cyphesis/rulesets/Python_API.cpp
Al Riddoch 184b29b6a6 2003-07-19 Al Riddoch <alriddoch@zepler.org>
* rulesets/Py_BBox.cpp, rulesets/Py_Quaternion.cpp,
	  rulesets/Python_API.cpp, server/Restorer_impl.h:
	  Add some casts and tweaks so that wrappers and
	  database code work with wfmath structures.
2003-07-19 02:11:49 +00:00

1056 lines
35 KiB
C++

// This file may be redistributed and modified only under the terms of
// the GNU General Public License (See COPYING for details).
// Copyright (C) 2000 Alistair Riddoch
#include "Python_API.h"
#include "Py_Object.h"
#include "Py_Thing.h"
#include "Py_Mind.h"
#include "Py_Map.h"
#include "Py_Location.h"
#include "Py_Vector3D.h"
#include "Py_Quaternion.h"
#include "Py_WorldTime.h"
#include "Py_World.h"
#include "Py_Operation.h"
#include "Py_Oplist.h"
#include "Py_Optime.h"
#include "PythonThingScript.h"
#include "PythonMindScript.h"
#include "World.h"
#include "Entity.h"
#include "BaseMind.h"
#include "common/globals.h"
#include "common/const.h"
#include "common/debug.h"
#include "common/log.h"
#include "common/Tick.h"
#include "common/Burn.h"
#include "common/Chop.h"
#include "common/Cut.h"
#include "common/Setup.h"
#include "common/Eat.h"
#include "common/Nourish.h"
#include "common/Generic.h"
#include <Atlas/Objects/Operation/Create.h>
#include <Atlas/Objects/Operation/Look.h>
#include <Atlas/Objects/Operation/Move.h>
#include <Atlas/Objects/Operation/Set.h>
#include <Atlas/Objects/Operation/Sight.h>
#include <Atlas/Objects/Operation/Talk.h>
#include <Atlas/Objects/Operation/Touch.h>
#include <Atlas/Objects/Operation/Info.h>
#include <cstdio>
static const bool debug_flag = false;
typedef struct {
PyObject_HEAD
} FunctionObject;
static void Function_dealloc(FunctionObject * self)
{
PyMem_DEL(self);
}
static PyObject * log_debug(PyObject * self, PyObject * args, PyObject * kwds)
{
Py_INCREF(Py_None);
return Py_None;
}
PyTypeObject log_debug_type = {
PyObject_HEAD_INIT(&PyType_Type)
0,
"Function",
sizeof(FunctionObject),
0,
/* methods */
(destructor)Function_dealloc,
0, /* tp_print */
0, /* tp_getattr */
0, /* tp_setattr */
0, /* tp_compare */
0, /* tp_repr */
0, /* tp_as_number */
0, /* tp_as_sequence */
0, /* tp_as_mapping */
0, /* tp_hash */
log_debug, /* tp_call */
};
static PyObject * dictlist_remove_value(PyObject * self, PyObject * args, PyObject * kwds)
{
PyObject * dict;
EntityObject * item;
long remove_empty_key = 1;
if (!PyArg_ParseTuple(args, "OO|i", &dict, &item, &remove_empty_key)) {
return NULL;
}
int flag = 0;
if (!PyDict_Check(dict)) {
PyErr_SetString(PyExc_TypeError, "Trying to set item in not dictlist");
return NULL;
}
PyObject * keys = PyDict_Keys(dict);
PyObject * values = PyDict_Values(dict);
if ((keys == NULL) || (values == NULL)) {
PyErr_SetString(PyExc_TypeError, "Error getting keys from dictlist");
return NULL;
}
int i, size = PyList_Size(keys);
for(i = 0; i < size; i++) {
PyObject * value = PyList_GetItem(values, i);
PyObject * key = PyList_GetItem(keys, i);
int j, lsize = PyList_Size(value);
for(j = 0; j < lsize; j++) {
EntityObject * entry = (EntityObject*)PyList_GetItem(value, j);
if (entry->m_entity == item->m_entity) {
flag = 1;
PyList_SetSlice(value, j, j+1, NULL);
j--; lsize--;
if ((remove_empty_key !=0) && (PyList_Size(value) == 0)) {
PyDict_DelItem(dict, key);
}
}
}
}
Py_DECREF(keys);
Py_DECREF(values);
return PyInt_FromLong(flag);
}
PyTypeObject dictlist_remove_value_type = {
