65

I need to get the caller info (what file/what line) from callee. I learned that I can use inpect module for that for purposes, but not exactly how.

How to get those info with inspect? Or is there any other way to get the info?

import inspect

print __file__
c=inspect.currentframe()
print c.f_lineno

def hello():
    print inspect.stack
    ?? what file called me in what line?

hello()
78

The caller's frame is one frame higher than the current frame. You can use inspect.currentframe().f_back to find the caller's frame. Then use inspect.getframeinfo to get the caller's filename and line number.

import inspect

def hello():
    previous_frame = inspect.currentframe().f_back
    (filename, line_number, 
     function_name, lines, index) = inspect.getframeinfo(previous_frame)
    return (filename, line_number, function_name, lines, index)

print(hello())

# (<frame object at 0x8ba7254>, '/home/unutbu/pybin/test.py', 10, '<module>', ['hello()\n'], 0)
  • thanks for the answer. How can I get the caller's caller? – prosseek Sep 14 '10 at 17:31
  • 5
    @prosseek: To get the caller's caller, just change the index [1] to [2]. (inspect.getouterframes returns a list of frames...). Python is beautifully organized. – unutbu Sep 14 '10 at 17:38
  • 3
    You can also use inspect.currentframe().f_back. – yoyo Jul 29 '15 at 16:26
  • 2
    @JasonS: "the filename in the stack frame is relative to the start up directory of the application". – unutbu Sep 2 '16 at 19:06
  • 1
    This code sample works but performs pretty poorly. If you're only interested in a single frame and not the whole stack trace, you can get the previous frame and inspect it for the frame info: filename, line_number, clsname, lines, index = inspect.getframeinfo(sys._getframe(1)) – Mouscellaneous Sep 28 '17 at 11:21
40

I would suggest to use inspect.stack instead:

import inspect

def hello():
    frame,filename,line_number,function_name,lines,index = inspect.stack()[1]
    print(frame,filename,line_number,function_name,lines,index)
hello()
  • How is it better than using getouterframes as suggested by @unutbu? – ixe013 Sep 4 '14 at 3:02
  • 8
    It is more compact and better reflects the intent. – Dmitry K. Sep 4 '14 at 8:40
  • Note that getouterframes(currentframe()) and stack() are equivalent under the hood github.com/python/cpython/blob/master/Lib/inspect.py#L1442 – ubershmekel May 12 '16 at 21:14
  • 1
    Another reason using stack() is nice is that it shows how to easily get other frames. If, for example. your hello() function is called by another function first, you can update it to go two levels back. – Charles Plager May 3 '18 at 18:02
1

I published a wrapper for inspect with simple stackframe addressing covering the stack frame by a single parameter spos:

E.g. pysourceinfo.PySourceInfo.getCallerLinenumber(spos=1)

where spos=0 is the lib-function, spos=1 is the caller, spos=2 the caller-of-the-caller, etc.

-4

If the caller is the main file, simply use sys.argv[0]

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