问题:“最少惊讶”和可变默认参数
长时间修改Python的任何人都被以下问题咬伤(或弄成碎片):
def foo(a=[]):
a.append(5)
return a
Python新手希望此函数始终返回仅包含一个元素的列表[5]
。结果是非常不同的,并且非常令人惊讶(对于新手而言):
>>> foo()
[5]
>>> foo()
[5, 5]
>>> foo()
[5, 5, 5]
>>> foo()
[5, 5, 5, 5]
>>> foo()
我的一位经理曾经第一次遇到此功能,并将其称为该语言的“巨大设计缺陷”。我回答说,这种行为有一个潜在的解释,如果您不了解内部原理,那确实是非常令人困惑和意外的。但是,我无法(对自己)回答以下问题:在函数定义而不是函数执行时绑定默认参数的原因是什么?我怀疑经验丰富的行为是否具有实际用途(谁真正在C中使用了静态变量,却没有滋生bug?)
编辑:
巴泽克举了一个有趣的例子。连同您的大多数评论,特别是Utaal的评论,我进一步阐述了:
>>> def a():
... print("a executed")
... return []
...
>>>
>>> def b(x=a()):
... x.append(5)
... print(x)
...
a executed
>>> b()
[5]
>>> b()
[5, 5]
在我看来,设计决策似乎与将参数范围放置在何处有关:在函数内部还是“一起”使用?
在函数内部进行绑定将意味着x
在调用该函数(未定义)时,该绑定实际上已绑定到指定的默认值,这会带来深层的缺陷:def
从绑定的一部分(即函数对象)将在定义时发生,部分(默认参数的分配)将在函数调用时发生。
实际行为更加一致:执行该行时将评估该行的所有内容,即在函数定义时进行评估。
Anyone tinkering with Python long enough has been bitten (or torn to pieces) by the following issue:
def foo(a=[]):
a.append(5)
return a
Python novices would expect this function to always return a list with only one element: [5]
. The result is instead very different, and very astonishing (for a novice):
>>> foo()
[5]
>>> foo()
[5, 5]
>>> foo()
[5, 5, 5]
>>> foo()
[5, 5, 5, 5]
>>> foo()
A manager of mine once had his first encounter with this feature, and called it “a dramatic design flaw” of the language. I replied that the behavior had an underlying explanation, and it is indeed very puzzling and unexpected if you don’t understand the internals. However, I was not able to answer (to myself) the following question: what is the reason for binding the default argument at function definition, and not at function execution? I doubt the experienced behavior has a practical use (who really used static variables in C, without breeding bugs?)
Edit:
Baczek made an interesting example. Together with most of your comments and Utaal’s in particular, I elaborated further:
>>> def a():
... print("a executed")
... return []
...
>>>
>>> def b(x=a()):
... x.append(5)
... print(x)
...
a executed
>>> b()
[5]
>>> b()
[5, 5]
To me, it seems that the design decision was relative to where to put the scope of parameters: inside the function or “together” with it?
Doing the binding inside the function would mean that x
is effectively bound to the specified default when the function is called, not defined, something that would present a deep flaw: the def
line would be “hybrid” in the sense that part of the binding (of the function object) would happen at definition, and part (assignment of default parameters) at function invocation time.
The actual behavior is more consistent: everything of that line gets evaluated when that line is executed, meaning at function definition.
回答 0
实际上,这不是设计缺陷,也不是由于内部因素或性能所致。
这完全是因为Python中的函数是一流的对象,而不仅仅是一段代码。
一旦您想到这种方式,就完全有道理了:函数是根据其定义求值的对象;默认参数属于“成员数据”,因此它们的状态可能会从一个调用更改为另一个调用-完全与其他任何对象一样。
无论如何,Effbot 在Python的Default Parameter Values中都很好地解释了这种现象的原因。
我发现它很清晰,我真的建议您阅读它,以更好地了解函数对象的工作原理。
Actually, this is not a design flaw, and it is not because of internals, or performance.
It comes simply from the fact that functions in Python are first-class objects, and not only a piece of code.
As soon as you get to think into this way, then it completely makes sense: a function is an object being evaluated on its definition; default parameters are kind of “member data” and therefore their state may change from one call to the other – exactly as in any other object.
In any case, Effbot has a very nice explanation of the reasons for this behavior in Default Parameter Values in Python.
I found it very clear, and I really suggest reading it for a better knowledge of how function objects work.
回答 1
假设您有以下代码
fruits = ("apples", "bananas", "loganberries")
def eat(food=fruits):
...
当我看到eat的声明时,最令人吃惊的事情是认为,如果没有给出第一个参数,它将等于元组 ("apples", "bananas", "loganberries")
但是,假设稍后在代码中,我做类似
def some_random_function():
global fruits
fruits = ("blueberries", "mangos")
然后,如果默认参数是在函数执行时绑定的,而不是在函数声明时绑定的,那么我会以一种非常糟糕的方式惊讶地发现结果已经改变。与发现foo
上面的功能正在使列表发生变化相比,这将使IMO更加令人惊讶。
真正的问题在于可变变量,所有语言都在一定程度上存在此问题。这是一个问题:假设在Java中,我有以下代码:
StringBuffer s = new StringBuffer("Hello World!");
Map<StringBuffer,Integer> counts = new HashMap<StringBuffer,Integer>();
counts.put(s, 5);
s.append("!!!!");
System.out.println( counts.get(s) ); // does this work?
现在,我的地图StringBuffer
在放入地图时会使用密钥的值吗,还是通过引用存储密钥?无论哪种方式,都会有人感到惊讶。尝试Map
使用与其放入对象的值相同的值从对象中取出对象的人,或者即使他们使用的键实际上是同一个对象,似乎也无法检索其对象的人用来将其放入地图中(这实际上就是Python不允许将其可变的内置数据类型用作字典键的原因)。
您的示例很好地说明了Python新手会感到惊讶和被咬的情况。但是我认为,如果我们“解决”这个问题,那只会造成一种不同的情况,那就是被它们咬住,而且这种情况甚至不那么直观。而且,在处理可变变量时总是如此。您总是遇到这样的情况:根据编写的代码,某人可以直观地预期一种或相反的行为。
我个人喜欢Python当前的方法:定义函数时会评估默认函数参数,而该对象始终是默认对象。我想他们可以使用空列表来特殊情况,但是这种特殊的大小写会引起更多的惊讶,更不用说向后不兼容了。
Suppose you have the following code
fruits = ("apples", "bananas", "loganberries")
def eat(food=fruits):
...
When I see the declaration of eat, the least astonishing thing is to think that if the first parameter is not given, that it will be equal to the tuple ("apples", "bananas", "loganberries")
However, supposed later on in the code, I do something like
def some_random_function():
global fruits
fruits = ("blueberries", "mangos")
then if default parameters were bound at function execution rather than function declaration then I would be astonished (in a very bad way) to discover that fruits had been changed. This would be more astonishing IMO than discovering that your foo
function above was mutating the list.
The real problem lies with mutable variables, and all languages have this problem to some extent. Here’s a question: suppose in Java I have the following code:
StringBuffer s = new StringBuffer("Hello World!");
Map<StringBuffer,Integer> counts = new HashMap<StringBuffer,Integer>();
counts.put(s, 5);
s.append("!!!!");
System.out.println( counts.get(s) ); // does this work?
Now, does my map use the value of the StringBuffer
key when it was placed into the map, or does it store the key by reference? Either way, someone is astonished; either the person who tried to get the object out of the Map
using a value identical to the one they put it in with, or the person who can’t seem to retrieve their object even though the key they’re using is literally the same object that was used to put it into the map (this is actually why Python doesn’t allow its mutable built-in data types to be used as dictionary keys).
Your example is a good one of a case where Python newcomers will be surprised and bitten. But I’d argue that if we “fixed” this, then that would only create a different situation where they’d be bitten instead, and that one would be even less intuitive. Moreover, this is always the case when dealing with mutable variables; you always run into cases where someone could intuitively expect one or the opposite behavior depending on what code they’re writing.
I personally like Python’s current approach: default function arguments are evaluated when the function is defined and that object is always the default. I suppose they could special-case using an empty list, but that kind of special casing would cause even more astonishment, not to mention be backwards incompatible.
