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I have a list of timestamps and I want to calculate the mean of the list, but I need to ignore the weekend days which are Saturday and Sunday and consider Friday and Monday as one day. I only want to include the working days from Monday to Friday. This is an example of the list. I wrote the timestamps in readable format to follow the process easily. Example:

['Wed Feb 17 12:57:40 2011', ' Wed Feb 8 12:57:40 2011', 'Tue Jan 25 17:15:35 2011']
MIN='Tue Jan 25 17:15:35 2011'

' Wed Feb 17 12:57:40 2011' , since we have 6 weekend days between this number and the MIN I shift back this number 6days.It will be = 'Fri Feb 11 12:57:40 2011'.

'Wed Feb 8 12:57:40 2011', since we have 4 weekend days between this number and the MIN I shift back this number 4days it will be 'Wed Feb 4 12:57:40 2011'

The new list is now [' Fri Feb 11 12:57:40 2011',' Wed Feb 4 12:57:40 2011',' Tue Jan 25 17:15:35 2011]

MAX= 'Fri Feb 11 12:57:40 2011'

average= (Fri Feb 11 12:57:40 2011 + Wed Feb 4 12:57:40 2011 + Tue Jan 25 17:15:35 2011) /3

difference= MAX - average

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4  
How do you intend to caculate the "mean"? That's usually sum(elements)/number_of_elements, but I'm not quite sure how you add times. –  mgilson Nov 30 '12 at 15:13
    
I can only guess it's some sort of associative array? –  VoronoiPotato Nov 30 '12 at 15:15
2  
Also what have you tried so far. –  Rhs Nov 30 '12 at 15:31
    
jose Antonio, please edit question and say what you think the answer is for your given example. Also supply an answer for this case: `days=['Fri Jan 14 12:12:12 2000', 'Sat Jan 15 12:12:12 2000', 'Sun Jan 16 12:12:12 2000', 'Mon Jan 17 12:12:12 2000'] –  jwpat7 Nov 30 '12 at 15:46
1  
Show your results for the two examples. –  jwpat7 Nov 30 '12 at 16:00

2 Answers 2

up vote 0 down vote accepted

Edit: [Removed previous code, which had an error; replaced with code below.]

Here is some output from code that squeezes out weekends, computes average, and puts weekends back in to get an apparently valid average. The code is shown after the output from some test cases.

['Fri Jan 13 12:00:00 2012', 'Mon Jan 16 11:00:00 2012']
Average =  Fri Jan 13 23:30:00 2012
['Fri Jan 13 12:00:00 2012', 'Mon Jan 16 13:00:00 2012']
Average =  Mon Jan 16 00:30:00 2012
['Fri Jan 13 14:17:58 2012', 'Sat Jan 14 1:2:3 2012', 'Sun Jan 15 4:5:6 2012', 'Mon Jan 16 11:03:29 2012', 'Wed Jan 18 14:27:17 2012', 'Mon Jan 23 10:02:12 2012', 'Mon Jan 30 10:02:12 2012']
Average =  Thu Jan 19 16:46:37 2012
['Fri Jan 14 14:17:58 2011', 'Mon Jan 17 11:03:29 2011', 'Wed Jan 19 14:27:17 2011', 'Mon Jan 24 10:02:12 2011']
Average =  Wed Jan 19 00:27:44 2011

Python code:

from time import strptime, mktime, localtime, asctime
from math import floor

def averageBusinessDay (dates):
    f = [mktime(strptime(x)) for x in dates]
    h = [x for x in f if localtime(x).tm_wday < 5]  # Get rid of weekend days
    bweek, cweek, dweek = 3600*24*5, 3600*24*7, 3600*24*2    
    e = localtime(h[0])  # Get struct_time for first item
    # fm is first Monday in local time
    fm = mktime((e.tm_year, e.tm_mon, e.tm_mday-e.tm_wday, 0,0,0,0,0,0))
    i = [x-fm for x in h]  # Subtract leading Monday
    j = [x-floor(x/cweek)*dweek for x in i]  # Squeeze out weekends
    avx = sum(j)/len(j)
    avt = asctime(localtime(avx+floor(avx/bweek)*dweek+fm))
    return avt

def atest(dates):
    print dates
    print 'Average = ', averageBusinessDay (dates)

atest(['Fri Jan 13 12:00:00 2012', 'Mon Jan 16 11:00:00 2012'])
atest(['Fri Jan 13 12:00:00 2012', 'Mon Jan 16 13:00:00 2012'])
atest(['Fri Jan 13 14:17:58 2012', 'Sat Jan 14 1:2:3 2012', 'Sun Jan 15 4:5:6 2012', 'Mon Jan 16 11:03:29 2012', 'Wed Jan 18 14:27:17 2012', 'Mon Jan 23 10:02:12 2012', 'Mon Jan 30 10:02:12 2012'])
atest(['Fri Jan 14 14:17:58 2011', 'Mon Jan 17 11:03:29 2011', 'Wed Jan 19 14:27:17 2011', 'Mon Jan 24 10:02:12 2011'])
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Thank you very very much. It was very helpful with me. But still I am facing the same problem with weekends.Is there any way to consider the interval from Friday midnight to Sunday midnight as being of zero length. This is what I really want. Thank you very much again and I am looking forward to receive from you useful hints on how to do that. –  jose Antonio Nov 30 '12 at 17:03
    
Sorry for this, sue I will accept it and I did –  jose Antonio Nov 30 '12 at 17:15
    
Replaced old code with new code to squeeze out weekends, compute average, and put weekends back in –  jwpat7 Nov 30 '12 at 18:52
    
Many thanks for you, It is an excellent job you are very professional it is very hard coded with respect to my knowledge. But, when I tried to test it using several examples I see something strange in the output. Does the code ignore weekends during the calculation when I have several weeks, like this example ['Thu Dec 1 09:02:00 2011', 'Tue Dec 20 09:45:56 2011']. When I took the max here and subtract it from the average take from your code the output should be smaller than when including weekends but I see the opposite output. If I am missing something please correct me –  jose Antonio Nov 30 '12 at 21:16
    
For that input it shows 'Fri Dec 9 21:23:58 2011' which I regard as right. For a simpler case, averageBusinessDay (['Thu Dec 1 00:00:00 2011', 'Tue Dec 20 00:00:00 2011']) for a total included time range of 13 business days shows 'Fri Dec 9 12:00:00 2011', which is 6.5 business days from either end. What value do you think it should be? –  jwpat7 Nov 30 '12 at 21:34

Split the strings based on ' ', take the first element and if it's not saturday or sunday, it's a weekday. Now I need to know what you mean by the "mean" of a list of dates.

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Thank you very much for your quick reply. I need to calculate the middle point which is equal to the sum divide by count –  jose Antonio Nov 30 '12 at 15:38
    
I converted the timestamps into epoch format and it is easy to calculate the mean=Sum/count. The the problem here it includes the weekend days.I want to exclude the weekend days during the mean calculation and consider Friday and Monday as 1 day –  jose Antonio Nov 30 '12 at 15:53

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