Why doesn't this work?

lambda: print "x"

Is this not a single statement, or is it something else? The documentation seems a little sparse on what is allowed in a lambda...

  • 1
    docs.python.org/reference/expressions.html#lambda. It says "expression", which is a link to a complete definition of all possible expressions. How is this "sparse"? What was incorrect or incomplete? – S.Lott Jun 4 '10 at 2:49
  • 3
    @Lott I had misunderstanding of what expression/statement is and where print belongs. it makes sense now – Anycorn Jun 4 '10 at 5:31
up vote 174 down vote accepted

A lambda's body has to be a single expression. In Python 2.x, print is a statement. However, in Python 3, print is a function (and a function application is an expression, so it will work in a lambda). You can (and should, for forward compatibility :) use the back-ported print function if you are using the latest Python 2.x:

In [1324]: from __future__ import print_function

In [1325]: f = lambda x: print(x)

In [1326]: f("HI")
HI
  • 5
    Now I see why it was such a big deal to make it a function. Wanted to use print as a default kwarg and this fixed it. Thanks. – Thomas Dignan Jul 3 '12 at 7:30
  • 1
    May I know why would from __future__ import print_function must be at the beginning of the code? thx – Ben Apr 27 at 23:15
  • Where would I see the prints of what we have written here? – Sk. Irfan May 17 at 5:50
  • I agree with Ben's comment: I don't get this import. Python (2 or 3) has print() as built-in method. – ivanleoncz Oct 5 at 20:06
  • Because they were living in the past. – Purr Oct 23 at 23:07

what you've written is equivalent to

def anon():
    return print "x"

which also results in a SyntaxError, python doesn't let you assign a value to print in 2.xx; in python3 you could say

lambda: print('hi')

and it would work because they've changed print to be a function instead of a statement.

  • 3
    There's also from __future__ import print_function, which enables this in py2.x – tzaman Jun 4 '10 at 1:10
  • 5
    Or alternatively lambda: sys.stdout.write('hi') – fmark Jun 4 '10 at 1:24
  • @fmark: Except it's not that simple in 2.x: you need to handle sys.stdout.softspace and (at least) write a newline afterwards. – Fred Nurk May 25 '11 at 13:42

In cases where I am using this for simple stubbing out I use this:

fn = lambda x: sys.stdout.write(str(x) + "\n")

which works perfectly.

  • 3
    As an additional note - use the from future above. Use this only where that isn't available - which would be a seriously out of date version right now. – Danny Staple Apr 4 '15 at 20:53

The body of a lambda has to be an expression that returns a value. print, being a statement, doesn't return anything, not even None. Similarly, you can't assign the result of print to a variable:

>>> x = print "hello"
  File "<stdin>", line 1
    x = print "hello"
            ^
SyntaxError: invalid syntax

You also can't put a variable assignment in a lambda, since assignments are statements:

>>> lambda y: (x = y)
  File "<stdin>", line 1
    lambda y: (x = y)
                 ^
SyntaxError: invalid syntax

You can do something like this.

Create a function to transform print statement into a function:

def printf(text):
   print text

And print it:

lambda: printf("Testing")

The body of a lambda has to be a single expression. print is a statement, so it's out, unfortunately.

  • thank you, I was not sure about definition of expression versus statement, now it makes sense – Anycorn Jun 4 '10 at 1:06

Here, you see an answer for your question. print is not expression in Python, it says.

  • 1
    Incomplete answer, but nice link. – Stephen Jun 4 '10 at 1:42

With Python 3.x, print CAN work in a lambda, without changing the semantics of the lambda.

Used in a special way this is very handy for debugging. I post this 'late answer', because it's a practical trick that I often use.

Suppose your 'uninstrumented' lambda is:

lambda: 4

Then your 'instrumented' lambda is:

lambda: (print (3), 4) [1]

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