PyObject_HEAD_INIT(&PyType_Type)
0,
"Function",
sizeof(FunctionObject),
0,
/* methods */
(destructor)Function_dealloc,
0, /* tp_print */
0, /* tp_getattr */
0, /* tp_setattr */
0, /* tp_compare */
0, /* tp_repr */
0, /* tp_as_number */
0, /* tp_as_sequence */
0, /* tp_as_mapping */
0, /* tp_hash */
dictlist_remove_value, /* tp_call */
};
static PyObject * dictlist_add_value(PyObject * self, PyObject * args, PyObject * kwds)
{
PyObject * dict;
EntityObject * item;
char * key;
if (!PyArg_ParseTuple(args, "OsO", &dict, &key, &item)) {
return NULL;
}
if (!PyDict_Check(dict)) {
PyErr_SetString(PyExc_TypeError, "Dict is not a dictionary");
return NULL;
}
PyObject * list = PyDict_GetItemString(dict, key);
if (list != NULL) {
if (!PyList_Check(list)) {
PyErr_SetString(PyExc_TypeError, "Dict does not contain a list");
return NULL;
}
int i, size = PyList_Size(list);
for(i = 0; i < size; i++) {
EntityObject * entry = (EntityObject*)PyList_GetItem(list,i);
if (entry->m_entity == item->m_entity) {
goto present;
}
}
PyList_Append(list, (PyObject*)item);
} else {
list = PyList_New(0);
PyList_Append(list, (PyObject*)item);
PyDict_SetItemString(dict, key, list);
Py_DECREF(list);
}
present:
Py_INCREF(Py_None);
return Py_None;
}
PyTypeObject dictlist_add_value_type = {
PyObject_HEAD_INIT(&PyType_Type)
0,
"Function",
sizeof(FunctionObject),
0,
/* methods */
(destructor)Function_dealloc,
0, /* tp_print */
0, /* tp_getattr */
0, /* tp_setattr */
0, /* tp_compare */
0, /* tp_repr */
0, /* tp_as_number */
0, /* tp_as_sequence */
0, /* tp_as_mapping */
0, /* tp_hash */
dictlist_add_value, /* tp_call */
};
static PyObject * Get_PyClass(const std::string & package,
const std::string & _type)
{
std::string type = _type;
type[0] = toupper(type[0]);
PyObject * package_name = PyString_FromString((char *)package.c_str());
PyObject * mod_dict = PyImport_Import(package_name);
Py_DECREF(package_name);
if (mod_dict == NULL) {
std::string msg = std::string("Missing python module ") + package;
log(ERROR, msg.c_str());
PyErr_Print();
return NULL;
}
PyObject * my_class = PyObject_GetAttrString(mod_dict, (char *)type.c_str());
Py_DECREF(mod_dict);
if (my_class == NULL) {
std::string msg = std::string("Missing class ") + package + "." + type;
log(ERROR, msg.c_str());
PyErr_Print();
return NULL;
}
if (PyCallable_Check(my_class) == 0) {
std::string msg = std::string("Could not instance python class ")
+ package + "." + type;
log(ERROR, msg.c_str());
Py_DECREF(my_class);
return NULL;
}
return my_class;
}
static PyObject * Create_PyScript(PyObject * pyEntity, PyObject * pyClass)
{
PyObject * pyob = PyEval_CallFunction(pyClass,"(O)", pyEntity);
if (pyob == NULL) {
if (PyErr_Occurred() == NULL) {
log(ERROR, "Could not create python instance");
} else {
log(ERROR, "Reporting python error");
PyErr_Print();
}
}
Py_DECREF(pyClass);
Py_DECREF(pyEntity);
return pyob;
}
template<class T>
void Subscribe_Script(T * entity, PyObject * pyclass,
const std::string& package)
{
PyObject * dmap = PyObject_GetAttrString(pyclass, "__dict__");
if (dmap == NULL) {
std::string msg = std::string( "Python class for ") + package
+ " has no __dict__";
log(ERROR, msg.c_str());
return;
}
if (!PyDict_Check(dmap)) {
std::string msg = std::string( "Python class for ") + package
+ " is malformed";
log(ERROR, msg.c_str());
return;
}
PyObject * keys = PyDict_Keys(dmap);
if (keys == NULL) {
