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I'm a little confusing when try something like this

b = [lambda x:x**i for i in range(11)]

When I then try b[1](2) I have 1024 as a result that is wrong. But when I write so

b = [(lambda i: lambda x:x**i)(i) for i in range(11)]

all is OK

>>> b[1](2)
2
>>> b[5](2)
32

It works fine but what's wrong in first code?

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Your question is not a duplicate, but the reasoning is the same as in the answers to [this question]. [this question]: stackoverflow.com/questions/2222466/… "this question." –  jcdyer Feb 14 '10 at 16:55
    
Note that lambda x, i=i: x**i might be a more natural way to write what you phrase lambda i: lambda x:x**i)(i). The default argument is evaluated when the function is defined. –  Mike Graham Feb 15 '10 at 2:57
    
-1: Too much time wrestling with lambda. If a lambda doesn't seem to work, just remove the lambda and use a defined function. –  S.Lott Feb 15 '10 at 3:02

2 Answers 2

up vote 3 down vote accepted

This is due to how closures in Python work.

The loop changes the value in the scope that all the functions share. Move generation of the function into a separate scope, i.e. function.

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It's a game of scopes.

In the first code, the "i" name in the lambda is only a reference. The value behind that reference gets altered as the for loop executes.

In the second code, there are two different scopes.

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