132

I am a python newbie trying to achieve the following:

I have a list of lists:

lst = [[567,345,234],[253,465,756, 2345],[333,777,111, 555]]

I want map lst into another list containing only the second smallest number from each sublist. So the result should be:

[345, 465, 333]

For example if I were just interested in the smallest number, I could do:

map(lambda x: min(x),lst)

I wish I could do this:

map(lambda x: sort(x)[1],lst)

but sort does not chain. (returns None)

neither is something like this allowed:

map(lambda x: sort(x); x[1],lst) #hence the multiple statement question

Is there a way to do this with map in python but without defining a named function? (it is easy with anonymous blocks in ruby, for example)

2
  • for sure this should be possible.. maybe in a new version...
    – ZEE
    Feb 13 '16 at 23:06
  • 1
    You can't execute statements but you can call functions in the lambda function, so the unpythonic dirty hack lambda x: sort(x) OR x[1] would work: Here the OR evaluates its first argument (return value None) as a bool (=> False), and in that case OR returns its second argument. But as the answers say, better avoid lambda.
    – Max
    Jan 8 '19 at 0:23

19 Answers 19

156

There are several different answers I can give here, from your specific question to more general concerns. So from most specific to most general:

Q. Can you put multiple statements in a lambda?

A. No. But you don't actually need to use a lambda. You can put the statements in a def instead. i.e.:

def second_lowest(l):
    l.sort()
    return l[1]

map(second_lowest, lst)

Q. Can you get the second lowest item from a lambda by sorting the list?

A. Yes. As alex's answer points out, sorted() is a version of sort that creates a new list, rather than sorting in-place, and can be chained. Note that this is probably what you should be using - it's bad practice for your map to have side effects on the original list.

Q. How should I get the second lowest item from each list in a sequence of lists?

A. sorted(l)[1] is not actually the best way for this. It has O(N log(N)) complexity, while an O(n) solution exists. This can be found in the heapq module.

>>> import  heapq
>>> l = [5,2,6,8,3,5]
>>> heapq.nsmallest(l, 2)
[2, 3]

So just use:

map(lambda x: heapq.nsmallest(x,2)[1],  list_of_lists)

It's also usually considered clearer to use a list comprehension, which avoids the lambda altogether:

[heapq.nsmallest(x,2)[1] for x in list_of_lists]
11
  • 3
    I don't think you're right about the O(n) solution being found in the heapq module. All you're doing there is heap sorting the list, which is O(n log n) and then finding the smallest elements.
    – avpx
    Dec 3 '12 at 20:52
  • 8
    The documentation (docs.python.org/2/library/heapq.html#heapq.nsmallest) does indeed warn that using heapq.nsmallest() may be less efficient than just using sorted(), so only measurements can tell which solution is fastest in your case. heapq.nsmallest() does however have a complexity of O(k * log(n) + n) I think, with n the length of the list and k the number of smallest items you wish to extract. O(n) to heapify the list and k times O(log(n)) to pop k items. This is better than O(n * log(n)), especially for small k.
    – Vortexfive
    Apr 26 '13 at 13:26
  • 2
    @Vortexfive and for constant k (as here with 'second lowest') O(k*log(n)+n) simplifies to O(n)
    – Duncan
    Sep 9 '13 at 11:09
  • 6
    You technically don't need a lambda for one-liners either, but it's certainly more convenient. Hopefully better lambda support gets added later on.
    – James
    Apr 8 '14 at 2:14
  • 1
    @avpx: It's not a heapsort. We only maintain a 2-element heap of the 2 smallest items seen, rather than heapifying the whole list and popping all elements as a heapsort would do. Feb 8 '17 at 18:47
90

Putting the expressions in a list may simulate multiple expressions:

E.g.:

lambda x: [f1(x), f2(x), f3(x), x+1]

This will not work with statements.

4
  • 10
    Just to clarify, function calls are not considered to be statements in Python, they are expressions. So this list is just a list of expressions, which may all be None.
    – Yawar
    Jan 13 '15 at 22:55
  • I think this works because when dynamically analyzing the collection passed to the lambda the interpreter detects callable signatures and execute them... you can test with -> lambda x: [ print(x), print(x+1), print(x+2) ]
    – ZEE
    Feb 13 '16 at 23:05
  • 6
    Even better: lambda x: [f1(x), f2(x)][-1], it will return calculation result form last expression, as probably expected. Aug 29 '19 at 19:05
  • 1
    you can use recursive lambda in that list => lambda x: [(lambda x: print(x))('apple'), f2(x), f3(x), x+1] Sep 17 '20 at 2:37
29

Time traveler here. If you generally want to have multiple statements within a lambda, you can pass other lambdas as arguments to that lambda.

