = (((PyCFunctionObject *)obj) -> m_ml -> ml_doc);
c = doc ? strstr(doc, "swig_ptr: ") : 0;
if (c) {
c = ty ? SWIG_UnpackVoidPtr(c + 10, &vptr, ty->name) : 0;
if (!c) goto type_error;
goto type_check;
}
}
}
if (flags & SWIG_POINTER_EXCEPTION) {
if (ty) {
SWIG_Python_TypeError(SWIG_TypePrettyName(ty), obj);
} else {
SWIG_Python_TypeError("C/C++ pointer", obj);
}
}
return -1;
}
/* Convert a pointer value, signal an exception on a type mismatch */
SWIGRUNTIME void *
SWIG_Python_MustGetPtr(PyObject *obj, swig_type_info *ty, int argnum, int flags) {
void *result;
if (SWIG_Python_ConvertPtr(obj, &result, ty, flags) == -1) {
PyErr_Clear();
if (flags & SWIG_POINTER_EXCEPTION) {
SWIG_Python_TypeError(SWIG_TypePrettyName(ty), obj);
SWIG_Python_ArgFail(argnum);
}
}
return result;
}
/* Convert a packed value value */
SWIGRUNTIME int
SWIG_Python_ConvertPacked(PyObject *obj, void *ptr, size_t sz, swig_type_info *ty, int flags) {
swig_cast_info *tc;
const char *c = 0;
#if defined(SWIG_COBJECT_TYPES) && !defined(SWIG_COBJECT_PYTHON)
c = PySwigPacked_UnpackData(obj, ptr, sz);
#else
if ((!obj) || (!PyString_Check(obj))) goto type_error;
c = PyString_AS_STRING(obj);
/* Pointer values must start with leading underscore */
c = SWIG_UnpackDataName(c, ptr, sz, ty->name);
#endif
if (!c) goto type_error;
if (ty) {
tc = SWIG_TypeCheck(c,ty);
if (!tc) goto type_error;
}
return 0;
type_error:
PyErr_Clear();
if (flags & SWIG_POINTER_EXCEPTION) {
if (ty) {
SWIG_Python_TypeError(SWIG_TypePrettyName(ty), obj);
} else {
SWIG_Python_TypeError("C/C++ packed data", obj);
}
}
return -1;
}
/* Create a new array object */
SWIGRUNTIME PyObject *
SWIG_Python_NewPointerObj(void *ptr, swig_type_info *type, int own) {
PyObject *robj = 0;
if (!type) {
if (!PyErr_Occurred()) {
PyErr_Format(PyExc_TypeError, "Swig: null type passed to NewPointerObj");
}
return robj;
}
if (!ptr) {
Py_INCREF(Py_None);
return Py_None;
}
#ifdef SWIG_COBJECT_TYPES
robj = PySwigObject_FromVoidPtrAndDesc((void *) ptr, (char *)type->name);
#else
{
char result[SWIG_BUFFER_SIZE];
robj = SWIG_PackVoidPtr(result, ptr, type->name, sizeof(result)) ?
PyString_FromString(result) : 0;
}
#endif
if (!robj || (robj == Py_None)) return robj;
if (type->clientdata) {
PyObject *inst;
PyObject *args = Py_BuildValue((char*)"(O)", robj);
Py_DECREF(robj);
inst = PyObject_CallObject((PyObject *) type->clientdata, args);
Py_DECREF(args);
if (inst) {
if (own) {
PyObject_SetAttrString(inst,(char*)"thisown",Py_True);
}
robj = inst;
}
}
return robj;
}
SWIGRUNTIME PyObject *
SWIG_Python_NewPackedObj(void *ptr, size_t sz, swig_type_info *type) {
PyObject *robj = 0;
if (!ptr) {
Py_INCREF(Py_None);
return Py_None;
}
#if defined(SWIG_COBJECT_TYPES) && !defined(SWIG_COBJECT_PYTHON)
robj = PySwigPacked_FromDataAndDesc((void *) ptr, sz, (char *)type->name);
#else
{
char result[SWIG_BUFFER_SIZE];
robj = SWIG_PackDataName(result, ptr, sz, type->name, sizeof(result)) ?
PyString_FromString(result) : 0;
}
#endif
return robj;
}
/* -----------------------------------------------------------------------------*
* Get type list
* -----------------------------------------------------------------------------*/
#ifdef SWIG_LINK_RUNTIME
void *SWIG_ReturnGlobalTypeList(void *);
#endif
SWIGRUNTIME swig_module_info *
SWIG_Python_GetModule(void) {
static void *type_pointer = (void *)0;
/* first check if module already created */
if (!type_pointer) {
#ifdef SWIG_LINK_RUNTIME
type_pointer = SWIG_ReturnGlobalTypeList((void *)0);
#else
type_pointer = PyCObject_Import((char*)"swig_runtime_data" SWIG_RUNTIME_VERSION,
(char*)"type_pointer" SWIG_TYPE_TABLE_NAME);
if (PyErr_Occurred()) {
PyErr_Clear();
type_pointer = (void *)0;
}
}
#endif
return (swig_module_info *) type_pointer;
}
SWIGRUNTIME void
SWIG_Python_SetModule(swig_module_info *swig_module) {
static PyMethodDef swig_empty_runtime_method_table[] = { {NULL, NULL, 0, NULL} };/* Sentinel */
PyObject *module = Py_InitModule((char*)"swig_runtime_data" SWIG_RUNTIME_VERSION,
swig_empty_runtime_method_table);
PyObject *pointer = PyCObject_FromVoidPtr((void *) swig_module, NULL);
if (pointer && module) {
PyModule_AddObject(module, (char*)"type_pointer" SWIG_TYPE_TABLE_NAME, pointer);
}
}
#ifdef __cplusplus
}
#endif
/* -------- TYPES TABLE (BEGIN) -------- */
#define SWIGTYPE_p_Vgrid swig_types[0]
#define SWIGTYPE_p_char swig_types[1]
#define SWIGTYPE_p_double swig_types[2]
#define SWIGTYPE_p_p_Vgrid swig_types[3]
#define SWIGTYPE_ptrdiff_t swig_types[4]
#define SWIGTYPE_size_t swig_types[5]
static swig_type_info *swig_types[6];
static swig_module_info swig_module = {swig_types, 6, 0, 0, 0, 0};
#define SWIG_TypeQuery(name) SWIG_TypeQueryModule(&swig_module, &swig_module, name)
#define SWIG_MangledTypeQuery(name) SWIG_MangledTypeQueryModule(&swig_module, &swig_module, name)
/* -------- TYPES TABLE (END) -------- */
/*-----------------------------------------------
@(target):= _vgrid.so
------------------------------------------------*/
#define SWIG_init init_vgrid
#define SWIG_name "_vgrid"
#include "routines.h"
#include "apbs/vgrid.h"
double *null_array(){
return NULL;
}
#include <limits.h>
SWIGINTERN int
SWIG_CheckLongInRange(long value, long min_value, long max_value,
const char *errmsg)
{
if (value < min_value) {
if (errmsg) {
PyErr_Format(PyExc_OverflowError,
"value %ld is less than '%s' minimum %ld",
value, errmsg, min_value);
}
return 0;
} else if (value > max_value) {
if (errmsg) {
PyErr_Format(PyExc_OverflowError,
"value %ld is greater than '%s' maximum %ld",
value, errmsg, max_value);
}
return 0;
}
return 1;
}
SWIGINTERN int
SWIG_AsVal_long(PyObject * obj, long* val)
{
if (PyInt_Check(obj)) {
if (val) *val = PyInt_AS_LONG(obj);
return 1;
}
if (PyLong_Check(obj)) {
long v = PyLong_AsLong(obj);
if (!PyErr_Occurred()) {
if (val) *val = v;
