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How can I determine programmatically if one function calls another function? I cannot modify either function.

Here's what I want (source_calls_target):

>>> def check():
>>>     pass
>>> def test_check():
>>>     check()
>>> def source_calls_target(source, target):
>>>     # if source() calls target() somewhere, return True
>>>     ???
>>> source_calls_target(test_check, check)
True
>>> source_calls_target(check, test_check)
False

Ideally, I do not want to actually call target().

Ideally, I want to check if a call to target() appears within the definition for source. It may or may not actually call it depending on conditional statements.

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4  
How is this relevant to unit testing? Unit testing is about determining behaviour in compliance with a specification. –  Marcin Aug 17 '12 at 21:30
    
@Marcin This checks compliance of test_check with my specification that it must call check(). –  devtk Aug 17 '12 at 21:34
6  
@devtk, this is at best code coverage analysis, not unit testing. Unit testing doesn't care if test_check() calls check() or not. It only deals with the return value and side effects of test_check() being conform to the (current) specification. –  Frédéric Hamidi Aug 17 '12 at 21:37
2  
Are you able to call the functions during source_calls_target, or are you limited to analysing the source code? –  Luke Aug 17 '12 at 21:44
4  
Are you perhaps interested in knowing whether source could call target? (Are you just asking whether target is present somewhere in the code for source?) Or do you really want to know if it will call target? –  Luke Aug 17 '12 at 22:10

5 Answers 5

up vote 4 down vote accepted

If you can guarantee having access to the source code, you can use ast.parse:

import ast
call_names = [c.func.id for c in ast.walk(ast.parse(inspect.getsource(source)))
              if isinstance(x, ast.Call)]
return 'target' in call_names

Note that calls are always by name, so it's difficult (and potentially impossible) to tell whether a call is to a particular function or another of the same name.

In the absence of source code, the only way is via disassembly:

import dis
def ops(code):
    i, n = 0, len(code)
    while i < n:
        op = ord(code[i])
        i += 1
        if op == dis.EXTENDED_ARG:
            ext = ord(code[i]) + ord(code[i+1])*256
            op = ord(code[i + 2])
            i += 3
        else:
            ext = 0
        if op >= dis.HAVE_ARGUMENT:
            arg = ord(code[i]) + ord(code[i+1])*256 + ext*65536
            i += 2
            yield op, arg
        else:
            yield op, None

source_ops = list(ops(source.func_code.co_code))

The problem is that it's in practice impossible to tell whether a function is calling another function or just loading a reference to it; if the other function is passed to map or reduce etc. then it will be called but passed to another function it might not be. Practically the sensible thing is to assume that if the function is in source.func_code.co_names then it might be called:

'target' in source.func_code.co_names
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Thanks! This is the answer I had in mind, just wasn't sure how to implement it. Will give it a shot. –  devtk Aug 17 '12 at 22:30
    
This bombs out if the function is indented. For example, if it's within a class. :/ –  devtk Aug 21 '12 at 23:58
    
@devtk you could use textwrap.dedent to fix that issue. –  ecatmur Aug 22 '12 at 0:17
    
Actually, just inspect.getsource(source).lstrip() should do. –  ecatmur Aug 22 '12 at 0:19

Here's a simple example using sys.settrace(). It does require that the source function be called to work. It is also not guaranteed to work, since in some rare instances, two different functions may share the same code object.

import sys

def check():
    pass

def test_check():
    check()

def source_calls_target(source, target):
    orig_trace = sys.gettrace()
    try:
        tracer = Tracer(target)
        sys.settrace(tracer.trace)
        source()
        return tracer.called
    finally:
        sys.settrace(orig_trace)

class Tracer:
    def __init__(self, target):
        self.target = target
        self.called = False

    def trace(self, frame, event, arg):
        if frame.f_code == self.target.func_code:
            self.called = True

print source_calls_target(test_check, check)
print source_calls_target(check, test_check)
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Does this only tell you if the target was called at some point, but not directly by source? –  jdi Aug 17 '12 at 22:03
    
Correct. If you want to know whether the target was called directly by source, then you could also check that frame.f_back.f_code == self.source.func_code (and you would have to pass source to the Tracer instance). –  Luke Aug 17 '12 at 22:06
    
Very inventive. Thanks :) We'll see if anyone can do it without actually calling the target. –  devtk Aug 17 '12 at 22:06

Probably very ugly way but it works:

import profile

def source_calls_target(source, target):
    pro = profile.Profile()
    pro.run(source.__name__ + '()')
    pro.create_stats()
    return target.__name__ in [ele[2] for ele in pro.stats]
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What happens if you have multiple functions with the same name? –  Luke Aug 17 '12 at 22:01
    
It fails - but as I said, this is ugly solution. –  Konrad Hałas Aug 18 '12 at 11:11

I had been coming up with something that ended up looking very similar to @Luke's good answer. Mine is just a simple function, but it checks if the immediate caller of the target function was the source function:

import sys
from functools import partial

def trace_calls(call_list, frame, event, arg):
    if event != 'call':
        return
    call_list.append(frame.f_code)

def test_call(caller, called):
    traces = []
    old = sys.gettrace()
    sys.settrace(partial(trace_calls, traces))
    try:
        caller()
    finally:
        sys.settrace(old)

    try:
        idx = traces.index(called.func_code)
    except ValueError:
        return False

    if idx and traces[idx-1] == caller.func_code:
        return True

    return False

And testing...

def a():
    b()

def b():
    pass

def c():
    a()


test_call(c,a) #True
test_call(a,b) #True
test_call(c,b) #False
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This post http://stefaanlippens.net/python_inspect will help you

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