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In Python, I am trying to sort by date with lambda. I can't understand my error message. The message is:

<lambda>() takes exactly 1 argument (2 given)

The line I have is

a = sorted(a, lambda x: x.modified, reverse=True)
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    add keywoard argument key = lambda x: x.modified will solve the problem – shahjapan Sep 22 '10 at 5:53
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+200

Use

a = sorted(a, key=lambda x: x.modified, reverse=True)
#             ^^^^

On Python 2.x, the sorted function takes its arguments in this order:

sorted(iterable, cmp=None, key=None, reverse=False)

so without the key=, the function you pass in will be considered a cmp function which takes 2 arguments.

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  • 16
    You have good chance to learn to appreciate keyword parameter passing from this experience. – Tony Veijalainen Sep 22 '10 at 6:42
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    This is very old but, do you have any idea why the error code is misleading? Your answer sounds like possible Python is supplying lambda with another parameter since a cmp function takes 2? – SuperBiasedMan Sep 2 '15 at 9:04
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    @SuperBiasedMan the error is not misleading. cmp, a comparator function takes two arguments. If you don't specify that you are passing a key, it is assumed from the function parameters order that you are passing a comparator. Your lambda takes one parameter, therefore is not a valid comparator and that's what the error says. – Jezor May 24 '18 at 7:46
  • Python 2 and 3 seem to have different function declarations. I use Python 3, so there is no cmp anymore. In Python2, it is an iterable, what is it in Python 3? – Timo Dec 24 '20 at 9:51
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lst = [('candy','30','100'), ('apple','10','200'), ('baby','20','300')]
lst.sort(key=lambda x:x[1])
print(lst)

It will print as following:

[('apple', '10', '200'), ('baby', '20', '300'), ('candy', '30', '100')]
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  • This does not work for string integers. Check this out! lst = [('999', '9'), ('303', '30'), ('343', '34')] lst.sort(key=lambda x: x[1]) print(lst) – Daniel Kua Jun 13 '20 at 4:26
  • The result is [('303', '30'), ('343', '34'), ('999', '9')] which is not sorted base on the second element in every list. – Daniel Kua Jun 13 '20 at 4:26
  • lst = [('candy','999','9'), ('apple','303','30'), ('baby','343','34')] lst.sort(key=lambda x:x[2]) print(lst) – Daniel Kua Jun 13 '20 at 4:28
  • [('apple', '303', '30'), ('baby', '343', '34'), ('candy', '999', '9')]. Which is not sorted base on 2 element too! – Daniel Kua Jun 13 '20 at 4:28
  • @DanielKua That's pretty simple to fix. You can just do int(x[1]) instead of just x[1]. – M-Chen-3 Mar 16 at 20:53
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You're trying to use key functions with lambda functions.

Python and other languages like C# or F# use lambda functions.

Also, when it comes to key functions and according to the documentation

Both list.sort() and sorted() have a key parameter to specify a function to be called on each list element prior to making comparisons.

...

The value of the key parameter should be a function that takes a single argument and returns a key to use for sorting purposes. This technique is fast because the key function is called exactly once for each input record.

So, key functions have a parameter key and it can indeed receive a lambda function.

In Real Python there's a nice example of its usage. Let's say you have the following list

ids = ['id1', 'id100', 'id2', 'id22', 'id3', 'id30']

and want to sort through its "integers". Then, you'd do something like

sorted_ids = sorted(ids, key=lambda x: int(x[2:])) # Integer sort

and printing it would give

['id1', 'id2', 'id3', 'id22', 'id30', 'id100']

In your particular case, you're only missing to write key= before lambda. So, you'd want to use the following

a = sorted(a, key=lambda x: x.modified, reverse=True)
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 data = [ { 'name': 'Billy', 'age': 26, 'country': 'USA' }, { 'name': 'Timmy', 'age': 5, 'country': 'Australia' }, { 'name': 'Sally', 'age': 19, 'country': 'Costa Rica' }, { 'name': 'Tommy', 'age': 67, 'country': 'Serbia' } ]
new_data = sorted(data, key=lambda x: x['age'], reverse=True)

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