return 1;
} else {
if (!val) PyErr_Clear();
return 0;
}
}
if (val) {
SWIG_type_error("long", obj);
}
return 0;
}
#if INT_MAX != LONG_MAX
SWIGINTERN int
SWIG_AsVal_int(PyObject *obj, int *val)
{
const char* errmsg = val ? "int" : (char*)0;
long v;
if (SWIG_AsVal_long(obj, &v)) {
if (SWIG_CheckLongInRange(v, INT_MIN,INT_MAX, errmsg)) {
if (val) *val = (int)(v);
return 1;
} else {
return 0;
}
} else {
PyErr_Clear();
}
if (val) {
SWIG_type_error(errmsg, obj);
}
return 0;
}
#else
SWIGINTERNINLINE int
SWIG_AsVal_int(PyObject *obj, int *val)
{
return SWIG_AsVal_long(obj,(long*)val);
}
#endif
SWIGINTERNINLINE int
SWIG_As_int(PyObject* obj)
{
int v;
if (!SWIG_AsVal_int(obj, &v)) {
/*
this is needed to make valgrind/purify happier.
*/
memset((void*)&v, 0, sizeof(int));
}
return v;
}
SWIGINTERNINLINE int
SWIG_Check_int(PyObject* obj)
{
return SWIG_AsVal_int(obj, (int*)0);
}
/*@/usr/local/share/swig/1.3.25/python/pymacros.swg,66,SWIG_define@*/
#define SWIG_From_int PyInt_FromLong
/*@@*/
SWIGINTERN int
SWIG_AsVal_double(PyObject *obj, double *val)
{
if (PyFloat_Check(obj)) {
if (val) *val = PyFloat_AS_DOUBLE(obj);
return 1;
}
if (PyInt_Check(obj)) {
if (val) *val = PyInt_AS_LONG(obj);
return 1;
}
if (PyLong_Check(obj)) {
double v = PyLong_AsDouble(obj);
if (!PyErr_Occurred()) {
if (val) *val = v;
return 1;
} else {
if (!val) PyErr_Clear();
return 0;
}
}
if (val) {
SWIG_type_error("double", obj);
}
return 0;
}
SWIGINTERNINLINE double
SWIG_As_double(PyObject* obj)
{
double v;
if (!SWIG_AsVal_double(obj, &v)) {
/*
this is needed to make valgrind/purify happier.
*/
memset((void*)&v, 0, sizeof(double));
}
return v;
}
SWIGINTERNINLINE int
SWIG_Check_double(PyObject* obj)
{
return SWIG_AsVal_double(obj, (double*)0);
}
/*@/usr/local/share/swig/1.3.25/python/pymacros.swg,66,SWIG_define@*/
#define SWIG_From_double PyFloat_FromDouble
/*@@*/
void delete_vgrid(Vgrid *thee){
if (thee != VNULL) {
Vmem_free(thee->mem, (thee->nx*thee->ny*thee->nz), sizeof(double),
(void **)&(thee->data));
Vmem_free(VNULL, 1, sizeof(Vgrid), (void **)&thee);
thee = VNULL;
}
}
int Vgrid_ctor2(Vgrid *,int,int,int,double,double,double,double,double,double,double *);
void Vgrid_dtor(Vgrid **);
void Vgrid_dtor2(Vgrid *);
void Vgrid_writeUHBD(Vgrid *,char const *,char const *,char const *,char const *,char *,double *);
/* returns SWIG_OLDOBJ if the input is a raw char*, SWIG_PYSTR if is a PyString */
SWIGINTERN int
SWIG_AsCharPtrAndSize(PyObject *obj, char** cptr, size_t* psize)
{
static swig_type_info* pchar_info = 0;
char* vptr = 0;
if (!pchar_info) pchar_info = SWIG_TypeQuery("char *");
if (SWIG_ConvertPtr(obj, (void**)&vptr, pchar_info, 0) != -1) {
if (cptr) *cptr = vptr;
if (psize) *psize = vptr ? (strlen(vptr) + 1) : 0;
return SWIG_OLDOBJ;
} else {
PyErr_Clear();
if (PyString_Check(obj)) {
if (cptr) {
*cptr = PyString_AS_STRING(obj);
if (psize) {
*psize = PyString_GET_SIZE(obj) + 1;
}
}
return SWIG_PYSTR;
}
}
if (cptr) {
SWIG_type_error("char *", obj);
}
return 0;
}
SWIGINTERNINLINE int
SWIG_AsCharPtr(PyObject *obj, char **val)
{
if (SWIG_AsCharPtrAndSize(obj, val, (size_t*)(0))) {
return 1;
}
if (val) {
PyErr_Clear();
SWIG_type_error("char *", obj);
}
return 0;
}
void Vgrid_writeDX(Vgrid *,char const *,char const *,char const *,char const *,char *,double *);
int Vgrid_readDX(Vgrid *,char const *,char const *,char const *,char const *);
void startVio();
int Vgrid_value(Vgrid *,double [3],double *);
SWIGINTERN PyObject*
t_output_helper(PyObject* target, PyObject* o) {
if (!target) {
target = o;
} else if (target == Py_None) {
Py_DECREF(target);
target = o;
} else {
if (!PyList_Check(target)) {
PyObject *o2 = target;
target = PyList_New(1);
PyList_SetItem(target, 0, o2);
}
PyList_Append(target,o);
Py_DECREF(o);
}
return target;
}
int Vgrid_curvature(Vgrid *,double [3],int,double *);
int Vgrid_gradient(Vgrid *,double [3],double [3]);
Vgrid *Vgrid_ctor(int,int,int,double,double,double,double,double,double,double *);
#ifdef __cplusplus
extern "C" {
#endif
static PyObject *_wrap_null_array(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
double *result;
if(!PyArg_ParseTuple(args,(char *)":null_array")) goto fail;
result = (double *)null_array();
resultobj = SWIG_NewPointerObj((void*)(result), SWIGTYPE_p_double, 0);
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_new_Vgrid(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *result;
if(!PyArg_ParseTuple(args,(char *)":new_Vgrid")) goto fail;
result = (Vgrid *)(Vgrid *) calloc(1, sizeof(Vgrid));
resultobj = SWIG_NewPointerObj((void*)(result), SWIGTYPE_p_Vgrid, 1);
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_delete_Vgrid(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:delete_Vgrid",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
free((char *) arg1);
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_nx_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_nx_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (int)(SWIG_As_int(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->nx = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_nx_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_nx_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (int) ((arg1)->nx);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_ny_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_ny_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (int)(SWIG_As_int(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->ny = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_ny_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_ny_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (int) ((arg1)->ny);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_nz_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_nz_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (int)(SWIG_As_int(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->nz = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_nz_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_nz_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (int) ((arg1)->nz);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_hx_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_hx_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (double)(SWIG_As_double(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->hx = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_hx_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_hx_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double) ((arg1)->hx);
