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I am having an issue keeping values associated with their counterparts during certain parts of this code. I am trying to only print out the ticket code with the lowest priority. The first issue I had was that when someone does not enter a priority it defaults to "None". So after i filtered that out I wanted to put the remaining data into a list and then grab the min priority from that list and print it along with its ticket code.

The data set looks like :

ticket    ticket code                 ticket priority
100_400   100_400 ticket description        None
100_400   100_400 ticket description         5
100_400   100_400 ticket description         1
100_400   100_400 ticket description         2
100_400   100_400 ticket description         4
100_400   100_400 ticket description         3

So currently this is what my code looks like:

result = set()   
for ticket in tickets:
# to get rid of the "None" priorities
    if ticket.priority != '<pirority range>':
        print ""
    else:
        #this is where i need help keeping the priority and the ticket.code together
        result.add(ticket.priority)

print min(result) 
print ticket.code
share|improve this question
    
What is ticket? Is it instance of some class? –  alexvassel Dec 12 '12 at 14:14
    
What should happen if 2 tickets have the same priority? Should that be impossible? What if all the tickets you get are None? –  Silas Ray Dec 12 '12 at 14:18
    
It is possible to get two tickets of the same priority and if all tickets are none i have it to print "there are no ticket descriptions with priority set for this ticket" –  Sjadow Dec 12 '12 at 14:30

2 Answers 2

up vote 2 down vote accepted

Add the entire ticket to your result list rather than just the priority, and then implement your own min function. Also, depending on the rest of your application, considering using a different structure than set for result?

# this computes the minimum priority of a ticket
def ticketMin (list):
    min = list[0]
    for ticket in list:
        if (ticket.priority < min.priority):
            min = ticket
    return min

# changed set to list
result = list()   
for ticket in tickets:
# to get rid of the "None" priorities
    if ticket.priority != '<pirority range>':
        print ""
    else:
        #notice the change below
        result.append(ticket)

# changed 'min' to 'ticketMin'
minTicket = ticketMin(result)

print minTicket.priority
print minTicket.code

Alternatively, you could save a few lines and use the built in function with a Lambda, as Oscar illustrated in the comments:

# changed set to list
result = list()   
for ticket in tickets:
# to get rid of the "None" priorities
    if ticket.priority != '<pirority range>':
        print ""
    else:
        #notice the change below
        result.append(ticket)

# Oscar's solution:
minTicket = min(result, key=lambda val : val.priority)

print minTicket.priority
print minTicket.code
share|improve this answer
    
This solution reinvents the wheel by defining a ticketMin function, the practical approach here would be to use the min built-in function, like in my answer –  Óscar López Dec 12 '12 at 16:09
    
@ÓscarLópez I updated my answer per your suggestion. –  weberc2 Dec 12 '12 at 16:18

Add tickets to the result set, not their priorities. Then find the ticket with the minimum priority among those in the set, like this:

minTicket = min(result, key=lambda x : x.priority)
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