def make_bold(fn):
    return lambda : "<b>" + fn() + "</b>"

def make_italic(fn):
    return lambda : "<i>" + fn() + "</i>"

@make_bold
@make_italic
def hello():
  return "hello world"

helloHTML = hello()

Output: "<b><i>hello world</i></b>"

I roughly understand about decorators and how it works with one of it in most examples.

In this example, there are 2 of it. From the output, it seems that @make_italic executes first, then @make_bold.

Does this mean that for decorated functions, it will first run the function first then moving towards to the top for other decorators? Like @make_italic first then @make_bold, instead of the opposite.

So this means that it is different from the norm of top-down approach in most programming lang? Just for this case of decorator? Or am I wrong?

up vote 69 down vote accepted

Decorators wrap the function they are decorating. So make_bold decorated the result of the make_italic decorator, which decorated the hello function.

The @decorator syntax is really just syntactic sugar; the following:

@decorator
def decorated_function():
    # ...

is really executed as:

def decorated_function():
    # ...
decorated_function = decorator(decorated_function)

replacing the original decorated_function object with whatever decorator() returned.

Stacking decorators repeats that process outward.

So your sample:

@make_bold
@make_italic
def hello():
  return "hello world"

can be expanded to:

def hello():
  return "hello world"
hello = make_bold(make_italic(hello))

When you call hello() now, you are calling the object returned by make_bold(), really. make_bold() returned a lambda that calls the function make_bold wrapped, which is the return value of make_italic(), which is also a lambda that calls the original hello(). Expanding all these calls you get:

hello() = lambda : "<b>" + fn() + "</b>" #  where fn() ->
    lambda : "<i>" + fn() + "</i>" # where fn() -> 
        return "hello world"

so the output becomes:

"<b>" + ("<i>" + ("hello world") + "</i>") + "</b>"
  • I understand. But does this mean that when there are 2 wrappers in this case, the IDE will automatically detect and wrap the result of the first wrapper? Because I thought that @make_bold #make_bold = make_bold(hello) @make_italic #make_italic = make_italic (hello)? I'm not sure if based on this, it will wrap the first result. Or for this case of 2 wrappers, the IDE will use make_bold(make_italic(hello)) as you have mentioned instead of what I shared? – Newbie Dec 7 '14 at 11:38
  • 1
    @Newbie: Your IDE does nothing here; it is Python that does the wrapping. I showed you in my last sample that make_bold() wraps the output of make_italic(), which was used to wrap hello, so the equivalent of make_bold(make_italic(hello)). – Martijn Pieters Dec 7 '14 at 11:40
  • Could you provide a version of this code without the use of lambda? I had tried .format but doesn't work. And why lambda is used in this example? I'm trying to understand lambda and how it works in this example but still having problems. I get that lambda is like one line functions that can be passed much easily as compared to the norm of def functions? – Newbie Dec 7 '14 at 12:20
  • def inner: return "<b>" + fn() + "</b>", then return inner would be the 'regular' function version; not that big a difference. – Martijn Pieters Dec 7 '14 at 20:49
  • I always get confused about order. "...decorators will be applied starting with the one closest to the "def" statement" I call this "inside-out". I think Martijn calls this "outward". This means make_italic decorator is executed before make_bold decorator, because make_italic is closest to the def. However, I forget that decorated code execution order: the make_bold decorated (i.e. bold lambda) is executed first, followed by the make_italic decorated lambda (i.e. italic lambda). – The Red Pea Nov 27 '17 at 23:34

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