我正在Cygwin下加载dll ctypes以下内容:
import ctypes
ctypes.cdll.LoadLibrary('foo.dll')
我怎样才能获得dll的绝对路径?
问题是我绝对没有dll所在的线索。我是否可以通过以下方式获取此信息?
subprocess.Popen(["which", lib], stdout=subprocess.PIPE).stdout.read().strip()
答案 0 :(得分:3)
在Unix中,可以通过使用库中符号的地址(例如函数)调用dladdr来确定加载的共享库的路径。
示例:
import ctypes
import ctypes.util
libdl = ctypes.CDLL(ctypes.util.find_library('dl'))
class Dl_info(ctypes.Structure):
_fields_ = (('dli_fname', ctypes.c_char_p),
('dli_fbase', ctypes.c_void_p),
('dli_sname', ctypes.c_char_p),
('dli_saddr', ctypes.c_void_p))
libdl.dladdr.argtypes = (ctypes.c_void_p, ctypes.POINTER(Dl_info))
if __name__ == '__main__':
import sys
info = Dl_info()
result = libdl.dladdr(libdl.dladdr, ctypes.byref(info))
if result and info.dli_fname:
libdl_path = info.dli_fname.decode(sys.getfilesystemencoding())
else:
libdl_path = u'Not Found'
print(u'libdl path: %s' % libdl_path)
<强>输出:
libdl path: /lib/x86_64-linux-gnu/libdl.so.2