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Possible Duplicate:
Lexical closures in Python

Suppose I have the following code

callbacks = []
for i in range(10):
  callbacks.append(lambda x: i)

all functions in callbacks will return the final value of i. How can I create callbacks that return the current value for i at creation time?

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marked as duplicate by senderle, larsmans, Uwe Keim, mgibsonbr, Dharmendra Oct 24 '12 at 5:18

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2 Answers 2

up vote 5 down vote accepted
for i in range(10):
  callbacks.append(lambda x = i : x)
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In [113]: callbacks=[]

In [114]: for i in range(10):
    callbacks.append(lambda x=i:x**2)
   .....:     
   .....:     

In [117]: callbacks[0]()
Out[117]: 0

In [118]: callbacks[1]()
Out[118]: 1

In [119]: callbacks[2]()
Out[119]: 4

In [120]: callbacks[4]()
Out[120]: 16
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1  
I suppose you meant lambda x=i: x? –  larsmans Oct 23 '12 at 20:38
    
@larsmans ah! yes, thanks for the catch. –  undefined is not a function Oct 23 '12 at 20:41
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