std::string msg = std::string("Error getting attribute list of Python class for ") + package;
log(ERROR, msg.c_str());
return;
}
for(int i = 0; i < PyList_Size(keys); i++) {
std::string method(PyString_AsString(PyList_GetItem(keys, i)));
std::string::size_type l = method.find("_operation", 0, 10);
if (l == std::string::npos) {
debug(std::cout << method << " is not a method" << std::endl
<< std::flush;);
} else {
std::string op_name = method.substr(0,l);
debug(std::cout << method << " is a method, it contains _op.. at "
<< l << " so we can register for "
<< method.substr(0,l) << std::endl << std::flush;);
entity->scriptSubscribe(op_name);
}
}
}
void Create_PyEntity(Entity * entity, const std::string & package,
const std::string & _type)
{
PyObject * c = Get_PyClass(package, _type);
if (c == NULL) { return; }
EntityObject * pyEntity = newEntityObject(NULL);
pyEntity->m_entity = entity;
Subscribe_Script(entity, c, package);
PyObject * o = Create_PyScript((PyObject *)pyEntity, c);
if (o != NULL) {
entity->setScript(new PythonEntityScript(o, *entity));
}
}
void Create_PyMind(BaseMind * mind, const std::string & package,
const std::string & _type)
{
PyObject * c = Get_PyClass(package, _type);
if (c == NULL) { return; }
MindObject * pyMind = newMindObject(NULL);
pyMind->m_mind = mind;
Subscribe_Script(mind, c, package);
PyObject * o = Create_PyScript((PyObject *)pyMind, c);
if (o != NULL) {
mind->setScript(new PythonMindScript(o, *mind));
}
}
static PyObject * is_location(PyObject * self, PyObject * args)
{
PyObject * loc;
if (!PyArg_ParseTuple(args, "O", &loc)) {
return NULL;
}
if (PyLocation_Check(loc)) {
Py_INCREF(Py_True);
return Py_True;
}
Py_INCREF(Py_False);
return Py_False;
}
static PyObject * location_new(PyObject * self, PyObject * args)
{
LocationObject *o;
// We need to deal with actual args here
PyObject * refO, * coordsO = NULL;
bool decrefO = false;
if (PyArg_ParseTuple(args, "O|O", &refO, &coordsO)) {
if ((!PyEntity_Check(refO)) && (!PyWorld_Check(refO)) && (!PyMind_Check(refO))) {
if (PyObject_HasAttrString(refO, "cppthing")) {
refO = PyObject_GetAttrString(refO, "cppthing");
decrefO = true;
}
if (!PyEntity_Check(refO) && !PyMind_Check(refO)) {
PyErr_SetString(PyExc_TypeError, "Arg ref required");
if (decrefO) { Py_DECREF(refO); }
return NULL;
}
}
if ((coordsO != NULL) && (!PyVector3D_Check(coordsO))) {
PyErr_SetString(PyExc_TypeError, "Arg coords required");
if (decrefO) { Py_DECREF(refO); }
return NULL;
}
Entity * ref_ent;
if (PyWorld_Check(refO)) {
WorldObject * ref = (WorldObject*)refO;
if (ref->world == NULL) {
PyErr_SetString(PyExc_TypeError, "Parent world is invalid");
if (decrefO) { Py_DECREF(refO); }
return NULL;
}
ref_ent = &ref->world->m_gameWorld;
} else if (PyMind_Check(refO)) {
MindObject * ref = (MindObject*)refO;
if (ref->m_mind == NULL) {
PyErr_SetString(PyExc_TypeError, "Parent mind is invalid");
if (decrefO) { Py_DECREF(refO); }
return NULL;
}
ref_ent = ref->m_mind;
} else {
EntityObject * ref = (EntityObject*)refO;
if (ref->m_entity == NULL) {
PyErr_SetString(PyExc_TypeError, "Parent thing is invalid");
if (decrefO) { Py_DECREF(refO); }
return NULL;
}
ref_ent = ref->m_entity;
}
if (decrefO) { Py_DECREF(refO); }
Vector3DObject * coords = (Vector3DObject*)coordsO;
o = newLocationObject(NULL);
if ( o == NULL ) {
return NULL;
}
if (coords == NULL) {
o->location = new Location(ref_ent);
} else {
o->location = new Location(ref_ent, coords->coords);
}
o->own = 1;