{
resultobj = SWIG_From_double((double)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_hy_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_hy_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (double)(SWIG_As_double(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->hy = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_hy_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_hy_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double) ((arg1)->hy);
{
resultobj = SWIG_From_double((double)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_hzed_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_hzed_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (double)(SWIG_As_double(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->hzed = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_hzed_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_hzed_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double) ((arg1)->hzed);
{
resultobj = SWIG_From_double((double)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_xmin_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_xmin_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (double)(SWIG_As_double(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->xmin = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_xmin_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_xmin_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double) ((arg1)->xmin);
{
resultobj = SWIG_From_double((double)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_ymin_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_ymin_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (double)(SWIG_As_double(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->ymin = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_ymin_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_ymin_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double) ((arg1)->ymin);
{
resultobj = SWIG_From_double((double)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_zmin_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double arg2 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_zmin_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (double)(SWIG_As_double(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
if (arg1) (arg1)->zmin = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_zmin_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_zmin_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double) ((arg1)->zmin);
{
resultobj = SWIG_From_double((double)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_data_set(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double *arg2 = (double *) 0 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OO:Vgrid_data_set",&obj0,&obj1)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
SWIG_Python_ConvertPtr(obj1, (void **)&arg2, SWIGTYPE_p_double, SWIG_POINTER_EXCEPTION | SWIG_POINTER_DISOWN);
if (SWIG_arg_fail(2)) SWIG_fail;
if (arg1) (arg1)->data = arg2;
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_data_get(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double *result;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_data_get",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
result = (double *) ((arg1)->data);
resultobj = SWIG_NewPointerObj((void*)(result), SWIGTYPE_p_double, 0);
return resultobj;
fail:
return NULL;
}
static PyObject * Vgrid_swigregister(PyObject *self, PyObject *args) {
PyObject *obj;
if (!PyArg_ParseTuple(args,(char*)"O", &obj)) return NULL;
SWIG_TypeClientData(SWIGTYPE_p_Vgrid, obj);
Py_INCREF(obj);
return Py_BuildValue((char *)"");
}
static PyObject *_wrap_delete_vgrid(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:delete_vgrid",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
delete_vgrid(arg1);
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_ctor2(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
int arg2 ;
int arg3 ;
int arg4 ;
double arg5 ;
double arg6 ;
double arg7 ;
double arg8 ;
double arg9 ;
double arg10 ;
double *arg11 = (double *) 0 ;
int result;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
PyObject * obj3 = 0 ;
PyObject * obj4 = 0 ;
PyObject * obj5 = 0 ;
PyObject * obj6 = 0 ;
PyObject * obj7 = 0 ;
PyObject * obj8 = 0 ;
PyObject * obj9 = 0 ;
PyObject * obj10 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOOOOOOOOOO:Vgrid_ctor2",&obj0,&obj1,&obj2,&obj3,&obj4,&obj5,&obj6,&obj7,&obj8,&obj9,&obj10)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
arg2 = (int)(SWIG_As_int(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
{
arg3 = (int)(SWIG_As_int(obj2));
if (SWIG_arg_fail(3)) SWIG_fail;
}
{
arg4 = (int)(SWIG_As_int(obj3));
if (SWIG_arg_fail(4)) SWIG_fail;
}
{
arg5 = (double)(SWIG_As_double(obj4));
if (SWIG_arg_fail(5)) SWIG_fail;
}
{
arg6 = (double)(SWIG_As_double(obj5));
if (SWIG_arg_fail(6)) SWIG_fail;
}
{
arg7 = (double)(SWIG_As_double(obj6));
if (SWIG_arg_fail(7)) SWIG_fail;
}
{
arg8 = (double)(SWIG_As_double(obj7));