回答 2
文档的相关部分:
执行功能定义时,默认参数值从左到右评估。这意味着,在定义函数时,表达式将被计算一次,并且每次调用均使用相同的“预计算”值。这对于理解默认参数是可变对象(例如列表或字典)时尤其重要:如果函数修改了该对象(例如,通过将项目附加到列表中),则默认值实际上已被修改。这通常不是预期的。解决此问题的方法是使用None
默认值,并在函数主体中显式测试它,例如:
def whats_on_the_telly(penguin=None):
if penguin is None:
penguin = []
penguin.append("property of the zoo")
return penguin
The relevant part of the documentation:
Default parameter values are evaluated from left to right when the function definition is executed. This means that the expression is evaluated once, when the function is defined, and that the same “pre-computed” value is used for each call. This is especially important to understand when a default parameter is a mutable object, such as a list or a dictionary: if the function modifies the object (e.g. by appending an item to a list), the default value is in effect modified. This is generally not what was intended. A way around this is to use None
as the default, and explicitly test for it in the body of the function, e.g.:
def whats_on_the_telly(penguin=None):
if penguin is None:
penguin = []
penguin.append("property of the zoo")
return penguin
回答 3
我对Python解释器的内部运作一无所知(而且我也不是编译器和解释器的专家),所以如果我提出任何不明智或不可能的事情,也不要怪我。
假设python对象是可变的,我认为在设计默认参数时应考虑到这一点。实例化列表时:
a = []
您希望获得由引用的新列表a
。
为什么要a=[]
在
def x(a=[]):
在函数定义而不是调用上实例化一个新列表?就像您要问“如果用户不提供参数,则实例化一个新列表并像调用方产生的那样使用它”。我认为这是模棱两可的:
def x(a=datetime.datetime.now()):
用户,是否要a
默认为定义或执行时的日期时间x
?在这种情况下,与上一个例子一样,我将保持相同的行为,就像默认参数“赋值”是该函数的第一条指令(datetime.now()
在函数调用时调用)一样。另一方面,如果用户想要定义时间映射,则可以编写:
b = datetime.datetime.now()
def x(a=b):
我知道,我知道:那是一个封闭。另外,Python可以提供一个关键字来强制定义时间绑定:
def x(static a=b):
I know nothing about the Python interpreter inner workings (and I’m not an expert in compilers and interpreters either) so don’t blame me if I propose anything unsensible or impossible.
Provided that python objects are mutable I think that this should be taken into account when designing the default arguments stuff.
When you instantiate a list:
a = []
you expect to get a new list referenced by a
.
Why should the a=[]
in
def x(a=[]):
instantiate a new list on function definition and not on invocation?
It’s just like you’re asking “if the user doesn’t provide the argument then instantiate a new list and use it as if it was produced by the caller”.
I think this is ambiguous instead:
def x(a=datetime.datetime.now()):
user, do you want a
to default to the datetime corresponding to when you’re defining or executing x
?
In this case, as in the previous one, I’ll keep the same behaviour as if the default argument “assignment” was the first instruction of the function (datetime.now()
called on function invocation).
On the other hand, if the user wanted the definition-time mapping he could write:
b = datetime.datetime.now()
def x(a=b):
I know, I know: that’s a closure. Alternatively Python might provide a keyword to force definition-time binding:
def x(static a=b):
回答 4
好吧,原因很简单:绑定是在执行代码时完成的,而函数定义是在执行时定义的。
比较一下:
class BananaBunch:
bananas = []
def addBanana(self, banana):
self.bananas.append(banana)
此代码遭受完全相同的意外情况。bananas是一个类属性,因此,当您向其中添加内容时,它将被添加到该类的所有实例中。原因是完全一样的。
只是“它是如何工作的”,要使其在函数情况下以不同的方式工作可能会很复杂,而在类情况下则可能是不可能的,或者至少会大大减慢对象实例化,因为您必须保留类代码并在创建对象时执行它。
是的,这是意外的。但是一旦一分钱下降,它就完全适合Python的工作方式。实际上,这是一个很好的教学辅助工具,一旦您了解了为什么会发生这种情况,就可以更好地使用python。
也就是说,它应该在任何优秀的Python教程中都非常突出。因为正如您提到的,每个人迟早都会遇到此问题。
Well, the reason is quite simply that bindings are done when code is executed, and the function definition is executed, well… when the functions is defined.
Compare this:
class BananaBunch:
bananas = []
def addBanana(self, banana):
self.bananas.append(banana)
This code suffers from the exact same unexpected happenstance. bananas is a class attribute, and hence, when you add things to it, it’s added to all instances of that class. The reason is exactly the same.
It’s just “How It Works”, and making it work differently in the function case would probably be complicated, and in the class case likely impossible, or at least slow down object instantiation a lot, as you would have to keep the class code around and execute it when objects are created.
Yes, it is unexpected. But once the penny drops, it fits in perfectly with how Python works in general. In fact, it’s a good teaching aid, and once you understand why this happens, you’ll grok python much better.
That said it should feature prominently in any good Python tutorial. Because as you mention, everyone runs into this problem sooner or later.
回答 5
你为什么不自省?
我真的很惊讶,没有人对可调用对象执行Python提供的深刻的自省(2
并3
适用)。
给定一个简单的小函数,func
定义为:
>>> def func(a = []):
... a.append(5)
当Python遇到它时,它要做的第一件事就是对其进行编译,以便code
为此函数创建一个对象。完成此编译步骤后,Python 计算 *,然后将默认参数([]
此处为空列表)存储在函数对象本身中。正如上面提到的最高答案:a
现在可以将列表视为函数的成员func
。
因此,让我们进行一些自省,前后检查清单如何在内部扩展在函数对象。我Python 3.x
为此使用,对于Python 2同样适用(在python 2中使用__defaults__
或func_defaults
;是的,同一事物有两个名称)。
执行前的功能:
>>> def func(a = []):
... a.append(5)
...
Python执行此定义后,它将采用指定的任何默认参数(a = []
在此处)并将其填充到__defaults__
函数对象的属性中(相关部分:Callables):
>>> func.__defaults__
([],)
好的,所以__defaults__
正如您期望的那样,将空列表作为中的单个条目。
执行后功能:
现在执行以下功能:
>>> func()
现在,让我们__defaults__
再次看看:
>>> func.__defaults__
([5],)
吃惊吗 对象内部的值改变了!现在,对该函数的连续调用将简单地追加到该嵌入式list
对象:
>>> func(); func(); func()
>>> func.__defaults__
([5, 5, 5, 5],)
因此,出现“缺陷”的原因是因为默认参数是函数对象的一部分。这里没有什么奇怪的事情,这一切都令人惊讶。
解决此问题的常见方法是使用None
默认值,然后在函数体内进行初始化:
def func(a = None):
# or: a = [] if a is None else a
if a is None:
a = []
由于函数主体每次都会重新执行,因此如果没有为传递任何参数,则始终会得到一个新的空列表a
。
要进一步验证in中的列表__defaults__
与函数中使用的列表相同,func
您只需更改函数以返回函数体内使用id
的列表的列表即可a
。然后,把它比作在列表中__defaults__
(位置[0]
在__defaults__
),你会看到这些确实是指的同一个列表实例:
>>> def func(a = []):
... a.append(5)
... return id(a)
>>>
>>> id(func.__defaults__[0]) == func()
True
具备内省的力量!
*要验证在函数编译期间Python是否评估默认参数,请尝试执行以下命令:
def bar(a=input('Did you just see me without calling the function?')):
pass # use raw_input in Py2
您会注意到,input()
在构建函数并将其绑定到名称的过程完成之前会被调用bar
。
Why don’t you introspect?
I’m really surprised no one has performed the insightful introspection offered by Python (2
and 3
apply) on callables.
Given a simple little function func
defined as:
>>> def func(a = []):
... a.append(5)
When Python encounters it, the first thing it will do is compile it in order to create a code
object for this function. While this compilation step is done, Python evaluates* and then stores the default arguments (an empty list []
here) in the function object itself. As the top answer mentioned: the list a
can now be considered a member of the function func
.
So, let’s do some introspection, a before and after to examine how the list gets expanded inside the function object. I’m using Python 3.x
for this, for Python 2 the same applies (use __defaults__
or func_defaults
in Python 2; yes, two names for the same thing).
Function Before Execution:
>>> def func(a = []):
... a.append(5)
...
After Python executes this definition it will take any default parameters specified (a = []
here) and cram them in the __defaults__
attribute for the function object (relevant section: Callables):
>>> func.__defaults__
([],)
O.k, so an empty list as the single entry in __defaults__
, just as expected.
Function After Execution:
Let’s now execute this function:
>>> func()
Now, let’s see those __defaults__
again:
>>> func.__defaults__
([5],)
Astonished? The value inside the object changes! Consecutive calls to the function will now simply append to that embedded list
object:
>>> func(); func(); func()
>>> func.__defaults__
([5, 5, 5, 5],)
So, there you have it, the reason why this ‘flaw’ happens, is because default arguments are part of the function object. There’s nothing weird going on here, it’s all just a bit surprising.
The common solution to combat this is to use None
as the default and then initialize in the function body:
def func(a = None):
# or: a = [] if a is None else a
if a is None:
a = []
Since the function body is executed anew each time, you always get a fresh new empty list if no argument was passed for a
.
To further verify that the list in __defaults__
is the same as that used in the function func
you can just change your function to return the id
of the list a
used inside the function body. Then, compare it to the list in __defaults__
(position [0]
in __defaults__
) and you’ll see how these are indeed refering to the same list instance:
>>> def func(a = []):
... a.append(5)
... return id(a)
>>>
>>> id(func.__defaults__[0]) == func()
True
All with the power of introspection!
* To verify that Python evaluates the default arguments during compilation of the function, try executing the following:
def bar(a=input('Did you just see me without calling the function?')):
pass # use raw_input in Py2
as you’ll notice, input()
is called before the process of building the function and binding it to the name bar
is made.
