3

I'm working on my python script to work out the duration times between start date and end date format like 20140520160000 and 20140520170000 so I can get the hour.

I'm having a trouble with this code:

if epgDuration >= 0.10 and epgDuration <= 0.30:
   epgwidth = "250"

I get an error when I'm trying to compare the range of the times between 0.10 mins and 0.30 mins.

The error I get is: TypeError: can't compare datetime.timedelta to float.

The error are jumping on this line:

if epgDuration >= 0.10 and epgDuration <= 0.30:

Here is the results:

14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 2:30:00
14:44:55 T:1580  NOTICE: 3:00:00
14:44:55 T:1580  NOTICE: 1:00:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 1:00:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00
14:44:55 T:1580  NOTICE: 0:30:00

Here is the code when I use to duration the times:

for row in programs:
    program_startdate = str(row[2])
    program_endDate = str(row[3])

    try:
       start_date = datetime.datetime.strptime(program_startdate, "%Y%m%d%H%M%S")
       end_date = datetime.datetime.strptime(program_endDate, "%Y%m%d%H%M%S")
    except TypeError:
       start_date = datetime.datetime.fromtimestamp(time.mktime(time.strptime(program_startdate, "%Y%m%d%H%M%S")))
       end_date = datetime.datetime.fromtimestamp(time.mktime(time.strptime(program_endDate, "%Y%m%d%H%M%S")))

    #workout the duration times to get the program time
    epgDuration = end_date - start_date

    if epgDuration >= 0.10 and epgDuration <= 0.30:
       epgwidth = "250"

    elif epgDuration >= 1.00 and epgDuration <= 1.29:
         epgwidth = "500"
    print epgwidth
  • What do you actually mean by 0.10 mins and 0.30 mins here? I think you really mean 10 minutes and 30 minutes here, not 6 and 18 seconds. – Martijn Pieters Sep 7 '14 at 22:46
  • @MartijnPieters yes you are correct. Can you help me how I can use print epgwidth outside of the if statements?? – user3757279 Sep 7 '14 at 23:40
  • I updated my answer to reflect what I think you are trying to achieve instead. It help if you updated your question with such details. – Martijn Pieters Sep 7 '14 at 23:45
8

Indeed, you cannot compare a timedelta to a float value.

You can convert the object to seconds:

if 600 <= epgDuration.total_seconds() <= 1800:

where 10 minutes is 600 seconds, and 30 minutes is 1800.

Or create new timedelta() objects to compare against:

epgwidth = "0"

if timedelta(minutes=10) <= epgDuration <= timedelta(minutes=30):
    epgwidth = "250"

elif timedelta(hours=1) <= epgDuration <= timedelta(hours=1.5):
    epgwidth = "500"

I've given epgwidth a default value before the if statements for the case where the time difference is not falling in the 10-30 minutes or 1-1.5 hour ranges.

  • Thank you very much, I have got a problem with print epgwidth outside of the if statement. I get an error UnboundLocalError: local variable 'epgwidth' referenced before assignment. I want to get the variable outside of the if statement to print epgwidth. – user3757279 Sep 7 '14 at 21:05
  • @user3757279: then neither range matched; you'll need to return a default value for epgwidth in that case. – Martijn Pieters Sep 7 '14 at 21:36
  • I don't understand what you mean? i want to print the epgwidth outside of if statement, so how i can fix that? – user3757279 Sep 7 '14 at 21:46
  • Your epgDuration value fits neither range; perhaps it is 0.5 minute long for example. In that case no epgwidth is set. Either add more cases or assign a default value before the ifstatements. – Martijn Pieters Sep 7 '14 at 22:16
  • well i want to check if epgDuration value is between 1.00 and 1.30 then set the epgwidth value. Can you help me to fix the error that I'm getting to allow me to print epgwidth outside of the if statements? – user3757279 Sep 7 '14 at 23:42
1

To get number-of-minutes from a timedetla object, you can use total_seconds() and divide by 60:

epgDurationMin = epgDuration.total_seconds()/60.
if 0.10 <= epgDurationMin <= 0.30:
   ...

Also note you can use python's cool comparison-chaining (e.g. a <= b <= c)

  • i have try it but it is not working. Bad answer there! – user3757279 Sep 7 '14 at 21:10

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