if (SWIG_arg_fail(8)) SWIG_fail;
}
{
arg9 = (double)(SWIG_As_double(obj8));
if (SWIG_arg_fail(9)) SWIG_fail;
}
{
arg10 = (double)(SWIG_As_double(obj9));
if (SWIG_arg_fail(10)) SWIG_fail;
}
SWIG_Python_ConvertPtr(obj10, (void **)&arg11, SWIGTYPE_p_double, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(11)) SWIG_fail;
result = (int)Vgrid_ctor2(arg1,arg2,arg3,arg4,arg5,arg6,arg7,arg8,arg9,arg10,arg11);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_dtor(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid **arg1 = (Vgrid **) 0 ;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_dtor",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
Vgrid_dtor(arg1);
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_dtor2(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
PyObject * obj0 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"O:Vgrid_dtor2",&obj0)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
Vgrid_dtor2(arg1);
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_writeUHBD(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
char *arg2 = (char *) 0 ;
char *arg3 = (char *) 0 ;
char *arg4 = (char *) 0 ;
char *arg5 = (char *) 0 ;
char *arg6 = (char *) 0 ;
double *arg7 = (double *) 0 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
PyObject * obj3 = 0 ;
PyObject * obj4 = 0 ;
PyObject * obj5 = 0 ;
PyObject * obj6 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOOOOOO:Vgrid_writeUHBD",&obj0,&obj1,&obj2,&obj3,&obj4,&obj5,&obj6)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
if (!SWIG_AsCharPtr(obj1, (char**)&arg2)) {
SWIG_arg_fail(2);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj2, (char**)&arg3)) {
SWIG_arg_fail(3);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj3, (char**)&arg4)) {
SWIG_arg_fail(4);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj4, (char**)&arg5)) {
SWIG_arg_fail(5);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj5, (char**)&arg6)) {
SWIG_arg_fail(6);SWIG_fail;
}
SWIG_Python_ConvertPtr(obj6, (void **)&arg7, SWIGTYPE_p_double, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(7)) SWIG_fail;
Vgrid_writeUHBD(arg1,(char const *)arg2,(char const *)arg3,(char const *)arg4,(char const *)arg5,arg6,arg7);
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_writeDX(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
char *arg2 = (char *) 0 ;
char *arg3 = (char *) 0 ;
char *arg4 = (char *) 0 ;
char *arg5 = (char *) 0 ;
char *arg6 = (char *) 0 ;
double *arg7 = (double *) 0 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
PyObject * obj3 = 0 ;
PyObject * obj4 = 0 ;
PyObject * obj5 = 0 ;
PyObject * obj6 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOOOOOO:Vgrid_writeDX",&obj0,&obj1,&obj2,&obj3,&obj4,&obj5,&obj6)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
if (!SWIG_AsCharPtr(obj1, (char**)&arg2)) {
SWIG_arg_fail(2);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj2, (char**)&arg3)) {
SWIG_arg_fail(3);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj3, (char**)&arg4)) {
SWIG_arg_fail(4);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj4, (char**)&arg5)) {
SWIG_arg_fail(5);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj5, (char**)&arg6)) {
SWIG_arg_fail(6);SWIG_fail;
}
SWIG_Python_ConvertPtr(obj6, (void **)&arg7, SWIGTYPE_p_double, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(7)) SWIG_fail;
Vgrid_writeDX(arg1,(char const *)arg2,(char const *)arg3,(char const *)arg4,(char const *)arg5,arg6,arg7);
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_readDX(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
char *arg2 = (char *) 0 ;
char *arg3 = (char *) 0 ;
char *arg4 = (char *) 0 ;
char *arg5 = (char *) 0 ;
int result;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
PyObject * obj3 = 0 ;
PyObject * obj4 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOOOO:Vgrid_readDX",&obj0,&obj1,&obj2,&obj3,&obj4)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
if (!SWIG_AsCharPtr(obj1, (char**)&arg2)) {
SWIG_arg_fail(2);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj2, (char**)&arg3)) {
SWIG_arg_fail(3);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj3, (char**)&arg4)) {
SWIG_arg_fail(4);SWIG_fail;
}
if (!SWIG_AsCharPtr(obj4, (char**)&arg5)) {
SWIG_arg_fail(5);SWIG_fail;
}
result = (int)Vgrid_readDX(arg1,(char const *)arg2,(char const *)arg3,(char const *)arg4,(char const *)arg5);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_startVio(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
if(!PyArg_ParseTuple(args,(char *)":startVio")) goto fail;
startVio();
Py_INCREF(Py_None); resultobj = Py_None;
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_value(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double *arg2 ;
double *arg3 = (double *) 0 ;
int result;
double temp3 ;
int res3 = 0 ;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOO:Vgrid_value",&obj0,&obj1,&obj2)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
/* Check if is a list */
if (PyList_Check(obj1)) {
int size = PyList_Size(obj1);
int i = 0;
arg2 = (double *) malloc((size+1)*sizeof(double));
for (i = 0; i < size; i++) {
PyObject *o = PyList_GetItem(obj1,i);
if (PyFloat_Check(o))
arg2[i] = PyFloat_AsDouble(PyList_GetItem(obj1,i));
else {
PyErr_SetString(PyExc_TypeError,"list must contain floats");
free(arg2);
return NULL;
}
}
arg2[i] = 0;
} else {
PyErr_SetString(PyExc_TypeError,"not a list");
return NULL;
}
}
{
if (!(SWIG_ConvertPtr(obj2,(void **)(&arg3),SWIGTYPE_p_double,0) != -1)) {
temp3 = SWIG_As_double(obj2);
if (SWIG_arg_fail(3)) SWIG_fail;
arg3 = &temp3;
res3 = SWIG_NEWOBJ;
}
}
result = (int)Vgrid_value(arg1,arg2,arg3);
{
resultobj = SWIG_From_int((int)(result));
}
resultobj = t_output_helper(resultobj, ((res3 == SWIG_NEWOBJ) ?