回答 6
我曾经认为在运行时创建对象是更好的方法。我现在不太确定,因为您确实失去了一些有用的功能,尽管不管是为了防止新手混淆,还是值得的。这样做的缺点是:
1.表现
def foo(arg=something_expensive_to_compute())):
...
如果使用了调用时评估,那么每次使用不带参数的函数时都会调用昂贵的函数。您要么为每个调用付出昂贵的代价,要么需要在外部手动缓存该值,从而污染您的命名空间并增加冗长性。
2.强制绑定参数
一个有用的技巧是在创建lambda时将lambda的参数绑定到变量的当前绑定。例如:
funcs = [ lambda i=i: i for i in range(10)]
这将返回分别返回0、1、2、3 …的函数列表。如果更改了行为,则它们将绑定i
到i 的调用时值,因此您将获得所有返回的函数的列表9
。
否则,实现此目的的唯一方法是使用i绑定创建另一个闭包,即:
def make_func(i): return lambda: i
funcs = [make_func(i) for i in range(10)]
3.内省
考虑以下代码:
def foo(a='test', b=100, c=[]):
print a,b,c
我们可以使用以下inspect
模块获取有关参数和默认值的信息:
>>> inspect.getargspec(foo)
(['a', 'b', 'c'], None, None, ('test', 100, []))
该信息对于文档生成,元编程,装饰器等非常有用。
现在,假设可以更改默认行为,使其等效于:
_undefined = object() # sentinel value
def foo(a=_undefined, b=_undefined, c=_undefined)
if a is _undefined: a='test'
if b is _undefined: b=100
if c is _undefined: c=[]
但是,我们失去了自省的能力,无法看到默认参数是。由于尚未构造对象,因此,如果不实际调用函数,就无法拥有它们。我们最好的办法是存储源代码,并将其作为字符串返回。
I used to think that creating the objects at runtime would be the better approach. I’m less certain now, since you do lose some useful features, though it may be worth it regardless simply to prevent newbie confusion. The disadvantages of doing so are:
1. Performance
def foo(arg=something_expensive_to_compute())):
...
If call-time evaluation is used, then the expensive function is called every time your function is used without an argument. You’d either pay an expensive price on each call, or need to manually cache the value externally, polluting your namespace and adding verbosity.
2. Forcing bound parameters
A useful trick is to bind parameters of a lambda to the current binding of a variable when the lambda is created. For example:
funcs = [ lambda i=i: i for i in range(10)]
This returns a list of functions that return 0,1,2,3… respectively. If the behaviour is changed, they will instead bind i
to the call-time value of i, so you would get a list of functions that all returned 9
.
The only way to implement this otherwise would be to create a further closure with the i bound, ie:
def make_func(i): return lambda: i
funcs = [make_func(i) for i in range(10)]
3. Introspection
Consider the code:
def foo(a='test', b=100, c=[]):
print a,b,c
We can get information about the arguments and defaults using the inspect
module, which
>>> inspect.getargspec(foo)
(['a', 'b', 'c'], None, None, ('test', 100, []))
This information is very useful for things like document generation, metaprogramming, decorators etc.
Now, suppose the behaviour of defaults could be changed so that this is the equivalent of:
_undefined = object() # sentinel value
def foo(a=_undefined, b=_undefined, c=_undefined)
if a is _undefined: a='test'
if b is _undefined: b=100
if c is _undefined: c=[]
However, we’ve lost the ability to introspect, and see what the default arguments are. Because the objects haven’t been constructed, we can’t ever get hold of them without actually calling the function. The best we could do is to store off the source code and return that as a string.
回答 7
捍卫Python的5分
简单性:行为在以下意义上是简单的:大多数人只会陷入一次陷阱,而不是几次。
一致性:Python 始终传递对象,而不传递名称。显然,默认参数是函数标题的一部分(而不是函数主体)。因此,应该在模块加载时(并且仅在模块加载时,除非嵌套)进行评估,而不是在函数调用时进行评估。
用途:正如Frederik Lundh在对“ Python中的默认参数值”的解释中所指出的那样,当前行为对于高级编程可能非常有用。(请谨慎使用。)
足够的文档:在最基本的Python文档中,该教程在“更多关于定义函数”部分的第一小节中
以“重要警告”的形式大声宣布该问题。警告甚至使用黑体字,很少在标题之外使用。RTFM:阅读精美的手册。
元学习:陷入陷阱实际上是一个非常有用的时刻(至少如果您是一个反思型学习者),因为您随后将更好地理解上面的“一致性”这一点,这将教给您很多有关Python的知识。
5 points in defense of Python
Simplicity: The behavior is simple in the following sense:
Most people fall into this trap only once, not several times.
Consistency: Python always passes objects, not names.
The default parameter is, obviously, part of the function
heading (not the function body). It therefore ought to be evaluated
at module load time (and only at module load time, unless nested), not
at function call time.
Usefulness: As Frederik Lundh points out in his explanation
of “Default Parameter Values in Python”, the
current behavior can be quite useful for advanced programming.
(Use sparingly.)
Sufficient documentation: In the most basic Python documentation,
the tutorial, the issue is loudly announced as
an “Important warning” in the first subsection of Section
“More on Defining Functions”.
The warning even uses boldface,
which is rarely applied outside of headings.
RTFM: Read the fine manual.
Meta-learning: Falling into the trap is actually a very
helpful moment (at least if you are a reflective learner),
because you will subsequently better understand the point
“Consistency” above and that will
teach you a great deal about Python.
回答 8
此行为很容易通过以下方式解释:
- 函数(类等)声明仅执行一次,创建所有默认值对象
- 一切都通过引用传递
所以:
def x(a=0, b=[], c=[], d=0):
a = a + 1
b = b + [1]
c.append(1)
print a, b, c
a
不变-每个分配调用都会创建一个新的int对象-打印新对象
b
不变-从默认值构建新数组并打印
c
更改-对同一对象执行操作-并打印
This behavior is easy explained by:
- function (class etc.) declaration is executed only once, creating all default value objects
- everything is passed by reference
So:
def x(a=0, b=[], c=[], d=0):
a = a + 1
b = b + [1]
c.append(1)
print a, b, c
a
doesn’t change – every assignment call creates new int object – new object is printed
b
doesn’t change – new array is build from default value and printed
c
changes – operation is performed on same object – and it is printed
回答 9
您要问的是为什么这样:
def func(a=[], b = 2):
pass
在内部不等同于此:
def func(a=None, b = None):
a_default = lambda: []
b_default = lambda: 2
def actual_func(a=None, b=None):
if a is None: a = a_default()
if b is None: b = b_default()
return actual_func
func = func()
除了显式调用func(None,None)的情况外,我们将忽略它。
换句话说,为什么不存储默认参数,而不是评估默认参数,并在调用函数时对其进行评估?
一个答案可能就在那里-它可以有效地将具有默认参数的每个函数转换为闭包。即使全部隐藏在解释器中,而不是完全关闭,数据也必须存储在某个地方。它将变慢,并使用更多的内存。
What you’re asking is why this:
def func(a=[], b = 2):
pass
isn’t internally equivalent to this:
def func(a=None, b = None):
a_default = lambda: []
b_default = lambda: 2
def actual_func(a=None, b=None):
if a is None: a = a_default()
if b is None: b = b_default()
return actual_func
func = func()
except for the case of explicitly calling func(None, None), which we’ll ignore.
In other words, instead of evaluating default parameters, why not store each of them, and evaluate them when the function is called?
One answer is probably right there–it would effectively turn every function with default parameters into a closure. Even if it’s all hidden away in the interpreter and not a full-blown closure, the data’s got to be stored somewhere. It’d be slower and use more memory.
回答 10
1)所谓的“可变默认参数”问题通常是一个特殊的示例,它表明:
“所有带有此问题的函数在实际参数上也遭受类似的副作用,”,
这违反了函数编程的规则,通常不可思议,应将两者固定在一起。
例:
def foo(a=[]): # the same problematic function
a.append(5)
return a
>>> somevar = [1, 2] # an example without a default parameter
>>> foo(somevar)
[1, 2, 5]
>>> somevar
[1, 2, 5] # usually expected [1, 2]
解决方案:一个副本
的绝对安全解决方案是copy
或deepcopy
输入对象进行操作,然后对副本执行任何操作。
def foo(a=[]):
a = a[:] # a copy
a.append(5)
return a # or everything safe by one line: "return a + [5]"
许多内置的可变类型的复制方法如some_dict.copy()
或some_set.copy()
,可以像somelist[:]
或那样轻松复制list(some_list)
。每个对象也可以通过以下方式复制copy.copy(any_object)
或更彻底地复制:copy.deepcopy()
(后者有用如果可变对象是从可变对象构成)。有些对象从根本上是基于副作用的,例如“文件”对象,并且不能通过复制有意义地进行复制。复制中
示例问题 类似的SO问题的
class Test(object): # the original problematic class
def __init__(self, var1=[]):
self._var1 = var1
somevar = [1, 2] # an example without a default parameter
t1 = Test(somevar)
t2 = Test(somevar)
t1._var1.append([1])
print somevar # [1, 2, [1]] but usually expected [1, 2]
print t2._var1 # [1, 2, [1]] but usually expected [1, 2]
不应将其保存在任何公共场所此函数返回的实例的属性中。(假设实例的私有属性不应按惯例从此类或子类的外部进行修改。即为_var1
私有属性)
结论:
输入参数对象不应就地修改(突变),也不应将其绑定到函数返回的对象中。(如果我们更喜欢强烈建议没有副作用的编程。请参见Wiki上的“副作用”(在此上下文中,前两段是相关内容)。)
2)
仅当需要对实际参数产生副作用但对默认参数没有副作用时,有用的解决方案是def ...(var1=None):
if var1 is None:
var1 = []
More。
3)在某些情况下,默认参数的可变行为很有用。
1) The so-called problem of “Mutable Default Argument” is in general a special example demonstrating that:
“All functions with this problem suffer also from similar side effect problem on the actual parameter,”
That is against the rules of functional programming, usually undesiderable and should be fixed both together.
