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In Python, how can I print the current call stack from within a method (for debugging purposes).

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4 Answers 4

up vote 125 down vote accepted

Here's an example of getting the stack via the traceback module, and printing it:

import traceback

def f():

def g():
    for line in traceback.format_stack():


# Prints:
# File "", line 10, in <module>
#     f()
# File "", line 4, in f
#     g()
# File "", line 7, in g
#     for line in traceback.format_stack():

If you really only want to print the stack to stderr, you can use:


Or to print to stdout (useful if want to keep redirected output together), use:


But getting it via traceback.format_stack() lets you do whatever you like with it.

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As a string: stack_str = ''.join(traceback.format_stack()) – scottmrogowski Jan 30 '14 at 0:27
import traceback
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Actually, I like traceback.print_exc() which gives you almost the same thing you would have gotten without the except statement (and is also less coding than the accepted answer). – martineau Nov 4 '10 at 19:23
traceback.print_exc() prints the stack trace for any exception that you might be handling - but this does not solve the original question, which is how to print the current stack ("where you are now" as opposed to "where your code was when the last exception went off, if any".) – Tom Swirly Feb 27 '13 at 22:42

inspect.stack() returns the current stack rather than the exception traceback:

import inspect
print inspect.stack()

See for a log_stack utility function.

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I like to have just the function calls saved into a global string call_stack

import traceback

call_stack = ''

def save_call_stack():
    global call_stack
    call_stack = ''
    for i in range(len(s)-1):
        l = s[i]
        call_stack += l[l.find('\n')+1:-1]
    call_stack = call_stack.strip()
    # cut to 253 characters (optional)
    if len(call_stack)>250:
        call_stack = '...' + call_stack[-250:]
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