SWIG_From_double((*arg3)) : SWIG_NewPointerObj((void*)(arg3), SWIGTYPE_p_double, 0)));
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_curvature(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double *arg2 ;
int arg3 ;
double *arg4 = (double *) 0 ;
int result;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
PyObject * obj3 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOOO:Vgrid_curvature",&obj0,&obj1,&obj2,&obj3)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
/* Check if is a list */
if (PyList_Check(obj1)) {
int size = PyList_Size(obj1);
int i = 0;
arg2 = (double *) malloc((size+1)*sizeof(double));
for (i = 0; i < size; i++) {
PyObject *o = PyList_GetItem(obj1,i);
if (PyFloat_Check(o))
arg2[i] = PyFloat_AsDouble(PyList_GetItem(obj1,i));
else {
PyErr_SetString(PyExc_TypeError,"list must contain floats");
free(arg2);
return NULL;
}
}
arg2[i] = 0;
} else {
PyErr_SetString(PyExc_TypeError,"not a list");
return NULL;
}
}
{
arg3 = (int)(SWIG_As_int(obj2));
if (SWIG_arg_fail(3)) SWIG_fail;
}
{
if (PyList_Check(obj3)) {
int size = PyList_Size(obj3);
int i = 0;
arg4 = (double *) malloc((size+1)*sizeof(double));
for (i = 0; i < size; i++) {
PyObject *o = PyList_GetItem(obj3,i);
if (PyFloat_Check(o))
arg4[i] = PyFloat_AsDouble(PyList_GetItem(obj3,i));
else {
PyErr_SetString(PyExc_TypeError,"list must contain floats");
free(arg4);
return NULL;
}
}
arg4[i] = 0;
} else {
PyErr_SetString(PyExc_TypeError,"not a list");
return NULL;
}
}
result = (int)Vgrid_curvature(arg1,arg2,arg3,arg4);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_gradient(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
Vgrid *arg1 = (Vgrid *) 0 ;
double *arg2 ;
double *arg3 ;
int result;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOO:Vgrid_gradient",&obj0,&obj1,&obj2)) goto fail;
SWIG_Python_ConvertPtr(obj0, (void **)&arg1, SWIGTYPE_p_Vgrid, SWIG_POINTER_EXCEPTION | 0);
if (SWIG_arg_fail(1)) SWIG_fail;
{
/* Check if is a list */
if (PyList_Check(obj1)) {
int size = PyList_Size(obj1);
int i = 0;
arg2 = (double *) malloc((size+1)*sizeof(double));
for (i = 0; i < size; i++) {
PyObject *o = PyList_GetItem(obj1,i);
if (PyFloat_Check(o))
arg2[i] = PyFloat_AsDouble(PyList_GetItem(obj1,i));
else {
PyErr_SetString(PyExc_TypeError,"list must contain floats");
free(arg2);
return NULL;
}
}
arg2[i] = 0;
} else {
PyErr_SetString(PyExc_TypeError,"not a list");
return NULL;
}
}
{
/* Check if is a list */
if (PyList_Check(obj2)) {
int size = PyList_Size(obj2);
int i = 0;
arg3 = (double *) malloc((size+1)*sizeof(double));
for (i = 0; i < size; i++) {
PyObject *o = PyList_GetItem(obj2,i);
if (PyFloat_Check(o))
arg3[i] = PyFloat_AsDouble(PyList_GetItem(obj2,i));
else {
PyErr_SetString(PyExc_TypeError,"list must contain floats");
free(arg3);
return NULL;
}
}
arg3[i] = 0;
} else {
PyErr_SetString(PyExc_TypeError,"not a list");
return NULL;
}
}
result = (int)Vgrid_gradient(arg1,arg2,arg3);
{
resultobj = SWIG_From_int((int)(result));
}
return resultobj;
fail:
return NULL;
}
static PyObject *_wrap_Vgrid_ctor(PyObject *self, PyObject *args) {
PyObject *resultobj = NULL;
int arg1 ;
int arg2 ;
int arg3 ;
double arg4 ;
double arg5 ;
double arg6 ;
double arg7 ;
double arg8 ;
double arg9 ;
double *arg10 = (double *) 0 ;
Vgrid *result;
PyObject * obj0 = 0 ;
PyObject * obj1 = 0 ;
PyObject * obj2 = 0 ;
PyObject * obj3 = 0 ;
PyObject * obj4 = 0 ;
PyObject * obj5 = 0 ;
PyObject * obj6 = 0 ;
PyObject * obj7 = 0 ;
PyObject * obj8 = 0 ;
PyObject * obj9 = 0 ;
if(!PyArg_ParseTuple(args,(char *)"OOOOOOOOOO:Vgrid_ctor",&obj0,&obj1,&obj2,&obj3,&obj4,&obj5,&obj6,&obj7,&obj8,&obj9)) goto fail;
{
arg1 = (int)(SWIG_As_int(obj0));
if (SWIG_arg_fail(1)) SWIG_fail;
}
{
arg2 = (int)(SWIG_As_int(obj1));
if (SWIG_arg_fail(2)) SWIG_fail;
}
{
arg3 = (int)(SWIG_As_int(obj2));
if (SWIG_arg_fail(3)) SWIG_fail;
}
{
arg4 = (double)(SWIG_As_double(obj3));
if (SWIG_arg_fail(4)) SWIG_fail;
}
{
arg5 = (double)(SWIG_As_double(obj4));
if (SWIG_arg_fail(5)) SWIG_fail;
}
{
arg6 = (double)(SWIG_As_double(obj5));
if (SWIG_arg_fail(6)) SWIG_fail;
}
{
arg7 = (double)(SWIG_As_double(obj6));
if (SWIG_arg_fail(7)) SWIG_fail;
}
{
arg8 = (double)(SWIG_As_double(obj7));
if (SWIG_arg_fail(8)) SWIG_fail;
}
{
arg9 = (double)(SWIG_As_double(obj8));
if (SWIG_arg_fail(9)) SWIG_fail;
}
{
if (PyList_Check(obj9)) {
int size = PyList_Size(obj9);
int i = 0;
arg10 = (double *) malloc((size+1)*sizeof(double));
for (i = 0; i < size; i++) {
PyObject *o = PyList_GetItem(obj9,i);
if (PyFloat_Check(o))
arg10[i] = PyFloat_AsDouble(PyList_GetItem(obj9,i));
else {
PyErr_SetString(PyExc_TypeError,"list must contain floats");
free(arg10);
return NULL;
}
}
arg10[i] = 0;
} else {
PyErr_SetString(PyExc_TypeError,"not a list");
return NULL;
}
}
result = (Vgrid *)Vgrid_ctor(arg1,arg2,arg3,arg4,arg5,arg6,arg7,arg8,arg9,arg10);
resultobj = SWIG_NewPointerObj((void*)(result), SWIGTYPE_p_Vgrid, 0);
return resultobj;
fail:
return NULL;
}
static PyMethodDef SwigMethods[] = {
{ (char *)"null_array", _wrap_null_array, METH_VARARGS, NULL},
{ (char *)"new_Vgrid", _wrap_new_Vgrid, METH_VARARGS, NULL},
{ (char *)"delete_Vgrid", _wrap_delete_Vgrid, METH_VARARGS, NULL},