Example:
def foo(a=[]): # the same problematic function
a.append(5)
return a
>>> somevar = [1, 2] # an example without a default parameter
>>> foo(somevar)
[1, 2, 5]
>>> somevar
[1, 2, 5] # usually expected [1, 2]
Solution: a copy
An absolutely safe solution is to copy
or deepcopy
the input object first and then to do whatever with the copy.
def foo(a=[]):
a = a[:] # a copy
a.append(5)
return a # or everything safe by one line: "return a + [5]"
Many builtin mutable types have a copy method like some_dict.copy()
or some_set.copy()
or can be copied easy like somelist[:]
or list(some_list)
. Every object can be also copied by copy.copy(any_object)
or more thorough by copy.deepcopy()
(the latter useful if the mutable object is composed from mutable objects). Some objects are fundamentally based on side effects like “file” object and can not be meaningfully reproduced by copy. copying
Example problem for a similar SO question
class Test(object): # the original problematic class
def __init__(self, var1=[]):
self._var1 = var1
somevar = [1, 2] # an example without a default parameter
t1 = Test(somevar)
t2 = Test(somevar)
t1._var1.append([1])
print somevar # [1, 2, [1]] but usually expected [1, 2]
print t2._var1 # [1, 2, [1]] but usually expected [1, 2]
It shouldn’t be neither saved in any public attribute of an instance returned by this function. (Assuming that private attributes of instance should not be modified from outside of this class or subclasses by convention. i.e. _var1
is a private attribute )
Conclusion:
Input parameters objects shouldn’t be modified in place (mutated) nor they should not be binded into an object returned by the function. (If we prefere programming without side effects which is strongly recommended. see Wiki about “side effect” (The first two paragraphs are relevent in this context.)
.)
2)
Only if the side effect on the actual parameter is required but unwanted on the default parameter then the useful solution is def ...(var1=None):
if var1 is None:
var1 = []
More..
3) In some cases is the mutable behavior of default parameters useful.
回答 11
实际上,这与默认值无关,除了在编写具有可变默认值的函数时,它经常会作为意外行为出现。
>>> def foo(a):
a.append(5)
print a
>>> a = [5]
>>> foo(a)
[5, 5]
>>> foo(a)
[5, 5, 5]
>>> foo(a)
[5, 5, 5, 5]
>>> foo(a)
[5, 5, 5, 5, 5]
此代码中没有默认值,但是您遇到了完全相同的问题。
问题是当调用者不希望这样做时,foo
正在修改从调用者传入的可变变量。如果函数被调用类似,这样的代码会很好append_5
; 那么调用者将调用该函数以修改其传入的值,并且行为将是预期的。但是这样的函数不太可能采用默认参数,并且可能不会返回列表(因为调用者已经具有对该列表的引用;它只是传入了该列表)。
foo
具有默认参数的原件不应修改a
是显式传递还是获得默认值。除非上下文/名称/文档中明确指出应该修改参数,否则您的代码应仅保留可变参数。将传入的可变值作为参数用作本地临时对象是一个极坏的主意,无论我们是否使用Python,是否涉及默认参数。
如果您需要在计算内容的过程中破坏性地操作本地临时文件,并且需要从参数值开始进行操作,则需要进行复制。
This actually has nothing to do with default values, other than that it often comes up as an unexpected behaviour when you write functions with mutable default values.
>>> def foo(a):
a.append(5)
print a
>>> a = [5]
>>> foo(a)
[5, 5]
>>> foo(a)
[5, 5, 5]
>>> foo(a)
[5, 5, 5, 5]
>>> foo(a)
[5, 5, 5, 5, 5]
No default values in sight in this code, but you get exactly the same problem.
The problem is that foo
is modifying a mutable variable passed in from the caller, when the caller doesn’t expect this. Code like this would be fine if the function was called something like append_5
; then the caller would be calling the function in order to modify the value they pass in, and the behaviour would be expected. But such a function would be very unlikely to take a default argument, and probably wouldn’t return the list (since the caller already has a reference to that list; the one it just passed in).
Your original foo
, with a default argument, shouldn’t be modifying a
whether it was explicitly passed in or got the default value. Your code should leave mutable arguments alone unless it is clear from the context/name/documentation that the arguments are supposed to be modified. Using mutable values passed in as arguments as local temporaries is an extremely bad idea, whether we’re in Python or not and whether there are default arguments involved or not.
If you need to destructively manipulate a local temporary in the course of computing something, and you need to start your manipulation from an argument value, you need to make a copy.
回答 12
话题已经很忙了,但是根据我在这里所读到的内容,以下内容帮助我意识到了它在内部的工作方式:
def bar(a=[]):
print id(a)
a = a + [1]
print id(a)
return a
>>> bar()
4484370232
4484524224
[1]
>>> bar()
4484370232
4484524152
[1]
>>> bar()
4484370232 # Never change, this is 'class property' of the function
4484523720 # Always a new object
[1]
>>> id(bar.func_defaults[0])
4484370232
Already busy topic, but from what I read here, the following helped me realizing how it’s working internally:
def bar(a=[]):
print id(a)
a = a + [1]
print id(a)
return a
>>> bar()
4484370232
4484524224
[1]
>>> bar()
4484370232
4484524152
[1]
>>> bar()
4484370232 # Never change, this is 'class property' of the function
4484523720 # Always a new object
[1]
>>> id(bar.func_defaults[0])
4484370232
回答 13
这是一项性能优化。通过此功能,您认为这两个函数调用中哪个更快?
def print_tuple(some_tuple=(1,2,3)):
print some_tuple
print_tuple() #1
print_tuple((1,2,3)) #2
我会给你一个提示。这是反汇编(请参阅http://docs.python.org/library/dis.html):
#
1个
0 LOAD_GLOBAL 0 (print_tuple)
3 CALL_FUNCTION 0
6 POP_TOP
7 LOAD_CONST 0 (None)
10 RETURN_VALUE
#
2
0 LOAD_GLOBAL 0 (print_tuple)
3 LOAD_CONST 4 ((1, 2, 3))
6 CALL_FUNCTION 1
9 POP_TOP
10 LOAD_CONST 0 (None)
13 RETURN_VALUE
我怀疑经验丰富的行为是否具有实际用途(谁真正在C中使用了静态变量,却没有滋生bug?)
正如你所看到的,是用一成不变的默认参数时提高性能。如果这是一个经常调用的函数,或者默认参数需要花费很长时间来构造,那么这可能会有所不同。另外,请记住,Python不是C。在C中,您拥有几乎免费的常量。在Python中,您没有此好处。
It’s a performance optimization. As a result of this functionality, which of these two function calls do you think is faster?
def print_tuple(some_tuple=(1,2,3)):
print some_tuple
print_tuple() #1
print_tuple((1,2,3)) #2
I’ll give you a hint. Here’s the disassembly (see http://docs.python.org/library/dis.html):
#
1
0 LOAD_GLOBAL 0 (print_tuple)
3 CALL_FUNCTION 0
6 POP_TOP
7 LOAD_CONST 0 (None)
10 RETURN_VALUE
#
2
0 LOAD_GLOBAL 0 (print_tuple)
3 LOAD_CONST 4 ((1, 2, 3))
6 CALL_FUNCTION 1
9 POP_TOP
10 LOAD_CONST 0 (None)
13 RETURN_VALUE
I doubt the experienced behavior has a practical use (who really used static variables in C, without breeding bugs ?)
As you can see, there is a performance benefit when using immutable default arguments. This can make a difference if it’s a frequently called function or the default argument takes a long time to construct. Also, bear in mind that Python isn’t C. In C you have constants that are pretty much free. In Python you don’t have this benefit.
