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I am new to Python and am attempting to print a default value set for a parameter. My code is as follows;

# Functions

def shoppingcart(item='computer', *price):
    print item
    for i in price:
        print i

shoppingcart(100,200,300)

When I run the code, all I get are the values 100,200,300. I was expecting computer,100,200,300. What am I doing wrong?

EDIT

How do I achieve this in Python 2.7?

EDIT

I updated my code to

def shoppingcart(item='computer', *price):
    print item
    for i in price:
        print i

shoppingcart(item='laptop', 100,200,300)

however get the error

enter image description here

share|improve this question
    
Python 2 will not let you write shoppingcart(item='laptop', 100,200,300). It doesn't matter how you write the function, because you just can't call it that way. –  abarnert Dec 10 '12 at 1:29
2  
As for what the error means: a "keyword arg" is something like item='laptop', where you specify the name and value; a "positional arg' or "non-keyword arg" is something like 100, where you just specify the value. You have to put the keyword args after all of the positional args whenever you call a function. So, you can write shoppingcart(100, 200, 300, item='laptop')—and lqc's code will work if you do that. –  abarnert Dec 10 '12 at 1:31

3 Answers 3

up vote 2 down vote accepted

What you want to do is impossible. You can never write this in Python:

shoppingcart(item='laptop', 100,200,300)

In either 2.x or 3.x, you will get an error:

SyntaxError: non-keyword arg after keyword arg

First, a little background:

A "keyword" argument is something like item='laptop', where you specify the name and value. A "positional", or "non-keyword" argument, is something like 100, where you just specify the value. You have to put the keyword args after all of the positional args whenever you call a function. So, you can write shoppingcart(100, 200, 300, item='laptop'), but you can't write shoppingcart(item='laptop', 100, 200, 300).

This makes a little more sense when you understand the way keyword arguments are handled. Let's take a very simple case, with a fixed set of parameters and no default values, to make everything easier:

def shoppingcart(item, price):
    print item, price

Whether I call this with shoppingcart('laptop', 200), shoppingcart(price=200, item='laptop'), or any other possibility, you can figure out how the arguments arrive in item and price in the function body. Except for shoppingcart(price=200, 'laptop'), Python can't tell what laptop is supposed to be—it's not the first argument, it's not given the explicit keyword item, so it can't be the item. But it also can't be the price, because I've already got that. And if you think it through, it's going to have the same problem any time I try to pass a keyword argument before a positional argument. In more complex cases, it's harder to see why, but it doesn't even work in the simplest case.

So, Python will raise a SyntaxError: non-keyword arg after keyword arg, without even looking at how your function was defined. So there's no way to change your function definition to make this work; it's just not possible.

But if you moved item to the end of the parameter list, then I could call shoppingcart(100, 200, 300, item='computer') and everything would be fine, right? Unfortunately, no, because you're using *args to soak up the 100, 200, 300, and you can't put any explicit parameters after a *args. As it turns out, there's no principled reason for this restriction, so they did away with it in Python 3—but if you're still using 2.7, you have to live with it. But at least there is a workaround.

The way around this is to use **kwargs to soak up all of the keyword arguments and parse them yourself, the same way you used *args to soak up all the positional arguments. Just as *args gets you a list with the positional arguments, **kwargs gets you a dict with each keyword argument's keyword mapped to its value.

So:

>>> def shoppingcart(*args, **kwargs):
...    print args, kwargs
>>> shoppingcart(100, 200, 300, item='laptop')
[100, 200, 300], {'item': 'laptop'}

If you want item to be mandatory, you just access it like this:

item = kwargs['item']

If you want it to be optional, with a default value, you do this:

item = kwargs.get('item', 'computer')

But there's a problem here: You only wanted to accept an optional item argument, but now you're actually accepting any keyword argument. If you try this with a simple function, you get an error:

>>> def simplefunc(a, b, c):
...     print a, b, c
>>> simplefunc(1, 2, 3, 4)
TypeError: simplefunc() takes exactly 3 arguments (4 given)
>>> simplefunc(a=1, b=2, c=3, d=4, e=5)
TypeError: simplefunc() got an unexpected keyword argument 'd'

There's a very easy way to simulate this with **kwargs. Remember that it's just a normal dict, so if you take out the expected keywords as you parse them, there should be nothing left over—if there is, the caller passed an unexpected keyword argument. And if you don't want that, you can raise an error. You could write that like this:

def shoppingcart(*prices, **kwargs):
    for key in kwargs:
        if key != 'item':
            raise TypeError("shoppingcart() got unexpected keyword argument(s) '%s' % kwargs.keys()[0]`)
    item = kwargs.get('item', 'computer')
    print item, prices

However, there's a handy shortcut. The dict.pop method acts just like dict.get, but in addition to returning the value to you, it removes it from the dictionary. And after you've removed item (if it's present), if there's anything left, it's an error. So, you can just do this:

def shoppingcart(*args, **kwargs):
    item = kwargs.pop('item', 'computer')
    if kwargs: # Something else was in there besides item!
        raise TypeError("shoppingcart() got unexpected keyword argument(s) '%s' % kwargs.keys()[0]`)

Unless you're building a reusable library, you can get away with something simpler than that whole if/raise thing and just do assert not kwargs; nobody will care that you get an AssertionError instead of a TypeError. That's what lqc's solution is doing.

