60

The IPython %timeit magic command does its job well for measuring time required to run some Python code. Now, I want to use something analogous in the Python script. I know about the timeit module, however, it has several disadvantages, for example, how to select the number of runs adaptively? i.e., the default code

import timeit
t=timeit.Timer("code(f)", "from __main__ import code,f")
t.timeit() 

runs the code million times. The %timeit IPyhton magic command does it automatically. I suggest that I could use something like the MATLAB code http://www.mathworks.com/matlabcentral/fileexchange/18798

that does all the job automatically (and also tells if the overhead of the function is large).

How can I call %timeit magic from a Python script (or maybe there is a better timing solution) ?

3
  • 9
    If you make it an IPython script (*.ipy), then all of the IPython syntax will be available, and you can just do %timeit foo as you normally would.
    – minrk
    Apr 28, 2012 at 17:50
  • 1
    Thank you, it is a good suggestion. But I use this in an org-mode file, and I thinks it knows only about python yet :) Apr 29, 2012 at 12:38
  • More on @minrk's suggestion: stackoverflow.com/questions/11782744/…
    – flow2k
    Jun 27, 2019 at 7:31

5 Answers 5

81

It depends a bit on which version of IPython you have. If you have 1.x:

from IPython import get_ipython
ipython = get_ipython()

If you have an older version:

import IPython.core.ipapi  
ipython = IPython.core.ipapi.get()

or

import IPython.ipapi  
ipython = IPython.ipapi.get()

Once that's done, run a magic command like this:

ipython.magic("timeit abs(-42)")

Note that the script must be run via ipython.

5
  • 2
    This works for IPython 1.x: from IPython import get_ipython ipython = get_ipython() Feb 6, 2014 at 9:14
  • 1
    @suzanshakya get_ipython() seems to return None in an instance that previously worked. mind pointing to an example?
    – badgley
    Feb 27, 2014 at 23:52
  • 2
    @GBadge You need to run the script with ipython not python. Eg github.com/suzanshakya/cython_forloop Feb 28, 2014 at 6:43
  • You don't by any chance know how to do this to be able to reach the same context? In specific, I would like to be able to call upon prun and profile an imported function.
    – metakermit
    Oct 16, 2014 at 21:38
  • 5
    Note, the magic() method is now deprecated. Use run_line_magic() instead. Also check out run_cell_magic()
    – nealmcb
    Jun 8, 2019 at 18:09
7

Both IPython and the timeit module, when called with python -m timeit, execute the same loop with a growing value of number until the timing result surpasses a certain threshold that guarantees the time measurement is mostly free of operating system interferences.

You can compare the IPython implementation of the %timeit magic with the Python timeit standard module to see that they are doing mostly the same.

So, answering your question, you should probably replicate the same loop until you find the correct value for the number parameter.

1
  • Ok, I can just copy the "main" part of the timeit module. Wonder why it is not included in the library. Apr 29, 2012 at 13:28
3

The following works if one runs the Python script interactively in IPython. E.g., test.py:

def f():
    # Algorithm 1
    pass

def g():
    # Algorithm 2
    pass

# which one is faster?
mgc = get_ipython().magic
mgc(u'%timeit f()')
mgc(u'%timeit g()')

Then run it interactively in IPython

%run -i test.py

to spit out the timings. The -i switch is necessary so that the variables are in scope. I have not figured out how to do this without running an IPython instance, i.e., by simply importing timeit from IPython and using it as a function. However, this solution works for my purposes, which is to automate some timing runs.

3

One way to run ipython magic function probably is using embed ipython instance.
For example: (most of the codes are borrowed from ipython website)

from IPython.terminal.embed import InteractiveShellEmbed

ipshell = InteractiveShellEmbed()
ipshell.dummy_mode = True
print('\nTrying to call IPython which is now "dummy":')
ipshell.magic("%timeit abs(-42)");
ipshell()
print('Nothing happened...')

This can work by using python interpreter
PS: using dummy_mode will prevent from invoking interactive shell.

1
  • 1
    from IPython import get_ipython; ipython = get_ipython() is returning "AttributeError: 'NoneType' " on v4.2.0 but this seems to work just fine.
    – J'e
    Aug 28, 2016 at 15:59
3

According to the documentation of the timeit.py module, when timeit is run in command-line mode,

If -n is not given, a suitable number of loops is calculated by trying successive powers of 10 until the total time is at least 0.2 seconds.

This is what IPython does. That is why the number of loops is always a power of 10. You could do something similar in your own code by embedding the call to t.timeit() inside a loop that makes sure you don't wait too long:

import timeit
t = timeit.Timer("code(f)", "from __main__ import code, f")

max_time = 0.2
N = 0
curr_time = t.timeit(1)

while curr_time < max_time:
    N += 1
    curr_time = t.timeit(10**N)

mean_time = curr_time / float(10**N)

This would ensure that the profiling time is at least 0.2 seconds, but not significantly more --- unless calling the function once takes a long time.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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