回答 14
Python:可变默认参数
在函数编译为函数对象时会评估默认参数。当函数使用该函数时,该函数多次使用它们,它们仍然是同一对象。
当它们是可变的时,当发生突变(例如,通过向其添加元素)时,它们将在连续调用时保持突变。
它们保持变异,因为它们每次都是相同的对象。
等效代码:
由于列表是在编译和实例化函数对象时绑定到函数的,因此:
def foo(mutable_default_argument=[]): # make a list the default argument
"""function that uses a list"""
几乎完全等同于此:
_a_list = [] # create a list in the globals
def foo(mutable_default_argument=_a_list): # make it the default argument
"""function that uses a list"""
del _a_list # remove globals name binding
示范
这是一个演示-您可以在每次引用它们时验证它们是否是同一对象
- 看到列表是在函数完成编译为函数对象之前创建的,
- 观察到每次引用列表时ID都是相同的,
- 观察到第二次调用使用列表的函数时列表保持不变,
- 观察从源打印输出的顺序(我方便地为您编号):
example.py
print('1. Global scope being evaluated')
def create_list():
'''noisily create a list for usage as a kwarg'''
l = []
print('3. list being created and returned, id: ' + str(id(l)))
return l
print('2. example_function about to be compiled to an object')
def example_function(default_kwarg1=create_list()):
print('appending "a" in default default_kwarg1')
default_kwarg1.append("a")
print('list with id: ' + str(id(default_kwarg1)) +
' - is now: ' + repr(default_kwarg1))
print('4. example_function compiled: ' + repr(example_function))
if __name__ == '__main__':
print('5. calling example_function twice!:')
example_function()
example_function()
并使用以下命令运行它python example.py
:
1. Global scope being evaluated
2. example_function about to be compiled to an object
3. list being created and returned, id: 140502758808032
4. example_function compiled: <function example_function at 0x7fc9590905f0>
5. calling example_function twice!:
appending "a" in default default_kwarg1
list with id: 140502758808032 - is now: ['a']
appending "a" in default default_kwarg1
list with id: 140502758808032 - is now: ['a', 'a']
这是否违反了“最少惊讶”的原则?
这种执行顺序经常会使Python的新用户感到困惑。如果您了解Python执行模型,那么就可以预期了。
对新Python用户的一般说明:
但这就是为什么对新用户的通常指示是改为创建其默认参数,如下所示:
def example_function_2(default_kwarg=None):
if default_kwarg is None:
default_kwarg = []
这使用None单例作为哨兵对象来告诉函数我们是否获得了默认值以外的参数。如果没有参数,则实际上我们想使用一个新的空列表[]
作为默认值。
正如关于控制流的教程部分所述:
如果您不希望在后续调用之间共享默认值,则可以这样编写函数:
def f(a, L=None):
if L is None:
L = []
L.append(a)
return L
Python: The Mutable Default Argument
Default arguments get evaluated at the time the function is compiled into a function object. When used by the function, multiple times by that function, they are and remain the same object.
When they are mutable, when mutated (for example, by adding an element to it) they remain mutated on consecutive calls.
They stay mutated because they are the same object each time.
Equivalent code:
Since the list is bound to the function when the function object is compiled and instantiated, this:
def foo(mutable_default_argument=[]): # make a list the default argument
"""function that uses a list"""
is almost exactly equivalent to this:
_a_list = [] # create a list in the globals
def foo(mutable_default_argument=_a_list): # make it the default argument
"""function that uses a list"""
del _a_list # remove globals name binding
Demonstration
Here’s a demonstration – you can verify that they are the same object each time they are referenced by
- seeing that the list is created before the function has finished compiling to a function object,
- observing that the id is the same each time the list is referenced,
- observing that the list stays changed when the function that uses it is called a second time,
- observing the order in which the output is printed from the source (which I conveniently numbered for you):
example.py
print('1. Global scope being evaluated')
def create_list():
'''noisily create a list for usage as a kwarg'''
l = []
print('3. list being created and returned, id: ' + str(id(l)))
return l
print('2. example_function about to be compiled to an object')
def example_function(default_kwarg1=create_list()):
print('appending "a" in default default_kwarg1')
default_kwarg1.append("a")
print('list with id: ' + str(id(default_kwarg1)) +
' - is now: ' + repr(default_kwarg1))
print('4. example_function compiled: ' + repr(example_function))
if __name__ == '__main__':
print('5. calling example_function twice!:')
example_function()
example_function()
and running it with python example.py
:
1. Global scope being evaluated
2. example_function about to be compiled to an object
3. list being created and returned, id: 140502758808032
4. example_function compiled: <function example_function at 0x7fc9590905f0>
5. calling example_function twice!:
appending "a" in default default_kwarg1
list with id: 140502758808032 - is now: ['a']
appending "a" in default default_kwarg1
list with id: 140502758808032 - is now: ['a', 'a']
Does this violate the principle of “Least Astonishment”?
This order of execution is frequently confusing to new users of Python. If you understand the Python execution model, then it becomes quite expected.
The usual instruction to new Python users:
But this is why the usual instruction to new users is to create their default arguments like this instead:
def example_function_2(default_kwarg=None):
if default_kwarg is None:
default_kwarg = []
This uses the None singleton as a sentinel object to tell the function whether or not we’ve gotten an argument other than the default. If we get no argument, then we actually want to use a new empty list, []
, as the default.
As the tutorial section on control flow says:
If you don’t want the default to be shared between subsequent calls,
you can write the function like this instead:
def f(a, L=None):
if L is None:
L = []
L.append(a)
return L
回答 15
最短的答案可能是“定义就是执行”,因此整个论点没有严格意义。作为更人为的示例,您可以引用以下内容:
def a(): return []
def b(x=a()):
print x
希望足以表明在def
语句执行时不执行默认参数表达式不是一件容易的事,或者说没有道理,或者两者兼而有之。
我同意,当您尝试使用默认构造函数时,这是一个陷阱。
The shortest answer would probably be “definition is execution”, therefore the whole argument makes no strict sense. As a more contrived example, you may cite this:
def a(): return []
def b(x=a()):
print x
Hopefully it’s enough to show that not executing the default argument expressions at the execution time of the def
statement isn’t easy or doesn’t make sense, or both.
I agree it’s a gotcha when you try to use default constructors, though.
回答 16
使用None的简单解决方法
>>> def bar(b, data=None):
... data = data or []
... data.append(b)
... return data
...
>>> bar(3)
[3]
>>> bar(3)
[3]
>>> bar(3)
[3]
>>> bar(3, [34])
[34, 3]
>>> bar(3, [34])
[34, 3]
A simple workaround using None
>>> def bar(b, data=None):
... data = data or []
... data.append(b)
... return data
...
>>> bar(3)
[3]
>>> bar(3)
[3]
>>> bar(3)
[3]
>>> bar(3, [34])
[34, 3]
>>> bar(3, [34])
[34, 3]
回答 17
如果考虑以下因素,这种行为就不足为奇了:
- 分配尝试时只读类属性的行为,并且
- 函数是对象(在接受的答案中有很好的解释)。
(2)的作用已在该线程中广泛讨论。(1)可能是令人惊讶的原因,因为这种行为在来自其他语言时不是“直观”的。
(1)在有关类的Python 教程中进行了描述。在尝试为只读类属性分配值时:
…在最内层作用域之外找到的所有变量都是只读的(尝试写入此类变量只会在最内层作用域内创建一个新的局部变量,而使名称相同的外层变量保持不变)。
回到原始示例并考虑以上几点:
def foo(a=[]):
a.append(5)
return a
这foo
是一个对象,a
是的属性foo
(位于foo.func_defs[0]
)。由于a
是列表,a
因此是可变的,因此是的读写属性foo
。实例化函数时,它将初始化为签名指定的空列表,并且只要函数对象存在,就可以进行读取和写入。
在foo
不覆盖默认值的情况下进行调用会使用中的默认值foo.func_defs
。在这种情况下,foo.func_defs[0]
用于a
功能对象的代码范围内。更改更改,a
更改foo.func_defs[0]
是foo
对象的一部分,并在foo
。
现在,将此与模拟其他语言的默认参数行为的文档示例进行比较,以便每次执行函数时都使用函数签名默认值:
def foo(a, L=None):
if L is None:
L = []
L.append(a)
return L
考虑到(1)和(2),可以看到为什么这样做可以实现所需的行为:
- 当
foo
功能对象被实例化,foo.func_defs[0]
被设置为None
,一个不可变的对象。
- 当使用默认值执行函数(
L
在函数调用中未指定参数)时,foo.func_defs[0]
(None
)在本地作用域中为L
。
- 在时
L = []
,分配不能在处成功foo.func_defs[0]
,因为该属性是只读的。
- 对于(1),还会
L
在本地范围内创建一个也命名为新的本地变量,并用于其余的函数调用。foo.func_defs[0]
因此对于以后的调用保持不变foo
。
This behavior is not surprising if you take the following into consideration:
- The behavior of read-only class attributes upon assignment attempts, and that
- Functions are objects (explained well in the accepted answer).
The role of (2) has been covered extensively in this thread. (1) is likely the astonishment causing factor, as this behavior is not “intuitive” when coming from other languages.
(1) is described in the Python tutorial on classes. In an attempt to assign a value to a read-only class attribute:
…all variables found outside of the innermost scope are
read-only (an attempt to write to such a variable will simply create a
new local variable in the innermost scope, leaving the identically
named outer variable unchanged).
