7

Given the following code

class A:
  def __init__(self ):
    self.b = B()

  def __repr__(self):
    #return "<A with {} inside>".format( self.b )
    #return "<A with " + repr(self.b) + " inside>"
    return "<A with " + self.b  + " inside>" # TypeError: Can't convert 'B' object to str implicitly

class B:
  def __repr__(self):
    return "<B>"

a = A()
print(a)

I am wondering why B's __repr__ is not called when "adding" A's self.b to a string.

  • 1
    For the same reason that "three " + 3 fails. Is there a way to have the object behave as a string? – handle Aug 20 '15 at 14:37
  • 3
    Yes, explicitly convert it to a string, using str or repr, or use string formatting: "<A with {!r} inside>".format(self.b). Python is strongly typed, implicit conversion doesn't happen. – jonrsharpe Aug 20 '15 at 14:39
  • OK, so there's no such thing like Ruby's operator overloading (which I had in the back of my head). – handle Aug 20 '15 at 14:45
  • 1
    What if you use str.format rather than concatenating the strings? – zom-pro Aug 20 '15 at 14:45
  • Both commented lines (format() and repr()) do the conversion. – handle Aug 20 '15 at 15:00
6

Concatenation doesn't cause self.b to be evaluated as a string. You need to explicitly tell Python to coerce it into a string.

You could do:

return "<A with " + repr(self.b)  + " inside>"

But using str.format would be better.

return "<A with {} inside>".format(self.b)

However as jonrsharpe points out that would try to call __str__ first (if it exists), in order to make it specifically use __repr__ there's this syntax: {!r}.

return "<A with {!r} inside>".format(self.b)
-2

You can use repr()

class A:
    def __init__(self):
        self.b = repr(B())

    def __repr__(self):
        return "<A with " + self.b + " inside>"


class B:
    def __repr__(self):
        return "<B>"

a = A()
print(repr(a))

its works for me

  • 2
    This might technically produce the output required but it means that self.b is just set to a string instead of an object. – SuperBiasedMan Aug 20 '15 at 14:48

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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