} else if (PyArg_ParseTuple(args, "")) {
o = newLocationObject(NULL);
if ( o == NULL ) {
return NULL;
}
o->location = new Location;
o->own = 1;
} else {
return NULL;
}
return (PyObject *)o;
}
static PyObject * vector3d_new(PyObject * self, PyObject * args)
{
Vector3DObject *o;
Vector3D val;
// We need to deal with actual args here
PyObject * clist;
switch (PyTuple_Size(args)) {
case 0:
break;
case 1:
clist = PyTuple_GetItem(args, 0);
if ((!PyList_Check(clist)) || (PyList_Size(clist) != 3)) {
PyErr_SetString(PyExc_TypeError, "Vector3D() from single value must a list 3 long");
return NULL;
}
for(int i = 0; i < 3; i++) {
PyObject * item = PyList_GetItem(clist, i);
if (PyInt_Check(item)) {
val[i] = (double)PyInt_AsLong(item);
} else if (PyFloat_Check(item)) {
val[i] = PyFloat_AsDouble(item);
} else {
PyErr_SetString(PyExc_TypeError, "Vector3D() must take list of floats, or ints");
return NULL;
}
}
val.setValid();
break;
case 3:
for(int i = 0; i < 3; i++) {
PyObject * item = PyTuple_GetItem(args, i);
if (PyInt_Check(item)) {
val[i] = (double)PyInt_AsLong(item);
} else if (PyFloat_Check(item)) {
val[i] = PyFloat_AsDouble(item);
} else {
PyErr_SetString(PyExc_TypeError, "Vector3D() must take list of floats, or ints");
return NULL;
}
}
val.setValid();
break;
default:
PyErr_SetString(PyExc_TypeError, "Vector3D must take list of floats, or ints, 3 ints or 3 floats");
return NULL;
break;
}
o = newVector3DObject(args);
if ( o == NULL ) {
return NULL;
}
o->coords = val;
return (PyObject *)o;
}
static PyObject * quaternion_new(PyObject * self, PyObject * args)
{
QuaternionObject *o;
Quaternion val;
PyObject * clist;
switch (PyTuple_Size(args)) {
case 0:
break;
case 1:
clist = PyTuple_GetItem(args, 0);
if ((!PyList_Check(clist)) || (PyList_Size(clist) != 4)) {
PyErr_SetString(PyExc_TypeError, "Quaternion() from single value must a list 4 long");
return NULL;
}
{
float quaternion[4];
for(int i = 0; i < 4; i++) {
PyObject * item = PyList_GetItem(clist, i);
if (PyInt_Check(item)) {
quaternion[i] = (WFMath::CoordType)PyInt_AsLong(item);
} else if (PyFloat_Check(item)) {
quaternion[i] = PyFloat_AsDouble(item);
} else {
PyErr_SetString(PyExc_TypeError, "Quaternion() must take list of floats, or ints");
return NULL;
}
}
val = Quaternion(quaternion[3], quaternion[0],
quaternion[1], quaternion[2]);
}
break;
case 2:
{
PyObject * v1 = PyTuple_GetItem(args, 0);
PyObject * v2 = PyTuple_GetItem(args, 0);
if (!PyVector3D_Check(v1) || !PyVector3D_Check(v2)) {
PyErr_SetString(PyExc_TypeError, "Quaternion(a,b) must take two vectors");
return NULL;
}
Vector3DObject * from = (Vector3DObject *)v1;
Vector3DObject * to = (Vector3DObject *)v2;
val = quaternionFromTo(from->coords, to->coords);
}
break;
case 4:
{
float quaternion[4];
for(int i = 0; i < 4; i++) {
PyObject * item = PyTuple_GetItem(args, i);
if (PyInt_Check(item)) {
quaternion[i] = (WFMath::CoordType)PyInt_AsLong(item);
} else if (PyFloat_Check(item)) {
quaternion[i] = PyFloat_AsDouble(item);
} else {
PyErr_SetString(PyExc_TypeError, "Quaternion() must take list of floats, or ints");
return NULL;
}
}
val = Quaternion(quaternion[3], quaternion[0],
quaternion[1], quaternion[2]);
}
break;
default:
PyErr_SetString(PyExc_TypeError, "Quaternion must take list of floats, or ints, 4 ints or 4 floats");
return NULL;
break;
}
o = newQuaternionObject(args);
if ( o == NULL ) {
return NULL;
}
o->rotation = val;
return (PyObject *)o;
}