Look back to the original example and consider the above points:
def foo(a=[]):
a.append(5)
return a
Here foo
is an object and a
is an attribute of foo
(available at foo.func_defs[0]
). Since a
is a list, a
is mutable and is thus a read-write attribute of foo
. It is initialized to the empty list as specified by the signature when the function is instantiated, and is available for reading and writing as long as the function object exists.
Calling foo
without overriding a default uses that default’s value from foo.func_defs
. In this case, foo.func_defs[0]
is used for a
within function object’s code scope. Changes to a
change foo.func_defs[0]
, which is part of the foo
object and persists between execution of the code in foo
.
Now, compare this to the example from the documentation on emulating the default argument behavior of other languages, such that the function signature defaults are used every time the function is executed:
def foo(a, L=None):
if L is None:
L = []
L.append(a)
return L
Taking (1) and (2) into account, one can see why this accomplishes the the desired behavior:
- When the
foo
function object is instantiated, foo.func_defs[0]
is set to None
, an immutable object.
- When the function is executed with defaults (with no parameter specified for
L
in the function call), foo.func_defs[0]
(None
) is available in the local scope as L
.
- Upon
L = []
, the assignment cannot succeed at foo.func_defs[0]
, because that attribute is read-only.
- Per (1), a new local variable also named
L
is created in the local scope and used for the remainder of the function call. foo.func_defs[0]
thus remains unchanged for future invocations of foo
.
回答 18
我将演示将默认列表值传递给函数的替代结构(与字典同样有效)。
正如其他人广泛评论的那样,list参数在定义时绑定到函数,而不是在执行时绑定。由于列表和字典是可变的,因此对该参数的任何更改都会影响对该函数的其他调用。结果,随后对该函数的调用将收到此共享列表,该共享列表可能已被对该函数的任何其他调用更改。更糟糕的是,两个参数同时使用了此函数的共享参数,而忽略了另一个参数所做的更改。
错误的方法(可能是…):
def foo(list_arg=[5]):
return list_arg
a = foo()
a.append(6)
>>> a
[5, 6]
b = foo()
b.append(7)
# The value of 6 appended to variable 'a' is now part of the list held by 'b'.
>>> b
[5, 6, 7]
# Although 'a' is expecting to receive 6 (the last element it appended to the list),
# it actually receives the last element appended to the shared list.
# It thus receives the value 7 previously appended by 'b'.
>>> a.pop()
7
您可以使用以下命令验证它们是同一对象id
:
>>> id(a)
5347866528
>>> id(b)
5347866528
Per Brett Slatkin的“有效的Python:59种编写更好的Python的特定方式”,第20项:使用None
和文档字符串指定动态默认参数(第48页)
在Python中达到预期结果的约定是提供默认值,None
并在docstring中记录实际行为。
此实现可确保对函数的每次调用都可以接收默认列表,也可以将列表传递给函数。
首选方法:
def foo(list_arg=None):
"""
:param list_arg: A list of input values.
If none provided, used a list with a default value of 5.
"""
if not list_arg:
list_arg = [5]
return list_arg
a = foo()
a.append(6)
>>> a
[5, 6]
b = foo()
b.append(7)
>>> b
[5, 7]
c = foo([10])
c.append(11)
>>> c
[10, 11]
“错误方法”可能存在合法的用例,程序员可能希望共享默认的列表参数,但这比规则更可能是exceptions。
I am going to demonstrate an alternative structure to pass a default list value to a function (it works equally well with dictionaries).
As others have extensively commented, the list parameter is bound to the function when it is defined as opposed to when it is executed. Because lists and dictionaries are mutable, any alteration to this parameter will affect other calls to this function. As a result, subsequent calls to the function will receive this shared list which may have been altered by any other calls to the function. Worse yet, two parameters are using this function’s shared parameter at the same time oblivious to the changes made by the other.
Wrong Method (probably…):
def foo(list_arg=[5]):
return list_arg
a = foo()
a.append(6)
>>> a
[5, 6]
b = foo()
b.append(7)
# The value of 6 appended to variable 'a' is now part of the list held by 'b'.
>>> b
[5, 6, 7]
# Although 'a' is expecting to receive 6 (the last element it appended to the list),
# it actually receives the last element appended to the shared list.
# It thus receives the value 7 previously appended by 'b'.
>>> a.pop()
7
You can verify that they are one and the same object by using id
:
>>> id(a)
5347866528
>>> id(b)
5347866528
Per Brett Slatkin’s “Effective Python: 59 Specific Ways to Write Better Python”, Item 20: Use None
and Docstrings to specify dynamic default arguments (p. 48)
The convention for achieving the desired result in Python is to
provide a default value of None
and to document the actual behaviour
in the docstring.
This implementation ensures that each call to the function either receives the default list or else the list passed to the function.
Preferred Method:
def foo(list_arg=None):
"""
:param list_arg: A list of input values.
If none provided, used a list with a default value of 5.
"""
if not list_arg:
list_arg = [5]
return list_arg
a = foo()
a.append(6)
>>> a
[5, 6]
b = foo()
b.append(7)
>>> b
[5, 7]
c = foo([10])
c.append(11)
>>> c
[10, 11]
There may be legitimate use cases for the ‘Wrong Method’ whereby the programmer intended the default list parameter to be shared, but this is more likely the exception than the rule.
回答 19
这里的解决方案是:
- 使用
None
作为默认值(或随机数object
),以及交换机上,在运行时创建自己的价值观; 要么
- 使用a
lambda
作为默认参数,并在try块中调用它以获取默认值(这是lambda抽象用于的事情)。
第二个选项很好,因为该函数的用户可以传递一个可调用的(可能已经存在)(例如type
)
The solutions here are:
- Use
None
as your default value (or a nonce object
), and switch on that to create your values at runtime; or
- Use a
lambda
as your default parameter, and call it within a try block to get the default value (this is the sort of thing that lambda abstraction is for).
The second option is nice because users of the function can pass in a callable, which may be already existing (such as a type
)
回答 20
当我们这样做时:
def foo(a=[]):
...
… 如果调用者未传递a的值,则将参数分配a
给一个未命名的列表。
为了简化讨论,让我们暂时为未命名列表命名。怎么pavlo
样
def foo(a=pavlo):
...
在任何时候,如果调用方法不告诉我们是什么a
,我们就会重用pavlo
。
如果pavlo
是可变的(可修改的),并且foo
最终对其进行了修改,那么下次foo
调用我们注意到的效果时无需指定a
。
因此,这就是您所看到的(记住,pavlo
已初始化为[]):
>>> foo()
[5]
现在,pavlo
是[5]。
foo()
再次调用会再次修改pavlo
:
>>> foo()
[5, 5]
指定a
呼叫时foo()
确保pavlo
不会被触摸。
>>> ivan = [1, 2, 3, 4]
>>> foo(a=ivan)
[1, 2, 3, 4, 5]
>>> ivan
[1, 2, 3, 4, 5]
因此,pavlo
仍然是[5, 5]
。
>>> foo()
[5, 5, 5]
When we do this:
def foo(a=[]):
...
… we assign the argument a
to an unnamed list, if the caller does not pass the value of a.
To make things simpler for this discussion, let’s temporarily give the unnamed list a name. How about pavlo
?
def foo(a=pavlo):
...
At any time, if the caller doesn’t tell us what a
is, we reuse pavlo
.
If pavlo
is mutable (modifiable), and foo
ends up modifying it, an effect we notice the next time foo
is called without specifying a
.
So this is what you see (Remember, pavlo
is initialized to []):
>>> foo()
[5]
Now, pavlo
is [5].
Calling foo()
again modifies pavlo
again:
>>> foo()
[5, 5]
Specifying a
when calling foo()
ensures pavlo
is not touched.
>>> ivan = [1, 2, 3, 4]
>>> foo(a=ivan)
[1, 2, 3, 4, 5]
>>> ivan
[1, 2, 3, 4, 5]
So, pavlo
is still [5, 5]
.
>>> foo()
[5, 5, 5]
回答 21
我有时会利用此行为来替代以下模式:
singleton = None
def use_singleton():
global singleton
if singleton is None:
singleton = _make_singleton()
return singleton.use_me()
如果singleton
仅由使用use_singleton
,则我喜欢以下模式作为替换:
# _make_singleton() is called only once when the def is executed
def use_singleton(singleton=_make_singleton()):
return singleton.use_me()
我用它来实例化访问外部资源的客户端类,还用于创建字典或用于记忆的列表。
由于我认为这种模式并不为人所知,因此我做了简短的评论,以防止将来发生误解。
I sometimes exploit this behavior as an alternative to the following pattern:
singleton = None
def use_singleton():
global singleton
if singleton is None:
singleton = _make_singleton()
return singleton.use_me()
If singleton
is only used by use_singleton
, I like the following pattern as a replacement:
# _make_singleton() is called only once when the def is executed
def use_singleton(singleton=_make_singleton()):
return singleton.use_me()
I’ve used this for instantiating client classes that access external resources, and also for creating dicts or lists for memoization.