To recap, it doesn't matter how you write your function; it can never be called the way you want. But if you're willing to move item to the end, you can both write it and call it in a reasonable way (even if it's not as simple or readable as the Python 3 version).

For some rare cases, there are other ways to go. For example, if prices always have to be numbers, and items are always strings, you can change your code to do something like this:

def shoppingcart(*prices):
    if prices and isinstance(prices[0], basestring):
        item = prices.pop(0)
    else:
        item = 'computer'
    print item
    for price in prices:
        print price

Now, you can do this:

>>> shoppingcart(100, 200, 300)
computer
100
200
300
>>> shoppingcart('laptop', 100, 200, 300) # notice no `item=` here
laptop
100
200
300

This is basically the kind of trick Python uses to implement slice(start=None, stop, step=None), and it is very occasionally useful in your code. However, it makes your implementation much more fragile, makes the behavior of your function much less obvious to the reader, and generally just doesn't feel Pythonic. So, it's almost always best to avoid this and just make the caller use real keyword arguments if that's what you want, with the restriction that they have to come at the end.

share|improve this answer
    
Thanks. Interesting. A video I am watching from NetTuts places keyword arguments before non-keyword or positional arguments and it works unless I have overlooked something. Also when you say make the caller use real keyword arguments what do you mean? –  PeanutsMonkey Dec 10 '12 at 1:53
    
By "make the caller use real keyword arguments", I mean do things the normal Python way, with actual keyword parameters that have to be passed as arguments, with the restriction that they have to come at the end, instead of coming up with a way of faking something without that restriction. –  abarnert Dec 10 '12 at 1:55
    
@PeanutsMonkey: As for the video: can you post exactly what they typed to call the function (and, if they wrote the function themselves, exactly how they defined it)? I can't guess whether the video is wrong, or you're misinterpreting it, or what, without knowing that they did. –  abarnert Dec 10 '12 at 1:57
    
I watched the video again and I made the mistake. Sorry. The function they had defined were 2 keyword arguments i.e. `def example(adjective='hungry', name='jesse'): print "%s is very %s" % (adjective, name). I did however learn about keyword arguments, non-keyword arguments and positional arguments. Thank you. –  PeanutsMonkey Dec 10 '12 at 2:10
    
@PeanutsMonkey: No problem. If you understand how argument handling actually works, the reasons for the rules are obvious—but otherwise, they really aren't obvious at all, so you just have to learn them, and it's easy to make mistakes. The error message is trying to explain the problem, but it expects you to know terminology you have no reason to have learned yet, so it's understandable that you were confused. –  abarnert Dec 10 '12 at 3:17

Simply put, default values are only used if there is no other way. Here you have item=100 and the other 2 values go into *price.

In Python3 you can write:

def shoppingcart(*prices, item='computer'): 
    print(item)
    print(prices)

shoppingcart(100,200,300)
shoppingcart(100,200,300, item='moon')

In Python2 you cannot have default arguments after *args so you have to find another way to call your functions.

share|improve this answer
    
Thanks. How do I do the same in Python 2.7? –  PeanutsMonkey Dec 10 '12 at 0:42

For Python 2.x you'll have to use the ** syntax:

def shoppingcart(*prices, **kwargs):
   item = kwargs.pop("item", "computer")
   assert not kwargs, "This function only expects 'item' as keyword argument".
   print(item)
   print(prices)

Then you can pass it keyword arguments:

shoppingcart(100,200,300, item='moon')

(They always need to be after 'positional' arguments)

share|improve this answer
    
Thanks. Why do I need to use pop? and also what do you mean by 'positional` arguments? –  PeanutsMonkey Dec 10 '12 at 1:14
    
@PeanutsMonkey: You use the pop to not only get the item, but also remove it from the dict if present. That means afterward, whether or not the caller passed an item, the dict is empty unless they've passed some unexpected keyword arguments. So you can test for that. (It would be better to raise a TypeError("shoppingcart() got an unexpected keyword argument") than to assert, but unless you're writing a library for others to use or something, this is fine.) –  abarnert Dec 10 '12 at 1:26
    
@lqc - Thanks lqc. Sorry for being a newbie at this but can you give me examples of each as I don't understand what you meant by get and where dict comes into the picture? –  PeanutsMonkey Dec 10 '12 at 1:41
1  
@PeanutsMonkey: The kwargs is a dict. If you call shoppingcart(100, item='laptop'), kwargs will be {'item': 'laptop'}. So, if you want to get the item argument, you can do kwargs['item']. If you want to get the item argument, or a default if the caller didn't pass one, kwargs.get('item', 'laptop'). If you want to do that, and also make sure it's the only keyword argument, kwargs.pop('item', 'laptop'), kwargs.pop('item', 'laptop'), and then check that kwargs is empty afterward. –  abarnert Dec 10 '12 at 1:44
    
@abarnert - Please correct me if I am wrong. 1. Because I am doing **kwargs it expects a dictionary e.g. {item:laptop}. 2. This then allows me to access the key value i.e. kwargs[item]. What I don't understand is what you mean by get the item argument. I understand that if the caller doesn't pass one I can run kwargs.get('item', 'laptop'). If I want to pass a default value, I must make sure that it is a keyword argument and I can do so by using kwargs.pop('item', laptop). What I do not understand is what you mean by only` keyword argument and that kwargs is empty? –  PeanutsMonkey Dec 10 '12 at 2:03

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