static PyObject * worldtime_new(PyObject * self, PyObject * args)
{
WorldTimeObject *o;
int seconds;
if (!PyArg_ParseTuple(args, "i", &seconds)) {
return NULL;
}
o = newWorldTimeObject(args);
if ( o == NULL ) {
return NULL;
}
o->time = new WorldTime(seconds);
o->own = true;
return (PyObject *)o;
}
static inline void addToOplist(OperationObject * op, OplistObject * o)
{
if (op != NULL) {
if (PyOperation_Check(op)) {
o->ops->push_back(op->operation);
op->own = 0;
} else if ((PyObject*)op != Py_None) {
PyErr_SetString(PyExc_TypeError, "Argument must be an op");
return;
}
}
}
static PyObject * oplist_new(PyObject * self, PyObject * args)
{
OplistObject *o;
OperationObject *op1 = NULL, *op2 = NULL, *op3 = NULL, *op4 = NULL;
if (!PyArg_ParseTuple(args, "|OOOO", &op1, &op2, &op3, &op4)) {
return NULL;
}
o = newOplistObject(args);
if ( o == NULL ) {
return NULL;
}
o->ops = new OpVector();
addToOplist(op1, o);
addToOplist(op2, o);
addToOplist(op3, o);
addToOplist(op4, o);
return (PyObject *)o;
}
static PyObject * object_new(PyObject * self, PyObject * args)
{
AtlasObject *o;
if (!PyArg_ParseTuple(args, "")) {
return NULL;
}
o = newAtlasObject(args);
if ( o == NULL ) {
return NULL;
}
o->m_obj = new Element(Element::MapType());
return (PyObject *)o;
}
static PyObject * entity_new(PyObject * self, PyObject * args, PyObject * kwds)
{
AtlasObject *o;
char * id = NULL;
if (!PyArg_ParseTuple(args, "|s", &id)) {
return NULL;
}
Element::MapType omap;
if (id != NULL) {
omap["id"] = std::string(id);
}
if ((kwds != NULL) && (PyDict_Check(kwds))) {
PyObject * keys = PyDict_Keys(kwds);
PyObject * vals = PyDict_Values(kwds);
if ((keys == NULL) || (vals == NULL)) {
PyErr_SetString(PyExc_TypeError, "Error in keywords");
return NULL;
}
int i, size = PyList_Size(keys);
for(i = 0; i < size; i++) {
char * key = PyString_AsString(PyList_GetItem(keys, i));
PyObject * val = PyList_GetItem(vals, i);
if ((strcmp(key, "location") == 0) && (PyLocation_Check(val))) {
LocationObject * loc = (LocationObject*)val;
loc->location->addToObject(omap);
} else if (strcmp(key, "xyz") == 0) {
omap["pos"] = PyObject_asObject(val);
} else if ((strcmp(key, "parent") == 0) && (PyString_Check(val))) {
omap["loc"] = PyString_AsString(val);
} else if ((strcmp(key, "type") == 0) && (PyString_Check(val))) {
omap["parents"] = Element::ListType(1,std::string(PyString_AsString(val)));
} else {
Element val_obj = PyObject_asObject(val);
if (val_obj.GetType() == Element::TYPE_NONE) {
fprintf(stderr, "Could not handle %s value in Entity()", key);
PyErr_SetString(PyExc_TypeError, "Argument type error to Entity()");
Py_DECREF(keys);
Py_DECREF(vals);
return NULL;
}
omap[key] = val_obj;
}
}
Py_DECREF(keys);
Py_DECREF(vals);
}
o = newAtlasObject(args);
if ( o == NULL ) {
return NULL;
}
o->m_obj = new Element(omap);
return (PyObject *)o;
}
static PyObject * cppthing_new(PyObject * self, PyObject * args)
{
EntityObject *o;
if (!PyArg_ParseTuple(args, "")) {
return NULL;
}
o = newEntityObject(args);
if ( o == NULL ) {
return NULL;
}
return (PyObject *)o;
}
static inline void addToArgs(Element::ListType & args, PyObject * ent)
{
if (ent == NULL) {
return;
}
if (PyAtlasObject_Check(ent)) {
AtlasObject * obj = (AtlasObject*)ent;
if (obj->m_obj == NULL) {
fprintf(stderr, "Invalid object in Operation arguments\n");
return;
}
Element o(*obj->m_obj);
if (o.IsMap() && (obj->Object_attr != NULL)) {
Element::MapType & ent = o.AsMap();
