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I'm currently using the following to compute the difference in two times. The out - in is very fast and thus I do not need to display the hour and minutes which are just 0.00 anyway. How do I actually shift the decimal place in Python?

def time_deltas(infile): 
    entries = (line.split() for line in open(INFILE, "r")) 
    ts = {}  
    for e in entries: 
        if " ".join(e[2:5]) == "OuchMsg out: [O]": 
            ts[e[8]] = e[0]    
        elif " ".join(e[2:5]) == "OuchMsg in: [A]":    
            in_ts, ref_id = e[0], e[7] 
            out_ts = ts.pop(ref_id, None) 
            yield (float(out_ts),ref_id[1:-1], "%.10f"%(float(in_ts) - float(out_ts)))

INFILE = 'C:/Users/kdalton/Documents/Minifile.txt'
print list(time_deltas(INFILE))
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up vote 9 down vote accepted

The same way you do in math

a = 0.01;
a *= 10; // shifts decimal place right
a /= 10.; // shifts decimal place left
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2  
Watch for the integer division. If a is an integer, this may leave some scratching their heads. Perhaps change the last line to a /= 10.. – Tyler Crompton Dec 2 '11 at 21:24
    
Good call. Thanks :) – arasmussen Dec 2 '11 at 21:26
    
Thanks! so true...I guess I was making it more complicated than it should have been :D – eunhealee Dec 2 '11 at 21:51
    
As an addition to what @TylerCrompton correctly said about the integer division. As a standard (whatever I intend to do), I always have from __future__ import division at the top of my script. That way I've saved myself a lot of head scratching.. :) (oh, and by the way, this has been solved in Python3). – kramer65 Feb 11 '14 at 11:06
    
Those operations are not inverse to each other, as you would expect from binary shift operators (<<,>>), due to rounding errors. – Heinrich Hartmann Dec 1 '15 at 9:37

or use the datetime module

>>> import datetime
>>> a = datetime.datetime.strptime("30 Nov 11 0.00.00", "%d %b %y %H.%M.%S")
>>> b = datetime.datetime.strptime("2 Dec 11 0.00.00", "%d %b %y %H.%M.%S")
>>> a - b
datetime.timedelta(-2)
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