Since I don’t think this pattern is well known, I do put a short comment in to guard against future misunderstandings.
回答 22
您可以通过替换对象来解决这个问题(并因此替换范围):
def foo(a=[]):
a = list(a)
a.append(5)
return a
丑陋,但是行得通。
You can get round this by replacing the object (and therefore the tie with the scope):
def foo(a=[]):
a = list(a)
a.append(5)
return a
Ugly, but it works.
回答 23
可能确实是:
- 有人正在使用每种语言/库功能,并且
- 在这里切换行为是不明智的,但是
坚持上述两个功能,并且仍然提出另一点是完全一致的:
- 这是一个令人困惑的功能,不幸的是在Python中。
其他答案,或者至少其中一些答案得分为1和2,而不是3,或者得分为3,淡化得分为1和2。但是所有三个答案都是正确的。
的确,在此处中途更换马匹可能会造成重大损坏,并且通过更改Python以直观地处理Stefano的开头代码段可能会产生更多问题。确实可能是一个非常了解Python内部知识的人可以解释后果的雷区。然而,
现有的行为不是Python的,Python是成功的,因为很少有语言违反任何地方的最小惊讶原则 附近这很糟糕。根除它是否明智是一个真正的问题。这是一个设计缺陷。如果您通过尝试找出行为来更好地理解该语言,那么可以说C ++可以完成所有这些工作,甚至更多。通过导航(例如)细微的指针错误,您学到了很多东西。但这不是Python风格的:关心Python足以在这种行为面前持之以恒的人是被该语言吸引的人,因为Python比其他语言具有更少的惊喜。当涉猎者和好奇的人成为Pythonista者时,他们惊讶地发现需要花很少的时间才能完成某项工作-不是因为设计漏洞-我的意思是隐藏的逻辑难题-消除了被Python吸引的程序员的直觉因为它可行。
It may be true that:
- Someone is using every language/library feature, and
- Switching the behavior here would be ill-advised, but
it is entirely consistent to hold to both of the features above and still make another point:
- It is a confusing feature and it is unfortunate in Python.
The other answers, or at least some of them either make points 1 and 2 but not 3, or make point 3 and downplay points 1 and 2. But all three are true.
It may be true that switching horses in midstream here would be asking for significant breakage, and that there could be more problems created by changing Python to intuitively handle Stefano’s opening snippet. And it may be true that someone who knew Python internals well could explain a minefield of consequences. However,
The existing behavior is not Pythonic, and Python is successful because very little about the language violates the principle of least astonishment anywhere near this badly. It is a real problem, whether or not it would be wise to uproot it. It is a design flaw. If you understand the language much better by trying to trace out the behavior, I can say that C++ does all of this and more; you learn a lot by navigating, for instance, subtle pointer errors. But this is not Pythonic: people who care about Python enough to persevere in the face of this behavior are people who are drawn to the language because Python has far fewer surprises than other language. Dabblers and the curious become Pythonistas when they are astonished at how little time it takes to get something working–not because of a design fl–I mean, hidden logic puzzle–that cuts against the intuitions of programmers who are drawn to Python because it Just Works.
回答 24
这不是设计缺陷。绊倒这个的人做错了什么。
我看到3种情况,您可能会遇到此问题:
- 您打算修改参数作为函数的副作用。在这种情况下,没有默认参数是没有意义的。唯一的exceptions是,当您滥用参数列表以具有函数属性(例如)时
cache={}
,根本就不会期望使用实际参数来调用函数。
- 您打算保留该参数不变,但您无意中对其做了修改。那是一个错误,修复它。
- 您打算修改在函数内部使用的参数,但是并不希望修改在函数外部可见。在这种情况下,无论是否为默认值,都需要复制该参数!Python不是按值调用的语言,因此它不能为您创建副本,您需要对其进行明确说明。
问题中的示例可能属于类别1或3。奇怪的是,它同时修改了传递的列表并返回了它;您应该选择其中一个。
This is not a design flaw. Anyone who trips over this is doing something wrong.
There are 3 cases I see where you might run into this problem:
- You intend to modify the argument as a side effect of the function. In this case it never makes sense to have a default argument. The only exception is when you’re abusing the argument list to have function attributes, e.g.
cache={}
, and you wouldn’t be expected to call the function with an actual argument at all.
- You intend to leave the argument unmodified, but you accidentally did modify it. That’s a bug, fix it.
- You intend to modify the argument for use inside the function, but didn’t expect the modification to be viewable outside of the function. In that case you need to make a copy of the argument, whether it was the default or not! Python is not a call-by-value language so it doesn’t make the copy for you, you need to be explicit about it.
The example in the question could fall into category 1 or 3. It’s odd that it both modifies the passed list and returns it; you should pick one or the other.
回答 25
这个“ bug”给了我很多加班时间!但是我开始看到它的潜在用途(但是我还是希望它能在执行时使用)
我会给你我认为有用的例子。
def example(errors=[]):
# statements
# Something went wrong
mistake = True
if mistake:
tryToFixIt(errors)
# Didn't work.. let's try again
tryToFixItAnotherway(errors)
# This time it worked
return errors
def tryToFixIt(err):
err.append('Attempt to fix it')
def tryToFixItAnotherway(err):
err.append('Attempt to fix it by another way')
def main():
for item in range(2):
errors = example()
print '\n'.join(errors)
main()
打印以下内容
Attempt to fix it
Attempt to fix it by another way
Attempt to fix it
Attempt to fix it by another way
This “bug” gave me a lot of overtime work hours! But I’m beginning to see a potential use of it (but I would have liked it to be at the execution time, still)
I’m gonna give you what I see as a useful example.
def example(errors=[]):
# statements
# Something went wrong
mistake = True
if mistake:
tryToFixIt(errors)
# Didn't work.. let's try again
tryToFixItAnotherway(errors)
# This time it worked
return errors
def tryToFixIt(err):
err.append('Attempt to fix it')
def tryToFixItAnotherway(err):
err.append('Attempt to fix it by another way')
def main():
for item in range(2):
errors = example()
print '\n'.join(errors)
main()
prints the following
Attempt to fix it
Attempt to fix it by another way
Attempt to fix it
Attempt to fix it by another way
回答 26
只需将功能更改为:
def notastonishinganymore(a = []):
'''The name is just a joke :)'''
a = a[:]
a.append(5)
return a
Just change the function to be:
def notastonishinganymore(a = []):
'''The name is just a joke :)'''
a = a[:]
a.append(5)
return a
回答 27
我认为这个问题的答案在于python如何将数据传递给参数(通过值或引用传递),而不是可变性或python如何处理“ def”语句。
简介。首先,python中有两种类型的数据类型,一种是简单的基本数据类型,例如数字,另一种是对象。其次,当将数据传递给参数时,python按值传递基本数据类型,即,将值的本地副本传递给局部变量,但按引用传递对象,即指向对象的指针。
承认以上两点,让我们解释一下python代码发生了什么。这仅是因为通过引用传递了对象,但与可变/不可变无关,或者可以说,“ def”语句在定义时仅执行一次。
[]是一个对象,因此python将[]的引用传递给a
,即,a
仅是指向[]的指针,该指针作为对象位于内存中。[]只有一个副本,但是有很多引用。对于第一个foo(),通过append方法将列表[]更改为1。但是请注意,列表对象只有一个副本,该对象现在变为1。当运行第二个foo()时,effbot网页上显示的内容(不再评估项目)是错误的。a
被评估为列表对象,尽管现在对象的内容为1。这是通过引用传递的效果!foo(3)的结果可以用相同的方式轻松得出。
为了进一步验证我的答案,让我们看一下另外两个代码。
====== 2号========
def foo(x, items=None):
if items is None:
items = []
items.append(x)
return items
foo(1) #return [1]
foo(2) #return [2]
foo(3) #return [3]
[]
是一个对象,对象也是这样None
(前者是可变的,而后者是不可变的。但是可变性与问题无关)。空间中没有一个地方,但我们知道它在那里,那里只有一个副本。因此,每次调用foo时,项都会被评估为“无”(与之对应的答案是只被评估一次),显然,该引用(或地址)为“无”。然后在foo中,item更改为[],即指向另一个具有不同地址的对象。
====== 3号=======
def foo(x, items=[]):
items.append(x)
return items
foo(1) # returns [1]
foo(2,[]) # returns [2]
foo(3) # returns [1,3]
foo(1)的调用使项指向具有地址的列表对象[],例如11111111。在续集的foo函数中,列表的内容更改为1,但地址未更改,仍然为11111111然后foo(2,[])来了。尽管在调用foo(1)时,foo(2,[])中的[]与默认参数[]的内容相同,但是它们的地址却不同!由于我们显式提供了参数,items
因此必须采用这个新地址[]
例如2222222),并在进行一些更改后将其返回。现在执行foo(3)。因为只有x
提供时,项目必须再次使用其默认值。默认值是多少?它是在定义foo函数时设置的:位于11111111的列表对象。因此,将这些项评估为具有元素1的地址11111111。位于2222222的列表也包含一个元素2,但是任何项目都不会指向该列表更多。因此,3的追加将成为items
[1,3]。
从上面的解释中,我们可以看到,在接受的答案中推荐的effbot网页未能给出与此问题相关的答案。而且,我认为effbot网页中的一点是错误的。我认为有关UI.Button的代码是正确的:
for i in range(10):
def callback():
print "clicked button", i
UI.Button("button %s" % i, callback)
每个按钮可以包含一个不同的回调函数,该函数将显示不同的值i
。我可以提供一个示例来说明这一点:
x=[]
for i in range(10):
def callback():
print(i)
x.append(callback)
如果执行,x[7]()
我们将得到预期的7,x[9]()
并将得到9的另一个值i
。
I think the answer to this question lies in how python pass data to parameter (pass by value or by reference), not mutability or how python handle the “def” statement.
