/* * nextpnr -- Next Generation Place and Route * * Copyright (C) 2018 Clifford Wolf * Copyright (C) 2018 David Shah * * Permission to use, copy, modify, and/or distribute this software for any * purpose with or without fee is hereby granted, provided that the above * copyright notice and this permission notice appear in all copies. * * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. * */ #ifndef NO_PYTHON #include "pybindings.h" #include "arch_pybindings.h" #include "jsonparse.h" #include "log.h" #include "nextpnr.h" #include #include #include #include NEXTPNR_NAMESPACE_BEGIN // Required to determine concatenated module name (which differs for different // archs) #define PASTER(x, y) x##_##y #define EVALUATOR(x, y) PASTER(x, y) #define MODULE_NAME EVALUATOR(nextpnrpy, ARCHNAME) #define PYINIT_MODULE_NAME EVALUATOR(&PyInit_nextpnrpy, ARCHNAME) #define STRINGIFY(x) #x #define TOSTRING(x) STRINGIFY(x) // Architecture-specific bindings should be created in the below function, which // must be implemented in all architectures void arch_wrap_python(); bool operator==(const PortRef &a, const PortRef &b) { return (a.cell == b.cell) && (a.port == b.port); } // Load a JSON file into a design void parse_json_shim(std::string filename, Context &d) { std::ifstream inf(filename); if (!inf) throw std::runtime_error("failed to open file " + filename); parse_json_file(inf, filename, &d); } // Create a new Chip and load design from json file Context *load_design_shim(std::string filename, ArchArgs args) { Context *d = new Context(args); parse_json_shim(filename, *d); return d; } void translate_assertfail(const assertion_failure &e) { // Use the Python 'C' API to set up an exception object PyErr_SetString(PyExc_AssertionError, e.what()); } namespace PythonConversion { template <> struct string_converter { inline PortRef from_str(Context *ctx, std::string name) { NPNR_ASSERT_FALSE("PortRef from_str not implemented"); } inline std::string to_str(Context *ctx, const PortRef &pr) { return pr.cell->name.str(ctx) + "." + pr.port.str(ctx); } }; } // namespace PythonConversion BOOST_PYTHON_MODULE(MODULE_NAME) { register_exception_translator(&translate_assertfail); using namespace PythonConversion; enum_("GraphicElementType") .value("TYPE_NONE", GraphicElement::TYPE_NONE) .value("TYPE_LINE", GraphicElement::TYPE_LINE) .value("TYPE_ARROW", GraphicElement::TYPE_ARROW) .value("TYPE_BOX", GraphicElement::TYPE_BOX) .value("TYPE_CIRCLE", GraphicElement::TYPE_CIRCLE) .value("TYPE_LABEL", GraphicElement::TYPE_LABEL) .export_values(); enum_("GraphicElementStyle") .value("STYLE_GRID", GraphicElement::STYLE_GRID) .value("STYLE_FRAME", GraphicElement::STYLE_FRAME) .value("STYLE_HIDDEN", GraphicElement::STYLE_HIDDEN) .value("STYLE_INACTIVE", GraphicElement::STYLE_INACTIVE) .value("STYLE_ACTIVE", GraphicElement::STYLE_ACTIVE) .export_values(); class_("GraphicElement") .def(init( (args("type"), "style", "x1", "y1", "x2", "y2", "z"))) .def_readwrite("type", &GraphicElement::type) .def_readwrite("x1", &GraphicElement::x1) .def_readwrite("y1", &GraphicElement::y1) .def_readwrite("x2", &GraphicElement::x2) .def_readwrite("y2", &GraphicElement::y2) .def_readwrite("text", &GraphicElement::text); enum_("PortType") .value("PORT_IN", PORT_IN) .value("PORT_OUT", PORT_OUT) .value("PORT_INOUT", PORT_INOUT) .export_values(); typedef std::unordered_map AttrMap; typedef std::unordered_map PortMap; typedef std::unordered_map PinMap; typedef std::unordered_map> RegionMap; class_("BaseCtx", no_init); auto loc_cls = class_("Loc") .def(init()) .def_readwrite("x", &Loc::x) .def_readwrite("y", &Loc::y) .def_readwrite("z", &Loc::z); auto ci_cls = class_>("CellInfo", no_init); readwrite_wrapper, conv_from_str>::def_wrap(ci_cls, "name"); readwrite_wrapper, conv_from_str>::def_wrap(ci_cls, "type"); readonly_wrapper>::def_wrap( ci_cls, "attrs"); readonly_wrapper>::def_wrap( ci_cls, "params"); readonly_wrapper>::def_wrap( ci_cls, "ports"); readwrite_wrapper, conv_from_str>::def_wrap(ci_cls, "bel"); readwrite_wrapper, pass_through>::def_wrap(ci_cls, "belStrength"); readonly_wrapper>::def_wrap(ci_cls, "pins"); auto pi_cls = class_>("PortInfo", no_init); readwrite_wrapper, conv_from_str>::def_wrap(pi_cls, "name"); readonly_wrapper>::def_wrap(pi_cls, "net"); readwrite_wrapper, pass_through>::def_wrap(pi_cls, "type"); typedef std::vector PortRefVector; typedef std::unordered_map WireMap; typedef std::unordered_set BelSet; typedef std::unordered_set WireSet; auto ni_cls = class_>("NetInfo", no_init); readwrite_wrapper, conv_from_str>::def_wrap(ni_cls, "name"); readwrite_wrapper, unwrap_context>::def_wrap(ni_cls, "driver"); readonly_wrapper>::def_wrap( ni_cls, "users"); readonly_wrapper>::def_wrap(ni_cls, "wires"); auto pr_cls = class_>("PortRef", no_init); readonly_wrapper>::def_wrap(pr_cls, "cell"); readwrite_wrapper, conv_from_str>::def_wrap(pr_cls, "port"); readwrite_wrapper, pass_through>::def_wrap(pr_cls, "budget"); auto pm_cls = class_>("PipMap", no_init); readwrite_wrapper, conv_from_str>::def_wrap(pm_cls, "pip"); readwrite_wrapper, pass_through>::def_wrap(pm_cls, "strength"); def("parse_json", parse_json_shim); def("load_design", load_design_shim, return_value_policy()); auto region_cls = class_>("Region", no_init); readwrite_wrapper, conv_from_str>::def_wrap(region_cls, "name"); readwrite_wrapper, pass_through>::def_wrap(region_cls, "constr_bels"); readwrite_wrapper, pass_through>::def_wrap(region_cls, "constr_bels"); readwrite_wrapper, pass_through>::def_wrap(region_cls, "constr_pips"); readonly_wrapper>::def_wrap(region_cls, "bels"); readonly_wrapper>::def_wrap(region_cls, "wires"); WRAP_MAP(AttrMap, pass_through, "AttrMap"); WRAP_MAP(PortMap, wrap_context, "PortMap"); WRAP_MAP(PinMap, conv_to_str, "PinMap"); WRAP_MAP(WireMap, wrap_context, "WireMap"); WRAP_MAP_UPTR(RegionMap, "RegionMap"); WRAP_VECTOR(PortRefVector, wrap_context); arch_wrap_python(); } #ifdef MAIN_EXECUTABLE static wchar_t *program; #endif void init_python(const char *executable, bool first) { #ifdef MAIN_EXECUTABLE program = Py_DecodeLocale(executable, NULL); if (program == NULL) { fprintf(stderr, "Fatal error: cannot decode executable filename\n"); exit(1); } try { if (first) PyImport_AppendInittab(TOSTRING(MODULE_NAME), PYINIT_MODULE_NAME); Py_SetProgramName(program); Py_Initialize(); // Add cwd to Python's search path so `import` can be used in user scripts boost::filesystem::path cwd = boost::filesystem::absolute("./").normalize(); PyObject *sys_path = PySys_GetObject("path"); PyList_Insert(sys_path, 0, PyUnicode_FromString(cwd.string().c_str())); PyImport_ImportModule(TOSTRING(MODULE_NAME)); PyRun_SimpleString("from " TOSTRING(MODULE_NAME) " import *"); } catch (boost::python::error_already_set const &) { // Parse and output the exception std::string perror_str = parse_python_exception(); std::cout << "Error in Python: " << perror_str << std::endl; } signal(SIGINT, SIG_DFL); #endif } void deinit_python() { #ifdef MAIN_EXECUTABLE Py_Finalize(); PyMem_RawFree(program); #endif } void execute_python_file(const char *python_file) { try { FILE *fp = fopen(python_file, "r"); if (fp == NULL) { fprintf(stderr, "Fatal error: file not found %s\n", python_file); exit(1); } int result = PyRun_SimpleFile(fp, python_file); fclose(fp); if (result == -1) { log_error("Error occurred while executing Python script %s\n", python_file); } } catch (boost::python::error_already_set const &) { // Parse and output the exception std::string perror_str = parse_python_exception(); log_error("Error in Python: %s\n", perror_str.c_str()); } } NEXTPNR_NAMESPACE_END #endif // NO_PYTHON