Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have to get event from COM API which has description:

HRESULT OnStatusMessage(
    [in] IDispatch* pStatusMessage
);

And IStatusMessage has properties: BSTR Description, LONG Code, etc.

My code doesn't work:

import msvcrt
import pythoncom
from win32com.client import DispatchWithEvents

class evt(object):
    def OnConnectionLost(self):
        print 'method ConnectionLost'
    def OnStatusMessage(self, s):
        print 'method OnStatusMessage: '  + str(s.Description)
    def OnLogin(self, l):
        print 'method OnLogin:', l
    def OnMessage(self, msg):
    print 'method OnMessage'


session = DispatchWithEvents("NiApi.SrvrSession", evt)
# login settings....

session.Connect()

while 1:
    if msvcrt.kbhit():
    msvcrt.getch()
        session.Disconnect()
        break
    pythoncom.PumpWaitingMessages()

Module fails with traceback:

Traceback (most recent call last):
  File "C:\Python\AP_272\lib\site-packages\win32com\server\policy.py", line 277, in     _Invoke_
    return self._invoke_(dispid, lcid, wFlags, args)
  File "C:\Python\AP_272\lib\site-packages\win32com\server\policy.py", line 282, in _invoke_
    return S_OK, -1, self._invokeex_(dispid, lcid, wFlags, args, None, None)
  File "C:\Python\AP_272\lib\site-packages\win32com\server\policy.py", line 585, in _invokeex_
    return func(*args)
  File "d:\niapi.py", line 13, in OnStatusMessage
    print 'method OnStatusMessage' + str(s.Description)
AttributeError: 'PyIDispatch' object has no attribute 'Description'
pythoncom error: Python error invoking COM method.

Why i cant get this attribute?

share|improve this question

1 Answer 1

When I write this question "Google" (helps me):

Need to dispatch this object:

message = Dispatch(s)
print 'method OnStatusMessage', str(message.Description)

Yikes! It works! )

P.S. Don't forget to import Dispatch

from win32com.client import Dispatch
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.