A brief introduction. First, there are two type of data types in python, one is simple elementary data type, like numbers, and another data type is objects. Second, when passing data to parameters, python pass elementary data type by value, i.e., make a local copy of the value to a local variable, but pass object by reference, i.e., pointers to the object.
Admitting the above two points, let’s explain what happened to the python code. It’s only because of passing by reference for objects, but has nothing to do with mutable/immutable, or arguably the fact that “def” statement is executed only once when it is defined.
[] is an object, so python pass the reference of [] to a
, i.e., a
is only a pointer to [] which lies in memory as an object. There is only one copy of [] with, however, many references to it. For the first foo(), the list [] is changed to 1 by append method. But Note that there is only one copy of the list object and this object now becomes 1. When running the second foo(), what effbot webpage says (items is not evaluated any more) is wrong. a
is evaluated to be the list object, although now the content of the object is 1. This is the effect of passing by reference! The result of foo(3) can be easily derived in the same way.
To further validate my answer, let’s take a look at two additional codes.
====== No. 2 ========
def foo(x, items=None):
if items is None:
items = []
items.append(x)
return items
foo(1) #return [1]
foo(2) #return [2]
foo(3) #return [3]
[]
is an object, so is None
(the former is mutable while the latter is immutable. But the mutability has nothing to do with the question). None is somewhere in the space but we know it’s there and there is only one copy of None there. So every time foo is invoked, items is evaluated (as opposed to some answer that it is only evaluated once) to be None, to be clear, the reference (or the address) of None. Then in the foo, item is changed to [], i.e., points to another object which has a different address.
====== No. 3 =======
def foo(x, items=[]):
items.append(x)
return items
foo(1) # returns [1]
foo(2,[]) # returns [2]
foo(3) # returns [1,3]
The invocation of foo(1) make items point to a list object [] with an address, say, 11111111. the content of the list is changed to 1 in the foo function in the sequel, but the address is not changed, still 11111111. Then foo(2,[]) is coming. Although the [] in foo(2,[]) has the same content as the default parameter [] when calling foo(1), their address are different! Since we provide the parameter explicitly, items
has to take the address of this new []
, say 2222222, and return it after making some change. Now foo(3) is executed. since only x
is provided, items has to take its default value again. What’s the default value? It is set when defining the foo function: the list object located in 11111111. So the items is evaluated to be the address 11111111 having an element 1. The list located at 2222222 also contains one element 2, but it is not pointed by items any more. Consequently, An append of 3 will make items
[1,3].
From the above explanations, we can see that the effbot webpage recommended in the accepted answer failed to give a relevant answer to this question. What is more, I think a point in the effbot webpage is wrong. I think the code regarding the UI.Button is correct:
for i in range(10):
def callback():
print "clicked button", i
UI.Button("button %s" % i, callback)
Each button can hold a distinct callback function which will display different value of i
. I can provide an example to show this:
x=[]
for i in range(10):
def callback():
print(i)
x.append(callback)
If we execute x[7]()
we’ll get 7 as expected, and x[9]()
will gives 9, another value of i
.
回答 28
TLDR:定义时间默认值是一致的,并且更具表现力。
定义一个函数影响两个范围:该范围定义包含的功能,并执行范围由包含的功能。尽管很清楚块是如何映射到作用域的,但问题是在哪里def <name>(<args=defaults>):
属于:
... # defining scope
def name(parameter=default): # ???
... # execution scope
该def name
零件必须在定义范围内进行评估- name
毕竟我们希望在那里可用。仅在内部评估函数将使其无法访问。
由于parameter
是一个常量名,因此我们可以与同时“评估”它def name
。这还有一个优势,那就是它可以生成具有已知签名的功能name(parameter=...):
,而不是裸露的签名name(...):
。
现在,什么时候评估default
?
一致性已经说了“在定义时”:def <name>(<args=defaults>):
在定义时最好也评估其他所有内容。延迟其中的一部分将是令人惊讶的选择。
两种选择都不相等:如果default
在定义时求值,它仍然会影响执行时间。如果default
在执行时评估,则不会影响定义时间。选择“在定义时”允许表达两种情况,而选择“在执行时”只能表达一种情况:
def name(parameter=defined): # set default at definition time
...
def name(parameter=default): # delay default until execution time
parameter = default if parameter is None else parameter
...
TLDR: Define-time defaults are consistent and strictly more expressive.
Defining a function affects two scopes: the defining scope containing the function, and the execution scope contained by the function. While it is pretty clear how blocks map to scopes, the question is where def <name>(<args=defaults>):
belongs to:
... # defining scope
def name(parameter=default): # ???
... # execution scope
The def name
part must evaluate in the defining scope – we want name
to be available there, after all. Evaluating the function only inside itself would make it inaccessible.
Since parameter
is a constant name, we can “evaluate” it at the same time as def name
. This also has the advantage it produces the function with a known signature as name(parameter=...):
, instead of a bare name(...):
.
Now, when to evaluate default
?
Consistency already says “at definition”: everything else of def <name>(<args=defaults>):
is best evaluated at definition as well. Delaying parts of it would be the astonishing choice.
The two choices are not equivalent, either: If default
is evaluated at definition time, it can still affect execution time. If default
is evaluated at execution time, it cannot affect definition time. Choosing “at definition” allows expressing both cases, while choosing “at execution” can express only one:
def name(parameter=defined): # set default at definition time
...
def name(parameter=default): # delay default until execution time
parameter = default if parameter is None else parameter
...
回答 29
其他所有答案都解释了为什么这实际上是一种不错的期望行为,或者为什么无论如何您都不需要这样做。Mine适用于那些固执己见的人,他们想行使自己的权利将语言屈服于自己的意愿,而不是反过来。
我们将使用装饰器“修复”此行为,该装饰器将复制默认值,而不是为保留其默认值的每个位置参数重用相同的实例。
import inspect
from copy import copy
def sanify(function):
def wrapper(*a, **kw):
# store the default values
defaults = inspect.getargspec(function).defaults # for python2
# construct a new argument list
new_args = []
for i, arg in enumerate(defaults):
# allow passing positional arguments
if i in range(len(a)):
new_args.append(a[i])
else:
# copy the value
new_args.append(copy(arg))
return function(*new_args, **kw)
return wrapper
现在,让我们使用此装饰器重新定义函数:
@sanify
def foo(a=[]):
a.append(5)
return a
foo() # '[5]'
foo() # '[5]' -- as desired
这对于带有多个参数的函数特别整洁。相比:
# the 'correct' approach
def bar(a=None, b=None, c=None):
if a is None:
a = []
if b is None:
b = []
if c is None:
c = []
# finally do the actual work
与
# the nasty decorator hack
@sanify
def bar(a=[], b=[], c=[]):
# wow, works right out of the box!
重要的是要注意,如果您尝试使用关键字args,上述解决方案将失效,如下所示:
foo(a=[4])
装饰器可以进行调整以允许这样做,但是我们将其留给读者练习;)
Every other answer explains why this is actually a nice and desired behavior, or why you shouldn’t be needing this anyway. Mine is for those stubborn ones who want to exercise their right to bend the language to their will, not the other way around.
We will “fix” this behavior with a decorator that will copy the default value instead of reusing the same instance for each positional argument left at its default value.
import inspect
from copy import copy
def sanify(function):
def wrapper(*a, **kw):
# store the default values
defaults = inspect.getargspec(function).defaults # for python2
# construct a new argument list
new_args = []
for i, arg in enumerate(defaults):
# allow passing positional arguments
if i in range(len(a)):
new_args.append(a[i])
else:
# copy the value
new_args.append(copy(arg))
return function(*new_args, **kw)
return wrapper
Now let’s redefine our function using this decorator:
@sanify
def foo(a=[]):
a.append(5)
return a
foo() # '[5]'
foo() # '[5]' -- as desired
This is particularly neat for functions that take multiple arguments. Compare:
# the 'correct' approach
def bar(a=None, b=None, c=None):
if a is None:
a = []
if b is None:
b = []
if c is None:
c = []
# finally do the actual work
with
# the nasty decorator hack
@sanify
def bar(a=[], b=[], c=[]):
# wow, works right out of the box!
It’s important to note that the above solution breaks if you try to use keyword args, like so:
foo(a=[4])
The decorator could be adjusted to allow for that, but we leave this as an exercise for the reader ;)