(lambda x, f: list((y[1] for y in f(x))))(lst, lambda x: (sorted(y) for y in x))

You can't actually have multiple statements, but you can simulate that by passing lambdas to lambdas.

Edit: The time traveler returns! You can also abuse the behavior of boolean expressions (keeping in mind short-circuiting rules and truthiness) to chain operations. Using the ternary operator gives you even more power. Again, you can't have multiple statements, but you can of course have many function calls. This example does some arbitrary junk with a bunch of data, but, it shows that you can do some funny stuff. The print statements are examples of functions which return None (as does the .sort() method) but they also help show what the lambda is doing.

>>> (lambda x: print(x) or x+1)(10)
10
11
>>> f = (lambda x: x[::2] if print(x) or x.sort() else print(enumerate(x[::-1]) if print(x) else filter(lambda (i, y): print((i, y)) or (i % 3 and y % 2), enumerate(x[::-1]))))
>>> from random import shuffle
>>> l = list(range(100))
>>> shuffle(l)
>>> f(l)
[84, 58, 7, 99, 17, 14, 60, 35, 12, 56, 26, 48, 55, 40, 28, 52, 31, 39, 43, 96, 64, 63, 54, 37, 79, 25, 46, 72, 10, 59, 24, 68, 23, 13, 34, 41, 94, 29, 62, 2, 50, 32, 11, 97, 98, 3, 70, 93, 1, 36, 87, 47, 20, 73, 45, 0, 65, 57, 6, 76, 16, 85, 95, 61, 4, 77, 21, 81, 82, 30, 53, 51, 42, 67, 74, 8, 15, 83, 5, 9, 78, 66, 44, 27, 19, 91, 90, 18, 49, 86, 22, 75, 71, 88, 92, 33, 89, 69, 80, 38]
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99]
(0, 99)
(1, 98)
(2, 97)
(3, 96)
(4, 95)
(5, 94)
(6, 93)
(7, 92)
(8, 91)
(9, 90)
(10, 89)
(11, 88)
(12, 87)
(13, 86)
(14, 85)
(15, 84)
(16, 83)
(17, 82)
(18, 81)
(19, 80)
(20, 79)
(21, 78)
(22, 77)
(23, 76)
(24, 75)
(25, 74)
(26, 73)
(27, 72)
(28, 71)
(29, 70)
(30, 69)
(31, 68)
(32, 67)
(33, 66)
(34, 65)
(35, 64)
(36, 63)
(37, 62)
(38, 61)
(39, 60)
(40, 59)
(41, 58)
(42, 57)
(43, 56)
(44, 55)
(45, 54)
(46, 53)
(47, 52)
(48, 51)
(49, 50)
(50, 49)
(51, 48)
(52, 47)
(53, 46)
(54, 45)
(55, 44)
(56, 43)
(57, 42)
(58, 41)
(59, 40)
(60, 39)
(61, 38)
(62, 37)
(63, 36)
(64, 35)
(65, 34)
(66, 33)
(67, 32)
(68, 31)
(69, 30)
(70, 29)
(71, 28)
(72, 27)
(73, 26)
(74, 25)
(75, 24)
(76, 23)
(77, 22)
(78, 21)
(79, 20)
(80, 19)
(81, 18)
(82, 17)
(83, 16)
(84, 15)
(85, 14)
(86, 13)
(87, 12)
(88, 11)
(89, 10)
(90, 9)
(91, 8)
(92, 7)
(93, 6)
(94, 5)
(95, 4)
(96, 3)
(97, 2)
(98, 1)
(99, 0)
[(2, 97), (4, 95), (8, 91), (10, 89), (14, 85), (16, 83), (20, 79), (22, 77), (26, 73), (28, 71), (32, 67), (34, 65), (38, 61), (40, 59), (44, 55), (46, 53), (50, 49), (52, 47), (56, 43), (58, 41), (62, 37), (64, 35), (68, 31), (70, 29), (74, 25), (76, 23), (80, 19), (82, 17), (86, 13), (88, 11), (92, 7), (94, 5), (98, 1)]
0
9

You can in fact have multiple statements in a lambda expression in python. It is not entirely trivial but in your example, the following works:

map(lambda x: x.sort() or x[1],lst)

You have to make sure that each statement does not return anything or if it does wrap it in (.. and False). The result is what is returned by the last evaluation.

