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I have a list of tuples, for example.

[('ABC', 'Abcair', 1.50), ('DEF', 'Defir', 5.60), ('GHI', 'Ghiair',3.22), ('ANZ', 'Anzplace', 26.25), ('ARG', 'Argair', 12.22), ('CEN', 'Cenair', 11.22), ('CNU', 'Cununun',3.01)]

I have an input command as such

code_input = input('Please list portfolio: ').upper()

Where a person will input any number of 3 letter codes separated by a comma, which I then format using

no_spaces_codes = code_input.replace(" ", "")
code_list = no_spaces_codes.split(",")

So, "Ank , ABc,DEF" becomes ['ANK', 'ABC', 'DEF']

Then I print these headings formatted

header="{0:<6}{1:<20}{2:>8}".format("Code","Place","Number")
print(header)

I then need to search the list of tuples for the 3 letter codes and print the values under the headings formatted the same way eg and codes not in the list will not be printed.

Code  Name                   Price
ABC   Abcair                  5.30
DEF   Defair                 11.22

I have gotten this far.

for code in b:
    if code[0] == (code_list[1]):
        print(code[:])
        break

Which prints

Code  Name                   Price
('CEN', 'Contact', 11.22)

But I cannot get any further than this.

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2 Answers 2

You can do that with:

place, price = next((c[1:] for c in b if c[0] == code_input), ('Not found', 0))

but you really want to use a dictionary instead:

code_dict = {k: (v, p) for k, v, p in b}

after which matching becomes a simple lookup:

place, price = code_dict.get(code_input, ('Not found', 0))

Demonstration:

>>> b = [('ABC', 'Abcair', 1.50), ('DEF', 'Defir', 5.60), ('GHI', 'Ghiair',3.22), ('ANZ', 'Anzplace', 26.25), ('ARG', 'Argair', 12.22), ('CEN', 'Cenair', 11.22), ('CNU', 'Cununun',3.01)]
>>> code_input = 'CEN'
>>> place, price = next((c[1:] for c in b if c[0] == code_input), ('Not found', 0))
>>> print code_input, place, price
CEN Cenair 11.22
>>> code_dict = {k: (v, p) for k, v, p in b}
>>> place, price = code_dict.get(code_input, ('Not found', 0))
>>> print code_input, place, price
CEN Cenair 11.22

With the code_dict mapping, lookups will be much, much faster when doing multiple lookups, especially when there are non-existing entries in the list. To put this together with the rest of your code:

code_input = input('Please list portfolio: ').upper()
code_dict = {k: (v, p) for k, v, p in b}

line="{0:<6}{1:<20}{2:>8}"
print line.format("Code", "Place", "Number")

for code in code_input.split(','):
    code = code.strip()
    if code not in code_dict:
        continue  # skip codes not in the mapping
    place, price = code_dict[code]
    print line.format(code, place, price)

Which for your "Ank , ABc,DEF" input would print:

Code  Place                 Number
ABC   Abcair                   1.5
DEF   Defir                    5.6
share|improve this answer
    
According to the question, code_input can be a list of several keys. –  Dhara Mar 19 '13 at 11:55
    
@Dhara: You can loop over code_input and operate per input code just as easily. –  Martijn Pieters Mar 19 '13 at 11:58
    
I know, it's just while that the OP did manage to find and print results for a single input_code, he seems to have had trouble with the rest of the input codes. Perhaps you should edit how to do that into your answer. –  Dhara Mar 19 '13 at 12:09
result = [v for v in list_of_tuples if v[0] in code_list]
for v in result:
    print(v) # Or format 'v' tuple in any way you want.
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