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.

The code is short and simple:

class Contact:
    all_contacts = []

    def __init__(self, name, email):
        self.name = name
        self.email = email
        Contact.all_contacts.append(self)


c1 = Contact("Paul", "something@hotmail.com")
c2 = Contact("Darren", "another_thing@hotmail.com")
c3 = Contact("Jennie", "different@hotmail.com")


for i in Contact.all_contacts:
    print(i)

Clearly all I want to do is print the 'all_contacts' list with the info I have added, but what I get is:

<__main__.Contact object at 0x2ccf70>
<__main__.Contact object at 0x2ccf90>
<__main__.Contact object at 0x2ccfd0>

What am I doing wrong?

share|improve this question

3 Answers 3

up vote 1 down vote accepted

Add the following to your Contact class:

class Contact:
    ...
    def __str__(self):
        return '%s <%s>' % (self.name, self.email)

This will tell Python how to render your object in a human-readable string representation.

Reference information for str

share|improve this answer

The __repr__ and __str__ methods for Contact aren't defined, so you get this default string representation instead.

def __str__(self):
    return '<Contact %s, %s>' % (self.name, self.email)
share|improve this answer
  1. Separate the container from the items stored in the container.

  2. Add a __str__() method to Contact.

    class Contact:
        def __init__(self, name, email):
            self.name = name
            self.email = email
        def __str__(self):
            return "{} <{}>".format(self.name, self.email)
    
    class ContactList(list):
        def add_contact(self, *args):
            self.append(Contact(*args))
    
    c = ContactList()
    c.add_contact("Paul", "something@hotmail.com")
    c.add_contact("Darren", "another_thing@hotmail.com")
    c.add_contact("Jennie", "different@hotmail.com")
    
    for i in c:
        print(i)
    
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.