Element::MapType ent2 = PyDictObject_asMapType(obj->Object_attr);
Element::MapType::const_iterator I = ent2.begin();
for(; I != ent2.end(); I++) {
if (ent.find(I->first) != ent.end()) {
ent[I->first] = I->second;
}
}
}
args.push_back(o);
} else if (PyOperation_Check(ent)) {
OperationObject * op = (OperationObject*)ent;
if (op->operation == NULL) {
fprintf(stderr, "Invalid operation in Operation arguments\n");
return;
}
args.push_back(op->operation->AsObject());
} else {
fprintf(stderr, "Non-entity passed as arg to Operation()\n");
}
}
static PyObject * operation_new(PyObject * self, PyObject * args, PyObject * kwds)
{
OperationObject * op;
char * type;
PyObject * arg1 = NULL;
PyObject * arg2 = NULL;
PyObject * arg3 = NULL;
if (!PyArg_ParseTuple(args, "s|OOO", &type, &arg1, &arg2, &arg3)) {
return NULL;
}
op = newAtlasRootOperation(args);
if (op == NULL) {
return NULL;
}
if (strcmp(type, "tick") == 0) {
op->operation = new Tick(Tick::Instantiate());
} else if (strcmp(type, "sight") == 0) {
op->operation = new Sight(Sight::Instantiate());
} else if (strcmp(type, "set") == 0) {
op->operation = new Set(Set::Instantiate());
} else if (strcmp(type, "burn") == 0) {
op->operation = new Burn(Burn::Instantiate());
} else if (strcmp(type, "action") == 0) {
op->operation = new Action(Action::Instantiate());
} else if (strcmp(type, "chop") == 0) {
op->operation = new Chop(Chop::Instantiate());
} else if (strcmp(type, "cut") == 0) {
op->operation = new Cut(Cut::Instantiate());
} else if (strcmp(type, "create") == 0) {
op->operation = new Create(Create::Instantiate());
} else if (strcmp(type, "setup") == 0) {
op->operation = new Setup(Setup::Instantiate());
} else if (strcmp(type, "look") == 0) {
op->operation = new Look(Look::Instantiate());
} else if (strcmp(type, "move") == 0) {
op->operation = new Move(Move::Instantiate());
} else if (strcmp(type, "talk") == 0) {
op->operation = new Talk(Talk::Instantiate());
} else if (strcmp(type, "touch") == 0) {
op->operation = new Touch(Touch::Instantiate());
} else if (strcmp(type, "eat") == 0) {
op->operation = new Eat(Eat::Instantiate());
} else if (strcmp(type, "nourish") == 0) {
op->operation = new Nourish(Nourish::Instantiate());
} else if (strcmp(type, "info") == 0) {
op->operation = new Info(Info::Instantiate());
} else if (strcmp(type, "thought") == 0 ||
strcmp(type, "goal_info") == 0) {
Py_DECREF(op);
Py_INCREF(Py_None);
return Py_None;
} else {
op->operation = new RootOperation(Generic::Instantiate(type));
// fprintf(stderr, "NOTICE: Python creating a custom %s op\n", type);
//*op->operation = RootOperation::Instantiate();
// Py_DECREF(op);
// Py_INCREF(Py_None);
// return Py_None;
}
op->own = 1;
if (PyMapping_HasKeyString(kwds, "to")) {
PyObject * to = PyMapping_GetItemString(kwds, "to");
PyObject * to_id;
if (PyString_Check(to)) {
to_id = to;
} else if ((to_id = PyObject_GetAttrString(to, "id")) == NULL) {
fprintf(stderr, "To was not really an entity, as it had no id\n");
Py_DECREF(to);
return NULL;
} else {
// to_id == to.getattr("id") and to is finished with
Py_DECREF(to);
}
if (!PyString_Check(to_id)) {
fprintf(stderr, "To id is not a string\n");
Py_DECREF(to_id);
return NULL;
}
op->operation->SetTo(PyString_AsString(to_id));
Py_DECREF(to_id);
}
if (PyMapping_HasKeyString(kwds, "from_")) {
PyObject * from = PyMapping_GetItemString(kwds, "from_");
PyObject * from_id;
if (PyString_Check(from)) {
from_id = from;