{ (char *)"Vgrid_nx_set", _wrap_Vgrid_nx_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_nx_get", _wrap_Vgrid_nx_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_ny_set", _wrap_Vgrid_ny_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_ny_get", _wrap_Vgrid_ny_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_nz_set", _wrap_Vgrid_nz_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_nz_get", _wrap_Vgrid_nz_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_hx_set", _wrap_Vgrid_hx_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_hx_get", _wrap_Vgrid_hx_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_hy_set", _wrap_Vgrid_hy_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_hy_get", _wrap_Vgrid_hy_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_hzed_set", _wrap_Vgrid_hzed_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_hzed_get", _wrap_Vgrid_hzed_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_xmin_set", _wrap_Vgrid_xmin_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_xmin_get", _wrap_Vgrid_xmin_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_ymin_set", _wrap_Vgrid_ymin_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_ymin_get", _wrap_Vgrid_ymin_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_zmin_set", _wrap_Vgrid_zmin_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_zmin_get", _wrap_Vgrid_zmin_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_data_set", _wrap_Vgrid_data_set, METH_VARARGS, NULL},
{ (char *)"Vgrid_data_get", _wrap_Vgrid_data_get, METH_VARARGS, NULL},
{ (char *)"Vgrid_swigregister", Vgrid_swigregister, METH_VARARGS, NULL},
{ (char *)"delete_vgrid", _wrap_delete_vgrid, METH_VARARGS, NULL},
{ (char *)"Vgrid_ctor2", _wrap_Vgrid_ctor2, METH_VARARGS, NULL},
{ (char *)"Vgrid_dtor", _wrap_Vgrid_dtor, METH_VARARGS, NULL},
{ (char *)"Vgrid_dtor2", _wrap_Vgrid_dtor2, METH_VARARGS, NULL},
{ (char *)"Vgrid_writeUHBD", _wrap_Vgrid_writeUHBD, METH_VARARGS, NULL},
{ (char *)"Vgrid_writeDX", _wrap_Vgrid_writeDX, METH_VARARGS, NULL},
{ (char *)"Vgrid_readDX", _wrap_Vgrid_readDX, METH_VARARGS, NULL},
{ (char *)"startVio", _wrap_startVio, METH_VARARGS, NULL},
{ (char *)"Vgrid_value", _wrap_Vgrid_value, METH_VARARGS, NULL},
{ (char *)"Vgrid_curvature", _wrap_Vgrid_curvature, METH_VARARGS, NULL},
{ (char *)"Vgrid_gradient", _wrap_Vgrid_gradient, METH_VARARGS, NULL},
{ (char *)"Vgrid_ctor", _wrap_Vgrid_ctor, METH_VARARGS, NULL},
{ NULL, NULL, 0, NULL }
};
/* -------- TYPE CONVERSION AND EQUIVALENCE RULES (BEGIN) -------- */
static swig_type_info _swigt__p_Vgrid = {"_p_Vgrid", "Vgrid *", 0, 0, 0};
static swig_type_info _swigt__p_char = {"_p_char", "char *", 0, 0, 0};
static swig_type_info _swigt__p_double = {"_p_double", "double *", 0, 0, 0};
static swig_type_info _swigt__p_p_Vgrid = {"_p_p_Vgrid", "Vgrid **", 0, 0, 0};
static swig_type_info _swigt__ptrdiff_t = {"_ptrdiff_t", "ptrdiff_t", 0, 0, 0};
static swig_type_info _swigt__size_t = {"_size_t", "size_t", 0, 0, 0};
static swig_type_info *swig_type_initial[] = {
&_swigt__p_Vgrid,
&_swigt__p_char,
&_swigt__p_double,
&_swigt__p_p_Vgrid,
&_swigt__ptrdiff_t,
&_swigt__size_t,
};
static swig_cast_info _swigc__p_Vgrid[] = { {&_swigt__p_Vgrid, 0, 0, 0},{0, 0, 0, 0}};
static swig_cast_info _swigc__p_char[] = { {&_swigt__p_char, 0, 0, 0},{0, 0, 0, 0}};
static swig_cast_info _swigc__p_double[] = { {&_swigt__p_double, 0, 0, 0},{0, 0, 0, 0}};
static swig_cast_info _swigc__p_p_Vgrid[] = { {&_swigt__p_p_Vgrid, 0, 0, 0},{0, 0, 0, 0}};
static swig_cast_info _swigc__ptrdiff_t[] = { {&_swigt__ptrdiff_t, 0, 0, 0},{0, 0, 0, 0}};
static swig_cast_info _swigc__size_t[] = { {&_swigt__size_t, 0, 0, 0},{0, 0, 0, 0}};
static swig_cast_info *swig_cast_initial[] = {
_swigc__p_Vgrid,
_swigc__p_char,
_swigc__p_double,
_swigc__p_p_Vgrid,
_swigc__ptrdiff_t,
_swigc__size_t,
};
/* -------- TYPE CONVERSION AND EQUIVALENCE RULES (END) -------- */
static swig_const_info swig_const_table[] = {
{0, 0, 0, 0.0, 0, 0}};
#ifdef __cplusplus
}
#endif
/*************************************************************************
* Type initialization:
* This problem is tough by the requirement that no dynamic
* memory is used. Also, since swig_type_info structures store pointers to
* swig_cast_info structures and swig_cast_info structures store pointers back
* to swig_type_info structures, we need some lookup code at initialization.
* The idea is that swig generates all the structures that are needed.
* The runtime then collects these partially filled structures.
* The SWIG_InitializeModule function takes these initial arrays out of
* swig_module, and does all the lookup, filling in the swig_module.types
* array with the correct data and linking the correct swig_cast_info
* structures together.
* The generated swig_type_info structures are assigned staticly to an initial
* array. We just loop though that array, and handle each type individually.
* First we lookup if this type has been already loaded, and if so, use the
* loaded structure instead of the generated one. Then we have to fill in the
* cast linked list. The cast data is initially stored in something like a
* two-dimensional array. Each row corresponds to a type (there are the same
* number of rows as there are in the swig_type_initial array). Each entry in
* a column is one of the swig_cast_info structures for that type.
* The cast_initial array is actually an array of arrays, because each row has
* a variable number of columns. So to actually build the cast linked list,
* we find the array of casts associated with the type, and loop through it
* adding the casts to the list. The one last trick we need to do is making
* sure the type pointer in the swig_cast_info struct is correct.
* First off, we lookup the cast->type name to see if it is already loaded.
* There are three cases to handle:
* 1) If the cast->type has already been loaded AND the type we are adding
* casting info to has not been loaded (it is in this module), THEN we
* replace the cast->type pointer with the type pointer that has already
* been loaded.
* 2) If BOTH types (the one we are adding casting info to, and the
* cast->type) are loaded, THEN the cast info has already been loaded by
* the previous module so we just ignore it.
