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Consider this example

def dump(value):
    print value

items = []    
for i in range(0, 2):
    items.append(lambda: dump(i))

for item in items:
    item()

output:

1
1

how can i get:

0
1
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4 Answers 4

up vote 5 down vote accepted

You can use a parameter with a default value on the lambda:

for i in range(0, 2):
    items.append(lambda i=i: dump(i))

This works because the default value is evaluated when the function is defined, not when it is called.

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man, you are smart. This was example but you found workaround, the point was how to eval that reference on lambda definition. Is there a way for doing that? –  ADRENALIN Oct 11 '12 at 14:22

You can use:

for i in range(0, 2):
    items.append(lambda i=i: dump(i))

to capture the current value of i

This works because default parameter values are evaluated at function creation time, and i is not the external variable, but a function parameter that will have the value you want as default.

A more detailed explanation can be found in this answer.

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For completeness, you can also do:

for i in range(0, 2):
    items.append((lambda i: lambda: dump(i))(i))
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I feel this answer is the least hacky, even though it's more verbose than the default value answer. –  max Oct 12 '12 at 2:25

The output value is the value of i at the evaluation of the function, not at its declaration. That's why you don't get the desired result.

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