Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've got this code section in one of my function which create a menu.

# directorys == {'login': <object at ...>, 'home': <object at ...>}
for d in directorys:
    self.command["cd " + d] = (lambda : self.root.change_directory(d))

The two function created (self.command["cd login"] and self.command["cd home"]) do exactly the same thing : self.root.change_directory("home"), even if their hash is different.

If now i try with directory = {'login': <object at ...>}, self.command["cd login"] is now correct : it do self.root.change_directory("login")

I really don't understand why. Do you have any suggestions ?

share|improve this question

2 Answers 2

up vote 9 down vote accepted

You need to bind d for each function created. One way to do that is to pass it as a parameter with a default value:

lambda d=d: self.root.change_directory(d)

Now the d inside the function uses the parameter, even though it has the same name, and the default value for that is evaluated when the function is created. To help you see this:

lambda bound_d=d: self.root.change_directory(bound_d)

Remember how default values work, such as for mutable objects like lists and dicts, because you are binding an object.

This idiom of parameters with default values is common enough, but may fail if you introspect function parameters and determine what to do based on their presence. You can avoid the parameter with another closure:

(lambda d=d: lambda: self.root.change_directory(d))()
# or
(lambda d: lambda: self.root.change_directory(d))(d)

Better yet, a redesign of how you handle "commands" would help here and should help elsewhere.

share|improve this answer

This is due to the point at which d is being bound. The lambda functions all point at the variable d rather than the current value of it, so when you update d in the next iteration, this update is seen across all your functions.

For a simpler example:

funcs = []
for x in [1,2,3]:
  funcs.append(lambda: x)

for f in funcs:
  print f()

# output:
3
3
3

You can get around this by adding an additional function, like so:

def makeFunc(x):
  return lambda: x

funcs = []
for x in [1,2,3]:
  funcs.append(makeFunc(x))

for f in funcs:
  print f()

# output:
1
2
3

You can also fix the scoping inside the lambda expression

lambda bound_x=x: bound_x

However in general this is not good practice as you have changed the signature of your function.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.