Example:

>>> f = (lambda : (print(1) and False) or (print(2) and False) or (print(3) and False))
>>> f()
1
2
3
0
7

Use sorted function, like this:

map(lambda x: sorted(x)[1],lst)
5
  • ah.Thanks.(what a descriptive name for the function!) Still curious about the multiple statement within lambda part. Possible?
    – ottodidakt
    May 14 '09 at 9:44
  • 1
    Nope, "functions created with lambda forms cannot contain statements". docs.python.org/reference/expressions.html#lambda
    – alex vasi
    May 14 '09 at 9:46
  • 1
    -1: lambda and map instead of list comprehensions? Not very pythonic.
    – nikow
    May 14 '09 at 9:56
  • @nikow [x[1] for x in sorted(list)] - pythonic way?
    – RaGa__M
    Jun 13 '16 at 11:31
  • @Explorer_N: not the list must be sorted, but the elements of the list (which are lists) must be sorted in the present problem. So rather: [sorted(x)[1] for x in list_of_lists].
    – Max
    Jan 8 '19 at 0:03
7

A Hacky way to combine multiple statements into a single statement in python is to use the "and" keyword as a short-circuit operator. Then you can use this single statement directly as part of the lambda expression.

This is similar to using "&&" as the short-circuit operator in shell languages such as bash.

Also note: You can always fix a function statement to return a true value by wrapping the function.

Example:

def p2(*args):
    print(*args)
    return 1 # a true value

junky = lambda x, y: p2('hi') and p2('there') and p2(x) and p2(y)

junky("a", "b")

On second thought, its probably better to use 'or' instead of 'and' since many functions return '0' or None on success. Then you can get rid of the wrapper function in the above example:

junky = lambda x, y: print('hi') or print('there') or print(x) or print(y)

junky("a", "b")

'and' operate will evaluate the expressions until it gets to the first zero return value. after which it short-circuits. 1 and 1 and 0 and 1 evaluates: 1 and 1 and 0, and drops 1

'or' operate will evaluate the expressions until it gets to the first non-zero return value. after which it short-circuits.

0 or 0 or 1 or 0 evaluates 0 or 0 or 1, and drops 0

6

Using begin() from here: http://www.reddit.com/r/Python/comments/hms4z/ask_pyreddit_if_you_were_making_your_own/c1wycci

Python 3.2 (r32:88445, Mar 25 2011, 19:28:28) 
[GCC 4.5.2] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> lst = [[567,345,234],[253,465,756, 2345],[333,777,111, 555]]
>>> begin = lambda *args: args[-1]
>>> list(map(lambda x: begin(x.sort(), x[1]), lst))
[345, 465, 333]
3

After analyzing all solutions offered above I came up with this combination, which seem most clear ad useful for me:

func = lambda *args, **kwargs: "return value" if [
    print("function 1..."),
    print("function n"),
    ["for loop" for x in range(10)]
] else None

Isn't it beautiful? Remember that there have to be something in list, so it has True value. And another thing is that list can be replaced with set, to look more like C style code, but in this case you cannot place lists inside as they are not hashabe

3

Or if you want to avoid lambda and have a generator instead of a list:

(sorted(col)[1] for col in lst)
2

Let me present to you a glorious but terrifying hack:

import types

def _obj():
  return lambda: None

def LET(bindings, body, env=None):
  '''Introduce local bindings.
  ex: LET(('a', 1,
           'b', 2),
          lambda o: [o.a, o.b])
  gives: [1, 2]

  Bindings down the chain can depend on
  the ones above them through a lambda.
  ex: LET(('a', 1,
           'b', lambda o: o.a + 1),
          lambda o: o.b)
  gives: 2
  '''
  if len(bindings) == 0:
    return body(env)

  env = env or _obj()
  k, v = bindings[:2]
  if isinstance(v, types.FunctionType):
    v = v(env)

  setattr(env, k, v)
  return LET(bindings[2:], body, env)

You can now use this LET form as such:

map(lambda x: LET(('_', x.sort()),
                  lambda _: x[1]),
    lst)

which gives: [345, 465, 333]

1
1

You can do it in O(n) time using min and index instead of using sort or heapq.

First create new list of everything except the min value of the original list:

new_list = lst[:lst.index(min(lst))] + lst[lst.index(min(lst))+1:]

Then take the min value of the new list:

second_smallest = min(new_list)

Now all together in a single lambda:

map(lambda x: min(x[:x.index(min(x))] + x[x.index(min(x))+1:]), lst)

Yes it is really ugly, but it should be algorithmically cheap. Also since some folks in this thread want to see list comprehensions:

[min(x[:x.index(min(x))] + x[x.index(min(x))+1:]) for x in lst]
1

This is exactly what the bind function in a Monad is used for.

With the bind function you can combine multiple lambda's into one lambda, each lambda representing a statement.

