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I want to use the assignment operator in a list comprehension. How can I do that?

The following code is invalid syntax. I mean to set lst[0] to an empty string '' if it matches pattern:

[ lst[0] = '' for pattern in start_pattern if lst[0] == pattern ]

Thanks!

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3  
I think you have this inside out... –  dawg Apr 24 '12 at 5:08
4  
This is not very clear. That's an immediate warning sign. –  Noufal Ibrahim Apr 24 '12 at 5:08
    
Poorly written question and what's up with the lousy accept rate? –  Colt 45 Apr 28 '12 at 23:27

3 Answers 3

It looks like you are confusing list comprehension with looping constructs in Python.

A list comprehension produces -- a list! It does not lend itself to a single assignment in an existing list. (Although you can torture the syntax to do that...)

While it isn't exactly clear what you are trying to do from your code, I think it is more similar to looping over the list (flow control) vs producing a list (list comprehension)

Loop over the list like this:

for pattern in patterns:
   if lst[0] == pattern: lst[0]=''

That is a reasonable way to do this, and is what you would do in C, Pascal, etc. But you can also just test the list for the one value and change it:

if lst[0] in patterns: lst[0] = ''

Or, if you don't know the index:

i=lst.index[pattern]
lst[i]=''

or, if you have a list of lists and want to change each first element of each sublist:

for i, sublst in enumerate(lst):
    if sublst[i][0] in patterns: sublist[i][0]=''

etc, etc, etc.

If you want to apply something to each element of a list, then you can look at using a list comprehension, or map, or one of the many other tools in the Python kit.

Personally, I usually tend to use list comprehensions more for list creation:

 l=[[ x for x in range(5) ] for y in range(4)]  #init a list of lists...

Which is more natural than:

l=[]
for i in range(4):
   l.append([])
   for j in range(5):
      l[i].append(j)      

But to modify that same list of lists, which is more understandable?

This:

l=[['new value' if j==0 else l[i][j] for j in range(len(l[i]))] for i in range(len(l))]

or this:

for i,outter in enumerate(l):
    l[i][0]='new value'               

YMMV

Here is a great tutorial on this.

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3  
And this should be written as if lst[0] in patterns: lst[0] = ''. –  Tim Pietzcker Apr 24 '12 at 5:17
1  
@Tim: Submit that as an answer! I can't believe I came up with three other ways of doing that without the obvious one... ;-) –  Cameron Apr 24 '12 at 5:19
    
@Tim Pietzcker: that the way I would write it, but I did want to show (my interpretation) that he had this inside out... –  dawg Apr 24 '12 at 5:19
    
@Tim Pietzcker: Thx -- I made that edit! –  dawg Apr 24 '12 at 5:21
    
@TimPietzcker: Well if the OP has a wager on this, it could be written like this: lst[0]='' if lst[0]==[x for x in patterns][0] else lst[0] :D –  dawg Apr 24 '12 at 11:07

In short: you don't. List comprehensions are for generating lists, not modifying existing lists. If you want to modify a list, use a for loop, as that's what they're for.

The Pythonic way to write that code would be something like:

for pattern in start_pattern:
    if lst[0] == pattern:
        lst[0] = ''
        #the following assumes that pattern will never be ''
        #if that's possible, you can ignore this bit
        break

However, if you really, really want to do assignment inside one, and don't mind every Python programmer who ever deals with your code hating it for all eternity, there are a few functions you can use:

  • If the variable you want to assign to is a global, then you can do

        globals().update(var=value)
    
  • If the variable you want to assign to is a mutable sequence or a map (such as a list or a dict)

        list.__setitem__(index, value)
    
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The break is always valid. Even if there's a '' in the data, it's only going to cause lst[0] to be reassigned the same value... –  Cameron Apr 24 '12 at 5:20
    
Unless lst is a mutable sequence type where element assignment has been overloaded to keep track of how many times a given value was assigned, or any other sort of non-standard behavior. –  Colin Valliant Apr 24 '12 at 5:25
    
Hmm, good point. I would hope that's a very rare occurrence, though :-) –  Cameron Apr 24 '12 at 5:31
    
It's probably more common than you think, but less common than my comment assumes. The last several times I created a __setitem__ method, they didn't do anything you wouldn't expect them to. However, relying on others' code to behave sensibly is not a very safe way to code. –  Colin Valliant Apr 24 '12 at 5:39

The Python language has distinct concepts for expressions and statements.

Assignment is a statement even if the syntax sometimes tricks you into thinking it's an expression (e.g. a=b=99 works but is a special syntax case and doesn't mean that the b=99 is an expression like it is for example in C).

List comprehensions are instead expressions because they return a value, in a sense the loop they perform is an incident and the main point is the returned list.

A statement can contain expressions but an expression cannot contain statements.

That said however list item assigment to is internally converted to a method call (to allow creation of list-like objects) and method calls are expressions. Therefore you can technically use list item assignment in an expression:

[ lst.__setitem__(0, '') for pattern in start_pattern if lst[0] == pattern ]

This is however considered bad because it harms readability and how easy is to read source code is the main focus in the Python language. You should write instead for example...

for pattern in start_pattern:
    if lst[0] == pattern:
        lst[0] = ''

that by the way thanks to the in operator is equivalent to the even more readable

if lst[0] in start_pattern:
    lst[0] = ''

List comprehensions are used for their return value and they make a loop internally... If what you want is the loop then just write a loop... whoever will read the code trying to understand what it does would appreciate that a lot (and whoever includes yourself in a few weeks).

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