} else if ((from_id = PyObject_GetAttrString(from, "id")) == NULL) {
fprintf(stderr, "From was not really an entity, as it had no id\n");
Py_DECREF(from);
return NULL;
} else {
Py_DECREF(from);
}
if (!PyString_Check(from_id)) {
fprintf(stderr, "From id is not a string\n");
Py_DECREF(from_id);
return NULL;
}
op->operation->SetFrom(PyString_AsString(from_id));
Py_DECREF(from_id);
}
Element::ListType args_list;
addToArgs(args_list, arg1);
addToArgs(args_list, arg2);
addToArgs(args_list, arg3);
op->operation->SetArgs(args_list);
return (PyObject *)op;
}
static PyObject * set_kw(PyObject * meth_self, PyObject * args)
{
// Takes self, kw, name, default = None
PyObject * self;
PyObject * kw;
char * name;
PyObject * def = NULL;
if (!PyArg_ParseTuple(args, "OOs|O", &self, &kw, &name, &def)) {
return NULL;
}
PyObject * attr = PyObject_GetAttrString(self, "attributes");
if (attr == NULL) {
PyErr_SetString(PyExc_TypeError, "SET_KW: No attributes list");
return NULL;
}
int i = PyList_Size(attr);
char * entry;
PyObject * item;
for(i = 0; i < PyList_Size(attr); i++) {
item = PyList_GetItem(attr, i);
if (!PyString_Check(item)) {
continue;
}
entry = PyString_AsString(item);
if (strcmp(entry, name) == 0) {
goto list_contains_it;
}
// Should I free entry at this point?
}
{
PyObject * namestr = PyString_FromString(name);
PyList_Append(attr, namestr);
Py_DECREF(namestr);
}
list_contains_it:
Py_DECREF(attr);
if (!PyDict_Check(kw)) {
PyErr_SetString(PyExc_TypeError, "SET_KW: kw not a dict");
return NULL;
}
PyObject * value = NULL;
bool decvalue = false;
if ((value = PyDict_GetItemString(kw, name)) == NULL) {
PyObject * copy = PyDict_GetItemString(kw, "copy");
if ((copy != NULL) && (PyObject_HasAttrString(copy, name))) {
value = PyObject_GetAttrString(copy, name);
decvalue = true;
} else {
value = def;
}
}
if (value == NULL) {
Py_INCREF(Py_None);
value = Py_None;
}
PyObject_SetAttrString(self, name, value);
if (decvalue) { Py_DECREF(value); }
Py_INCREF(Py_None);
return Py_None;
}
static PyMethodDef atlas_methods[] = {
/* {"system", spam_system, METH_VARARGS}, */
{"Operation", (PyCFunction)operation_new, METH_VARARGS|METH_KEYWORDS},
{"isLocation", is_location, METH_VARARGS},
{"Location", location_new, METH_VARARGS},
{"Object", object_new, METH_VARARGS},
{"Entity", (PyCFunction)entity_new, METH_VARARGS|METH_KEYWORDS},
{"Message", oplist_new, METH_VARARGS},
{"cppEntity", cppthing_new, METH_VARARGS},
{NULL, NULL} /* Sentinel */
};
static PyMethodDef vector3d_methods[] = {
{"Vector3D", vector3d_new, METH_VARARGS},
{NULL, NULL} /* Sentinel */
};
static PyMethodDef quaternion_methods[] = {
{"Quaternion", quaternion_new, METH_VARARGS},
{NULL, NULL} /* Sentinel */
};
static PyMethodDef server_methods[] = {
{"WorldTime", worldtime_new, METH_VARARGS},
{NULL, NULL} /* Sentinel */
};
static PyMethodDef common_methods[] = {
//{"null", null_new, METH_VARARGS},
{NULL, NULL} /* Sentinel */
};
static PyMethodDef misc_methods[] = {
{"set_kw", set_kw, METH_VARARGS},
{NULL, NULL} /* Sentinel */
};
void init_python_api()
{
std::string pypath("");
std::string importCmd("ruleset_import_hooks.install([");
std::vector<std::string>::const_iterator I;
for(I = rulesets.begin(); I != rulesets.end(); I++) {
pypath = pypath + share_directory + "/cyphesis/rulesets/" + *I + ":";
if (I != rulesets.begin()) {
importCmd = importCmd + ",";
}
importCmd = importCmd + "\"" + *I + "\"";
}
importCmd = importCmd + "])\n";
std::string pathEnvStr = std::string("PYTHONPATH=") + pypath;