1

There actually is a way you can use multiple statements in lambda. Here's my solution:

lst = [[567,345,234],[253,465,756, 2345],[333,777,111, 555]]

x = lambda l: exec("l.sort(); return l[1]")

map(x, lst)
1
  • 1
    the code inside exec can not be introspected by an intelligent IDE Dec 20 '19 at 7:35
0

I'll give you another solution, Make your lambda invoke a function.

def multiple_statements(x, y):
    print('hi')
    print('there')
    print(x)
    print(y)
    return 1

junky = lambda x, y: multiple_statements(x, y)

junky('a', 'b');
1
  • 8
    Even better: junky = multiple_statements. Jun 6 '18 at 0:07
0

Yes. You can define it this way and then wrap your multiple expressions with the following:

Scheme begin:

begin = lambda *x: x[-1]

Common Lisp progn:

progn = lambda *x: x[-1]

0

There are better solutions without using lambda function. But if we really want to use lambda function, here is a generic solution to deal with multiple statements: map(lambda x: x[1] if (x.sort()) else x[1],lst)

You don't really care what the statement returns.

0

Yes it is possible. Try below code snippet.

x = [('human', 1), ('i', 2), ('am', 1), ('.', 1), ('love', 1), ('python', 3), ('', 1),
  ('run', 1), ('is', 2), ('robust', 1), ('hello', 1), ('spark', 2), ('to', 1), ('analysis', 2), ('on', 1), ('big', 1), ('data', 1), ('with', 1), ('analysis', 1), ('great', 1)
]

rdd_filter = rdd1_word_cnt_sum.filter(lambda x: 'python' in x or 'human' in x or 'big' in x)
rdd_filter.collect()
0

to demonstrate the lambda x:[f1(),f2()] effect which enables us to execute multiple functions in lambda. it also demonstrates the single line if else conditions if you really want to shrink the code.

  • note that f1() can be a lambda function also(recursive lambda or lambda within lambda). and that inner lambda can be a statement/function of your choice.
  • you can also put exec('statement') for example lambda x:[exec('a=[1]'),exec('b=2')]

a python implementation of touch(linux) command which creates empty files if they are not already existing.

def touch(fpath):
    check= os.path.exists(fpath)
    (lambda fname1:[open(fname1,"w+",errors="ignore").write(""),print('Touched',fname1)] 
    if not check else None) (fpath)

will print [ Touched fpath ] where fpath is file path given as input. will do nothing if file already exist.

the (lambda x: [ f(x), f2(x) ] ) (inp) <- we pass the 'inp' as input to lambda which in this case is the fpath.

0

I made class with methods using lamdas on one line:

(code := lambda *exps, ret = None: [exp for exp in list(exps) + [ret]][-1])(Car := type("Car", (object,), {"__init__": lambda self, brand, color, electro = False: code(setattr(self, "brand", brand), setattr(self, "color", color), setattr(self, "electro", electro), setattr(self, "running", False)), "start": lambda self: code(code(print("Car was already running, it exploded.\nLMAO"), quit()) if self.running else None, setattr(self, "running", True), print("Vrooom")), "stop": lambda self: code(code(print("Car was off already, it exploded.\nLMAO"), quit()) if not self.running else None, setattr(self, "running", False), print("!Vrooom")), "repaint": lambda self, new_color: code(setattr(self, "color", new_color), print(f"Splash Splash, your car is now {new_color}")), "drive": lambda self: code(print("Vrooom") if self.running else code(print("Car was not started, it exploded.\nLMAO"), quit())), "is_on": lambda self: code(ret = self.running)}), car := Car("lamborghini", "#ff7400"), car.start(), car.drive(), car.is_on(), car.drive(), car.stop(), car.is_on(), car.stop())

more readable variation:

(
    code :=
    lambda *exps, ret = None:
    [
        exp
        for exp
        in list(exps) + [ret]
    ][-1]
)(

Car := type(
    "Car",
    (object,),
    {
        "__init__": lambda self, brand, color, electro = False: code(
            setattr(self, "brand", brand),
            setattr(self, "color", color),
            setattr(self, "electro", electro),
            setattr(self, "running", False)

        ),
        "start": lambda self: code(
            code(
                print("Car was already running, it exploded.\nLMAO"),
                quit()
            ) if self.running
            else None,
            setattr(self, "running", True),
            print("Vrooom")
        ),
        "stop": lambda self: code(
            code(
                print("Car was off already, it exploded.\nLMAO"),
                quit()
            ) if not self.running
            else None,
            setattr(self, "running", False),
            print("!Vrooom")
        ),
        "repaint": lambda self, new_color: code(
            setattr(self, "color", new_color),
            print(f"Splash Splash, your car is now {new_color}")        
        ),
        "drive": lambda self: code(
            print("Vrooom") if self.running
            else code(
                print("Car was not started, it exploded.\nLMAO"),
                quit()
            )
        ),
        "is_on": lambda self: code(
            ret = self.running
        )
    }
),

car := Car("lamborghini", "#ff7400"),
car.start(),
car.drive(),
car.is_on(),
car.drive(),
car.stop(),
car.is_on(),
car.stop()
)

I use lambda function here that takes any number of arguments and return ret argument default to None to be able to have more expressions on one line splitted by ",".

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