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Here is my function

def f(task_list):
    results = []
    for task_id in task_list:
        results.append(work(task_id))
        print len(results) # show the progress
    return results

I use execfile() in ipython to run this function, but it seems that the progress is showed until the whole function ends

======================= I tried again, it seems okay now...

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what about when you run it outside ipython? –  Eli Bendersky May 2 '11 at 8:02
    
Works fine for me (I defined work() by sleep(1)). What is stdout connected to for your process? A terminal or a file? What's your platform? –  Sven Marnach May 2 '11 at 8:03
    
stdout is the terminal, it works fine now. Thank you for helping –  zjk May 2 '11 at 8:09

2 Answers 2

up vote 0 down vote accepted

try to force to flush stdout :

import sys
def f(task_list):
    results = []
    for task_id in task_list:
        results.append(work(task_id))
        print len(results) # show the progress
        sys.stdout.flush()  # this will force the system to display what is in the stdout queue
    return results
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2  
print without a trailing comma implicitly flushes stdout. –  Sven Marnach May 2 '11 at 8:10

In python interpreter one can turn off the buffering of the output using -u option (this option has different meaning in ipython though).

Just call your script like

python -u script.py

You can place the option in the script.py itself:

#!/usr/bin/python -u
# -*- coding: UTF-8 -*-

import os
...

Hope it will work :-)

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