char * path_environment = new char[pathEnvStr.size() + 1];
strcpy(path_environment, pathEnvStr.c_str());
putenv(path_environment);
Py_Initialize();
if (Py_InitModule("atlas", atlas_methods) == NULL) {
fprintf(stderr, "Failed to Create atlas module\n");
return;
}
if (Py_InitModule("Vector3D", vector3d_methods) == NULL) {
fprintf(stderr, "Failed to Create Vector3D module\n");
return;
}
if (Py_InitModule("Quaternion", quaternion_methods) == NULL) {
fprintf(stderr, "Failed to Create Quaternion module\n");
return;
}
if (Py_InitModule("misc", misc_methods) == NULL) {
fprintf(stderr, "Failed to Create misc module\n");
return;
}
PyObject * common;
if ((common = Py_InitModule("common", common_methods)) == NULL) {
fprintf(stderr, "Failed to Create common module\n");
return;
}
PyObject * _const = PyModule_New("const");
PyObject * globals = PyModule_New("globals");
PyObject * log = PyModule_New("log");
PyObject * dict = PyModule_GetDict(common);
PyDict_SetItemString(dict, "const", _const);
PyDict_SetItemString(dict, "globals", globals);
PyDict_SetItemString(dict, "log", log);
PyObject * debug = (PyObject *)PyObject_NEW(FunctionObject, &log_debug_type);
PyObject_SetAttrString(log, "debug", debug);
Py_DECREF(debug);
Py_DECREF(log);
PyObject * o;
o = PyInt_FromLong(0);
PyObject_SetAttrString(_const, "server_python", o);
Py_DECREF(o);
o = PyInt_FromLong(consts::debug_level);
PyObject_SetAttrString(_const, "debug_level", o);
Py_DECREF(o);
o = PyInt_FromLong(consts::debug_thinking);
PyObject_SetAttrString(_const, "debug_thinking", o);
Py_DECREF(o);
o = PyFloat_FromDouble(consts::time_multiplier);
PyObject_SetAttrString(_const, "time_multiplier", o);
Py_DECREF(o);
o = PyFloat_FromDouble(consts::base_velocity_coefficient);
PyObject_SetAttrString(_const, "base_velocity_coefficient", o);
Py_DECREF(o);
o = PyFloat_FromDouble(consts::base_velocity);
PyObject_SetAttrString(_const, "base_velocity", o);
Py_DECREF(o);
o = PyFloat_FromDouble(consts::basic_tick);
PyObject_SetAttrString(_const, "basic_tick", o);
Py_DECREF(o);
o = PyFloat_FromDouble(consts::sight_range);
PyObject_SetAttrString(_const, "sight_range", o);
Py_DECREF(o);
o = PyFloat_FromDouble(consts::hearing_range);
PyObject_SetAttrString(_const, "hearing_range", o);
Py_DECREF(o);
o = PyInt_FromLong(consts::enable_ranges);
PyObject_SetAttrString(_const, "enable_ranges", o);
Py_DECREF(o);
Py_DECREF(_const);
o = PyString_FromString(share_directory.c_str());
PyObject_SetAttrString(globals, "share_directory", o);
Py_DECREF(o);
Py_DECREF(globals);
PyObject * server;
if ((server = Py_InitModule("server", server_methods)) == NULL) {
fprintf(stderr, "Failed to Create server module\n");
return;
}
dict = PyModule_GetDict(server);
PyObject * dictlist = PyModule_New("dictlist");
PyObject * add_value = (PyObject *)PyObject_NEW(FunctionObject, &dictlist_add_value_type);
PyObject_SetAttrString(dictlist, "add_value", add_value);
Py_DECREF(add_value);
PyObject * remove_value = (PyObject *)PyObject_NEW(FunctionObject, &dictlist_remove_value_type);
PyObject_SetAttrString(dictlist, "remove_value", remove_value);
Py_DECREF(remove_value);
PyDict_SetItemString(dict, "dictlist", dictlist);
Py_DECREF(dictlist);
PyRun_SimpleString("from hooks import ruleset_import_hooks\n");
PyRun_SimpleString((char *)importCmd.c_str());
// std::cout << Py_GetPath() << std::endl << std::flush;
}
void shutdown_python_api()
{
Py_Finalize();
}