722

How can I do the following in Python?

row = [unicode(x.strip()) for x in row if x is not None else '']

Essentially:

  1. replace all the Nones with empty strings, and then
  2. carry out a function.
1097

You can totally do that, it's just an ordering issue:

[unicode(x.strip()) if x is not None else '' for x in row]

In general,

[f(x) if condition else g(x) for x in sequence]

And, for list comprehensions with if conditions only,

[f(x) for x in sequence if condition]

Note that this actually uses a different language construct, a conditional expression, which itself is not part of the comprehension syntax, while the if after the for…in is part of list comprehensions and used to filter elements from the source iterable.


Conditional expressions can be used in all kinds of situations where you want to choose between two expression values based on some condition. This does the same as the ternary operator ?: that exists in other languages. For example:

value = 123
print(value, 'is', 'even' if value % 2 == 0 else 'odd')
  • 115
    Note that the if/else here is now "ternary operator" syntax and not list comprehension syntax. – Adam Vandenberg Nov 23 '10 at 20:04
  • 8
    That's why I prefer to put the ternary operator in brackets, it makes it clearer that it's just a normal expression, not a comprehension. – Jochen Ritzel Nov 23 '10 at 20:16
  • 15
    So the trick is "In list compression I write if before for then I have to add else part too". because if my l = [ 2, 3, 4, 5] then [x if x % 2 == 0 for x in l] give me error whereas [x if x % 2 == 0 else 200 for x in l] works. Yes I know to filter it I should write [ x for x in l if x % 2 == 0]. Sorry for botheration. Thanks for your answer. – Grijesh Chauhan Sep 29 '13 at 15:29
  • 5
    The python docs mention the ternary operator. Note that it requires the else, or it doesn't work. – naught101 Nov 7 '13 at 23:23
  • 2
    @Phani Yes, it’s still a list comprehension, just with a conditional in its expression. – poke Oct 23 '14 at 11:04
40

One way:

def change(f):
    if f is None:
        return unicode(f.strip())
    else:
        return ''

row = [change(x) for x in row]

Although then you have:

row = map(change, row)

Or you can use a lambda inline.

  • 11
    This is also a good (maybe only) technique to use when you have to handle possible exceptions from the if expression or code in its or the elses statement block. The accepted answer is better for simple cases. – martineau Nov 23 '10 at 21:05
36

Here is another illustrative example:

>>> print(", ".join(["ha" if i else "Ha" for i in range(3)]) + "!")
Ha, ha, ha!

It exploits the fact that if i evaluates to False for 0 and to True for all other values generated by the function range(). Therefore the list comprehension evaluates as follows:

>>> ["ha" if i else "Ha" for i in range(3)]
['Ha', 'ha', 'ha']
27

The specific problem has already been solved in previous answers, so I will address the general idea of using conditionals inside list comprehensions.

Here is an example that shows how conditionals can be written inside a list comprehension:

X = [1.5, 2.3, 4.4, 5.4, 'n', 1.5, 5.1, 'a']     # Original list

# Extract non-strings from X to new list
X_non_str = [el for el in X if not isinstance(el, str)]  # When using only 'if', put 'for' in the beginning

# Change all strings in X to 'b', preserve everything else as is
X_str_changed = ['b' if isinstance(el, str) else el for el in X]  # When using 'if' and 'else', put 'for' in the end

Note that in the first list comprehension for X_non_str, the order is:

expression for item in iterable if condition

and in the last list comprehension for X_str_changed, the order is:

expression1 if condition else expression2 for item in iterable

I always find it hard to remember that expresseion1 has to be before if and expression2 has to be after else. My head wants both to be either before or after.

I guess it is designed like that because it resembles normal language, e.g. "I want to stay inside if it rains, else I want to go outside"

4

The other solutions are great for a single if / else construct. However, ternary statements within list comprehensions are arguably difficult to read.

Using a function aids readability, but such a solution is difficult to extend or adapt in a workflow where the mapping is an input. A dictionary can alleviate these concerns:

row = [None, 'This', 'is', 'a', 'filler', 'test', 'string', None]

d = {None: '', 'filler': 'manipulated'}

res = [d.get(x, x) for x in row]

print(res)

['', 'This', 'is', 'a', 'manipulated', 'test', 'string', '']
0

no need for ternary if/then/else. in my opinion your question calls for this answer:

row = [unicode((x or '').strip()) for x in row]
0

"Make a list from items in an iterable"

It seems best to first generalize all the possible forms rather than giving specific answers to questions. Otherwise the reader won't know how the answer was determined. Here's a few generalized forms I thought up before I got a headache trying to decide if a final else' clause could be used in the last form.

[expression1(item) for item in iterable]

[expression1(item) if conditional1 for item in iterable]

[expression1(item) if conditional1 else expression2(item) for item in iterable]

[expression1(item) if conditional1 else expression2(item) for item in iterable if conditional2]

The value of 'item' doesn't need to be used in any of the conditional clauses. A 'condition3' can be used as a switch to either add or not add a value to the output list.

For example, to create a new list that eliminates empty strings or whitespace strings from the original list of strings:

newlist = [s for s in firstlist if s.strip()]

-1
# coding=utf-8

def my_function_get_list():
    my_list = [0, 1, 2, 3, 4, 5]

    # You may use map() to convert each item in the list to a string, 
    # and then join them to print my_list

    print("Affichage de my_list [{0}]".format(', '.join(map(str, my_list))))

    return my_list


my_result_list = [
   (
       number_in_my_list + 4,  # Condition is False : append number_in_my_list + 4 in my_result_list
       number_in_my_list * 2  # Condition is True : append number_in_my_list * 2 in my_result_list
   )

   [number_in_my_list % 2 == 0]  # [Condition] If the number in my list is even

   for number_in_my_list in my_function_get_list()  # For each number in my list
]

print("Affichage de my_result_list [{0}]".format(', '.join(map(str, my_result_list))))

(venv) $ python list_comp.py
Affichage de my_list [0, 1, 2, 3, 4, 5]
Affichage de my_result_list [0, 5, 4, 7, 8, 9]

So, for you: row = [('', unicode(x.strip()))[x is not None] for x in row]

protected by Sheldore Jun 30 at 0:58

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