* 3) Finally, if cast->type has not already been loaded, then we add that
* swig_cast_info to the linked list (because the cast->type) pointer will
* be correct.
**/
#ifdef __cplusplus
extern "C" {
#endif
SWIGRUNTIME void
SWIG_InitializeModule(void *clientdata) {
swig_type_info *type, *ret;
swig_cast_info *cast;
size_t i;
swig_module_info *module_head;
static int init_run = 0;
clientdata = clientdata;
if (init_run) return;
init_run = 1;
/* Initialize the swig_module */
swig_module.type_initial = swig_type_initial;
swig_module.cast_initial = swig_cast_initial;
/* Try and load any already created modules */
module_head = SWIG_GetModule(clientdata);
if (module_head) {
swig_module.next = module_head->next;
module_head->next = &swig_module;
} else {
/* This is the first module loaded */
swig_module.next = &swig_module;
SWIG_SetModule(clientdata, &swig_module);
}
/* Now work on filling in swig_module.types */
for (i = 0; i < swig_module.size; ++i) {
type = 0;
/* if there is another module already loaded */
if (swig_module.next != &swig_module) {
type = SWIG_MangledTypeQueryModule(swig_module.next, &swig_module, swig_module.type_initial[i]->name);
}
if (type) {
/* Overwrite clientdata field */
if (swig_module.type_initial[i]->clientdata) type->clientdata = swig_module.type_initial[i]->clientdata;
} else {
type = swig_module.type_initial[i];
}
/* Insert casting types */
cast = swig_module.cast_initial[i];
while (cast->type) {
/* Don't need to add information already in the list */
ret = 0;
if (swig_module.next != &swig_module) {
ret = SWIG_MangledTypeQueryModule(swig_module.next, &swig_module, cast->type->name);
}
if (ret && type == swig_module.type_initial[i]) {
cast->type = ret;
ret = 0;
}
if (!ret) {
if (type->cast) {
type->cast->prev = cast;
cast->next = type->cast;
}
type->cast = cast;
}
cast++;
}
/* Set entry in modules->types array equal to the type */
swig_module.types[i] = type;
}
}
/* This function will propagate the clientdata field of type to
* any new swig_type_info structures that have been added into the list
* of equivalent types. It is like calling
* SWIG_TypeClientData(type, clientdata) a second time.
*/
SWIGRUNTIME void
SWIG_PropagateClientData(void) {
size_t i;
swig_cast_info *equiv;
static int init_run = 0;
if (init_run) return;
init_run = 1;
for (i = 0; i < swig_module.size; i++) {
if (swig_module.types[i]->clientdata) {
equiv = swig_module.types[i]->cast;
while (equiv) {
if (!equiv->converter) {
if (equiv->type && !equiv->type->clientdata)
SWIG_TypeClientData(equiv->type, swig_module.types[i]->clientdata);
}
equiv = equiv->next;
}
}
}
}
#ifdef __cplusplus
}
#endif
#ifdef __cplusplus
extern "C" {
#endif
/* Python-specific SWIG API */
#define SWIG_newvarlink() SWIG_Python_newvarlink()
#define SWIG_addvarlink(p, name, get_attr, set_attr) SWIG_Python_addvarlink(p, name, get_attr, set_attr)
#define SWIG_InstallConstants(d, constants) SWIG_Python_InstallConstants(d, constants)
/* -----------------------------------------------------------------------------
* global variable support code.
* ----------------------------------------------------------------------------- */
typedef struct swig_globalvar {
char *name; /* Name of global variable */
PyObject *(*get_attr)(void); /* Return the current value */
int (*set_attr)(PyObject *); /* Set the value */
struct swig_globalvar *next;
} swig_globalvar;
typedef struct swig_varlinkobject {
PyObject_HEAD
swig_globalvar *vars;
} swig_varlinkobject;
SWIGINTERN PyObject *
swig_varlink_repr(swig_varlinkobject *v) {
v = v;
return PyString_FromString("<Swig global variables>");
}
SWIGINTERN int
swig_varlink_print(swig_varlinkobject *v, FILE *fp, int flags) {
swig_globalvar *var;
flags = flags;
fprintf(fp,"Swig global variables { ");
for (var = v->vars; var; var=var->next) {
fprintf(fp,"%s", var->name);
if (var->next) fprintf(fp,", ");
}
fprintf(fp," }\n");
return 0;
}
SWIGINTERN PyObject *
swig_varlink_getattr(swig_varlinkobject *v, char *n) {
swig_globalvar *var = v->vars;
while (var) {
if (strcmp(var->name,n) == 0) {
return (*var->get_attr)();
}
var = var->next;
}
PyErr_SetString(PyExc_NameError,"Unknown C global variable");
return NULL;
}
SWIGINTERN int
swig_varlink_setattr(swig_varlinkobject *v, char *n, PyObject *p) {
swig_globalvar *var = v->vars;
while (var) {
if (strcmp(var->name,n) == 0) {
return (*var->set_attr)(p);
}
var = var->next;
}
PyErr_SetString(PyExc_NameError,"Unknown C global variable");
return 1;
}
SWIGINTERN PyTypeObject*
swig_varlink_type(void) {
static char varlink__doc__[] = "Swig var link object";
static PyTypeObject varlink_type
#if !defined(__cplusplus)
;
static int type_init = 0;
if (!type_init) {
PyTypeObject tmp
#endif
= {
PyObject_HEAD_INIT(&PyType_Type)
0, /* Number of items in variable part (ob_size) */
(char *)"swigvarlink", /* Type name (tp_name) */
sizeof(swig_varlinkobject), /* Basic size (tp_basicsize) */
0, /* Itemsize (tp_itemsize) */
0, /* Deallocator (tp_dealloc) */
(printfunc) swig_varlink_print, /* Print (tp_print) */
(getattrfunc) swig_varlink_getattr, /* get attr (tp_getattr) */
(setattrfunc) swig_varlink_setattr, /* Set attr (tp_setattr) */
0, /* tp_compare */
(reprfunc) swig_varlink_repr, /* tp_repr */
0, /* tp_as_number */
0, /* tp_as_sequence */
0, /* tp_as_mapping */
