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I've this list with tuples:

l = [('a','b'),('c','d'),('e','f')]

And two parameters: a key value, and a new value to modify. For example,

key = 'a'
new_value= 'B' # it means, modify with 'B' the value in tuples where there's an 'a'

I've this two options (both works):

f = lambda t,k,v: t[0] == k and (k,v) or t 
new_list = [f(t,key,new_value) for t in l]
print new_list 

and

new_list = []
for i in range(len(l)):
    elem = l.pop()
    if elem[0] == key:
        new_list.append((key,new_value))
    else:
        new_list.append(elem)
print new_list

But, i'm new in Python, and don't know if its right.

Can you help me? Thank you!

share|improve this question
5  
If you want dictionary-like features, use a dictionary. Obviously this means keys have to be unique; I don't know if that goes against your requirements –  NullUserException Sep 4 '11 at 23:29
    
Thank you, i know dictionary. It's a more general question, how to modify elements in a list. –  santiagobasulto Sep 4 '11 at 23:32
    
This doesn't modify a. List, it creates a new copy. Which do you want? –  Kathy Van Stone Sep 4 '11 at 23:35
    
@Kathy you're right! I'd like to know both. to modify i'd do pop(i), and insert(i,x). What do you think? –  santiagobasulto Sep 4 '11 at 23:36
    
there are different ways to modify lists in python because different situations work best with the different approaches. There is no general answer to the best way to modify a list. –  Winston Ewert Sep 4 '11 at 23:57

4 Answers 4

up vote 2 down vote accepted

To modify existing list just use list assignment, e.g.

>>> l = [('a','b'),('c','d'),('e','f')]
>>> l[0] = ('a','B')
>>> print l
[('a', 'B'), ('c', 'd'), ('e', 'f')]

I would usually prefer to create a new list using comprehension, e.g.

[(key, new_value) if x[0] == key else x for x in l]

But, as the first comment has already mentioned, it sounds like you are trying to make a list do something which you should really be using a dict for instead.

share|improve this answer
    
O.o Are you sure you did not mean l[0] = ('a','B')? –  Tadeck Sep 4 '11 at 23:45
    
o_O indeed .. for some stupid reason i was thinking of a flattened list, but i wrote the tuples anyway. thanks. –  wim Sep 4 '11 at 23:50
    
Really simple solution. Thanks! –  santiagobasulto Sep 5 '11 at 12:33

To create a new list, a list comprehension would do:

In [102]: [(key,'B' if key=='a' else val) for key,val in l]
Out[102]: [('a', 'B'), ('c', 'd'), ('e', 'f')]

To modify the list in place:

l = [('a','b'),('c','d'),('e','f')]

for i,elt in enumerate(l):
    key,val=elt
    if key=='a':
        l[i]=(key,'B')
print(l)              
# [('a', 'B'), ('c', 'd'), ('e', 'f')]
share|improve this answer
    
Wow, didn't know those "inline ifs" nor enumerate function. Thanks! –  santiagobasulto Sep 5 '11 at 12:31
    
@santiagobasulto: glad I could help. The "inline ifs" are called conditional expressions or ternary expressions in Python. –  unutbu Sep 5 '11 at 12:37

Here is one solution involving altering the items in-place.

def replace(list_, key, new_value):
    for i, (current_key, current_value) in enumerate(list_):
        if current_key == key:
            list_[i] = (key, new_value)

Or, to append if it's not in there,

def replace_or_append(list_, key, new_value):
    for i, (current_key, current_value) in enumerate(list_):
        if current_key == key:
            list_[i] = (key, new_value)
            break
    else:
        list_.append((key, new_value))

Usage:

>>> my_list = [('a', 'b'), ('c', 'd')]
>>> replace(my_list, 'a', 'B')
>>> my_list
[('a', 'B'), ('c', 'd')]

If you want to create a new list, a list comprehension is easiest.

>>> my_list = [('a', 'b'), ('c', 'd')]
>>> find_key = 'a'
>>> new_value = 'B'
>>> new_list = [(key, new_value if key == find_key else value) for key, value in my_list]
>>> new_list
[('a', 'B'), ('c', 'd')]

And if you wanted it to append if it wasn't there,

>>> if len(new_list) == len(my_list):
...     new_list.append((find_key, new_value))

(Note also I've changed your variable name from l; l is too easily confused with I and 1 and is best avoided. Thus saith PEP8 and I agree with it.)

share|improve this answer

Here's the approach I would use.

>>> l = [('a','b'),('c','d'),('e','f')]
>>> key = 'a'
>>> new_value= 'B'
>>> for pos in (index for index, (k, v) in enumerate(l) if k == key):
...     l[pos] = (key, new_value)
...     break
... else:
...     l.append((key, new_value))
... 
>>> l
[('a', 'B'), ('c', 'd'), ('e', 'f')]

This looks an awful lot like an OrderedDict, though; key-value pairs with preserved ordering. You might want to take a look at that and see if it suits your needs

Edit: Replaced try:...except StopIteration: with for:...break...else: since that might look a bit less weird.

share|improve this answer
    
You do go in for a complicated solution! –  Chris Morgan Sep 4 '11 at 23:57
    
I don't consider this to be complicated at all. list.index is not available because we're looking for an element that is in some way similar to the key, rather than equal to the key. enumerate is pretty normal, and I know of no alternative idiom to get the first element from a generator besides <generator ...>.next() and catching the exception when not found. Other alternatives would either be needlessly wordy, or generate intermediate lists. –  IfLoop Sep 5 '11 at 0:10
    
I would call it complicated in the way that the Zen of Python talks of complex being better than complicated. When there is a simple solution - iterating with a full for loop rather than using <generator>.next() and having to deal with catching a StopIteration - it's often better. I had to think briefly about what your solution was doing to verify its correctness, whereas I can look at my solution or the other similar ones that have been posted and understand what is being done immediately. It seems to me that error in the for-if style would be much more obvious. –  Chris Morgan Sep 5 '11 at 0:22
    
Interesting solution and discussion! Thank you! –  santiagobasulto Sep 5 '11 at 12:32

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