0, /* tp_hash */
0, /* tp_call */
0, /* tp_str */
0, /* tp_getattro */
0, /* tp_setattro */
0, /* tp_as_buffer */
0, /* tp_flags */
varlink__doc__, /* tp_doc */
#if PY_VERSION_HEX >= 0x02000000
0, /* tp_traverse */
0, /* tp_clear */
#endif
#if PY_VERSION_HEX >= 0x02010000
0, /* tp_richcompare */
0, /* tp_weaklistoffset */
#endif
#if PY_VERSION_HEX >= 0x02020000
0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0, /* tp_iter -> tp_weaklist */
#endif
#if PY_VERSION_HEX >= 0x02030000
0, /* tp_del */
#endif
#ifdef COUNT_ALLOCS
0,0,0,0 /* tp_alloc -> tp_next */
#endif
};
#if !defined(__cplusplus)
varlink_type = tmp;
type_init = 1;
}
#endif
return &varlink_type;
}
/* Create a variable linking object for use later */
SWIGINTERN PyObject *
SWIG_Python_newvarlink(void) {
swig_varlinkobject *result = PyObject_NEW(swig_varlinkobject, swig_varlink_type());
if (result) {
result->vars = 0;
}
return ((PyObject*) result);
}
SWIGINTERN void
SWIG_Python_addvarlink(PyObject *p, char *name, PyObject *(*get_attr)(void), int (*set_attr)(PyObject *p)) {
swig_varlinkobject *v = (swig_varlinkobject *) p;
swig_globalvar *gv = (swig_globalvar *) malloc(sizeof(swig_globalvar));
if (gv) {
size_t size = strlen(name)+1;
gv->name = (char *)malloc(size);
if (gv->name) {
strncpy(gv->name,name,size);
gv->get_attr = get_attr;
gv->set_attr = set_attr;
gv->next = v->vars;
}
}
v->vars = gv;
}
/* -----------------------------------------------------------------------------
* constants/methods manipulation
* ----------------------------------------------------------------------------- */
/* Install Constants */
SWIGINTERN void
SWIG_Python_InstallConstants(PyObject *d, swig_const_info constants[]) {
PyObject *obj = 0;
size_t i;
for (i = 0; constants[i].type; ++i) {
switch(constants[i].type) {
case SWIG_PY_INT:
obj = PyInt_FromLong(constants[i].lvalue);
break;
case SWIG_PY_FLOAT:
obj = PyFloat_FromDouble(constants[i].dvalue);
break;
case SWIG_PY_STRING:
if (constants[i].pvalue) {
obj = PyString_FromString((char *) constants[i].pvalue);
} else {
Py_INCREF(Py_None);
obj = Py_None;
}
break;
case SWIG_PY_POINTER:
obj = SWIG_NewPointerObj(constants[i].pvalue, *(constants[i]).ptype,0);
break;
case SWIG_PY_BINARY:
obj = SWIG_NewPackedObj(constants[i].pvalue, constants[i].lvalue, *(constants[i].ptype));
break;
default:
obj = 0;
break;
}
if (obj) {
PyDict_SetItemString(d,constants[i].name,obj);
Py_DECREF(obj);
}
}
}
/* -----------------------------------------------------------------------------*/
/* Fix SwigMethods to carry the callback ptrs when needed */
/* -----------------------------------------------------------------------------*/
SWIGINTERN void
SWIG_Python_FixMethods(PyMethodDef *methods,
swig_const_info *const_table,
swig_type_info **types,
swig_type_info **types_initial) {
size_t i;
for (i = 0; methods[i].ml_name; ++i) {
char *c = methods[i].ml_doc;
if (c && (c = strstr(c, "swig_ptr: "))) {
int j;
swig_const_info *ci = 0;
char *name = c + 10;
for (j = 0; const_table[j].type; ++j) {
if (strncmp(const_table[j].name, name,
strlen(const_table[j].name)) == 0) {
ci = &(const_table[j]);
break;
}
}
if (ci) {
size_t shift = (ci->ptype) - types;
swig_type_info *ty = types_initial[shift];
size_t ldoc = (c - methods[i].ml_doc);
size_t lptr = strlen(ty->name)+2*sizeof(void*)+2;
char *ndoc = (char*)malloc(ldoc + lptr + 10);
if (ndoc) {
char *buff = ndoc;
void *ptr = (ci->type == SWIG_PY_POINTER) ? ci->pvalue : 0;
if (ptr) {
strncpy(buff, methods[i].ml_doc, ldoc);
buff += ldoc;
strncpy(buff, "swig_ptr: ", 10);
buff += 10;
SWIG_PackVoidPtr(buff, ptr, ty->name, lptr);
methods[i].ml_doc = ndoc;
}
}
}
}
}
}
/* -----------------------------------------------------------------------------*
* Initialize type list
* -----------------------------------------------------------------------------*/
#if PY_MAJOR_VERSION < 2
/* PyModule_AddObject function was introduced in Python 2.0. The following function
is copied out of Python/modsupport.c in python version 2.3.4 */
SWIGINTERN int
PyModule_AddObject(PyObject *m, char *name, PyObject *o)
{
PyObject *dict;
if (!PyModule_Check(m)) {
PyErr_SetString(PyExc_TypeError,
"PyModule_AddObject() needs module as first arg");
return -1;
}
if (!o) {
PyErr_SetString(PyExc_TypeError,
"PyModule_AddObject() needs non-NULL value");
return -1;
}
dict = PyModule_GetDict(m);
if (dict == NULL) {
/* Internal error -- modules must have a dict! */
PyErr_Format(PyExc_SystemError, "module '%s' has no __dict__",
PyModule_GetName(m));
return -1;
}
if (PyDict_SetItemString(dict, name, o))
return -1;
Py_DECREF(o);
return 0;
}
#endif
#ifdef __cplusplus
}
#endif
/* -----------------------------------------------------------------------------*
* Partial Init method
* -----------------------------------------------------------------------------*/
#ifdef __cplusplus
extern "C"
#endif
SWIGEXPORT void SWIG_init(void) {
static PyObject *SWIG_globals = 0;
PyObject *m, *d;
if (!SWIG_globals) SWIG_globals = SWIG_newvarlink();
/* Fix SwigMethods to carry the callback ptrs when needed */
SWIG_Python_FixMethods(SwigMethods, swig_const_table, swig_types, swig_type_initial);
m = Py_InitModule((char *) SWIG_name, SwigMethods);
d = PyModule_GetDict(m);
SWIG_InitializeModule(0);
SWIG_InstallConstants(d,swig_const_table);
}