185

I've got list of objects. I want to find one (first or whatever) object in this list that has attribute (or method result - whatever) equal to value.

What's is the best way to find it?

Here's test case:

  class Test:
      def __init__(self, value):
          self.value = value

  import random

  value = 5

  test_list = [Test(random.randint(0,100)) for x in range(1000)]

  # that I would do in Pascal, I don't believe isn't anywhere near 'Pythonic'
  for x in test_list:
      if x.value == value:
          print "i found it!"
          break

I think using generators and reduce() won't make any difference because it still would be iterating through list.

ps.: Equation to value is just an example. Of course we want to get element which meets any condition.

376
next((x for x in test_list if x.value == value), None)

This gets the first item from the list that matches the condition, and returns None if no item matches. It's my preferred single-expression form.

However,

for x in test_list:
    if x.value == value:
        print "i found it!"
        break

The naive loop-break version, is perfectly Pythonic -- it's concise, clear, and efficient. To make it match the behavior of the one-liner:

for x in test_list:
    if x.value == value:
        print "i found it!"
        break
else:
    x = None

This will assign None to x if you don't break out of the loop.

  • 55
    +1 for the reassuring "The naive loop-break version, is perfectly Pythonic". – LaundroMat Aug 20 '11 at 21:06
  • great solution, but how do i modify your line so that I can make x.value actually mean x.fieldMemberName where that name is stored in value? field = "name" next((x for x in test_list if x.field == value), None) so that in this case, i am actually checking against x.name, not x.field – Stewart Dale Jul 15 '15 at 18:46
  • 3
    @StewartDale It's not totally clear what you're asking, but I think you mean ... if getattr(x, x.fieldMemberName) == value. That will fetch the attribute from x with the name stored in fieldMemberName, and compare it to value. – agf Jul 15 '15 at 20:19
  • 1
    @ThatTechGuy -- The else clause is meant to be on the for loop, not the if. (Rejected Edit). – agf Feb 2 '18 at 5:53
  • 1
    @agf Wow I literally had no idea that existed.. book.pythontips.com/en/latest/for_-_else.html cool! – ThatTechGuy Feb 4 '18 at 18:50
16

Since it has not been mentioned just for completion. The good ol' filter to filter your to be filtered elements.

Functional programming ftw.

####### Set Up #######
class X:

    def __init__(self, val):
        self.val = val

elem = 5

my_unfiltered_list = [X(1), X(2), X(3), X(4), X(5), X(5), X(6)]

####### Set Up #######

### Filter one liner ### filter(lambda x: condition(x), some_list)
my_filter_iter = filter(lambda x: x.val == elem, my_unfiltered_list)
### Returns a flippin' iterator at least in Python 3.5 and that's what I'm on

print(next(my_filter_iter).val)
print(next(my_filter_iter).val)
print(next(my_filter_iter).val)

### [1, 2, 3, 4, 5, 5, 6] Will Return: ###
# 5
# 5
# Traceback (most recent call last):
#   File "C:\Users\mousavin\workspace\Scripts\test.py", line 22, in <module>
#     print(next(my_filter_iter).value)
# StopIteration


# You can do that None stuff or whatever at this point, if you don't like exceptions.

I know that generally in python list comprehensions are preferred or at least that is what I read, but I don't see the issue to be honest. Of course Python is not an FP language, but Map / Reduce / Filter are perfectly readable and are the most standard of standard use cases in functional programming.

So there you go. Know thy functional programming.

filter condition list

It won't get any easier than this:

next(filter(lambda x: x.val == value,  my_unfiltered_list)) # Optionally: next(..., None) or some other default value to prevent Exceptions
  • I quite like the style of this but there are two potential issues. 1: It works in Python 3 only; in Python 2, filter returns a list which is not compatible with next. 2: it requires that there is a definite match, else you will get a StopIteration exception. – freethebees Jan 17 '18 at 12:22
  • 1: I'm not aware of Python 2. When I started using Python, Python 3 was already available. Unfortunately I'm clueless about the specifcs of Python 2. 2. @freethebees as pointed out by agf. You can use next(..., None) or some other default value, if you are no fan of exceptions. I also added it as a comment to my code. – Nima Mousavi Feb 15 '18 at 9:36
  • I've updated the answer to reflect the comments. – Nima Mousavi Feb 15 '18 at 9:44
1

I just ran into a similar problem and devised a small optimization for the case where no object in the list meets the requirement.(for my use-case this resulted in major performance improvement):

Along with the list test_list, I keep an additional set test_value_set which consists of values of the list that I need to filter on. So here the else part of agf's solution becomes very-fast.

0

You could also implement rich comparison via __eq__ method for your Test class and use in operator. Not sure if this is the best stand-alone way, but in case if you need to compare Test instances based on value somewhere else, this could be useful.

class Test:
    def __init__(self, value):
        self.value = value

    def __eq__(self, other):
        """To implement 'in' operator"""
        # Comparing with int (assuming "value" is int)
        if isinstance(other, int):
            return self.value == other
        # Comparing with another Test object
        elif isinstance(other, Test):
            return self.value == other.value

import random

value = 5

test_list = [Test(random.randint(0,100)) for x in range(1000)]

if value in test_list:
    print "i found it"
0

For below code, xGen is an anonomous generator expression, yFilt is a filter object. Note that for xGen the additional None parameter is returned rather than throwing StopIteration when the list is exhausted.

arr =((10,0), (11,1), (12,2), (13,2), (14,3))

value = 2
xGen = (x for x in arr if x[1] == value)
yFilt = filter(lambda x: x[1] == value, arr)
print(type(xGen))
print(type(yFilt))

for i in range(1,4):
    print('xGen: pass=',i,' result=',next(xGen,None))
    print('yFilt: pass=',i,' result=',next(yFilt))

Output:

<class 'generator'>
<class 'filter'>
xGen: pass= 1  result= (12, 2)
yFilt: pass= 1  result= (12, 2)
xGen: pass= 2  result= (13, 2)
yFilt: pass= 2  result= (13, 2)
xGen: pass= 3  result= None
Traceback (most recent call last):
  File "test.py", line 12, in <module>
    print('yFilt: pass=',i,' result=',next(yFilt))
StopIteration
-1

You could do something like this

dict = [{
   "id": 1,
   "name": "Doom Hammer"
 },
 {
    "id": 2,
    "name": "Rings ov Saturn"
 }
]

for x in dict:
  if x["id"] == 2:
    print(x["name"])

Thats what i use to find the objects in a long array of objects.

  • How is this different then what questioner has already tried ? – Anum Sheraz Sep 27 at 0:42
  • I wanted to show how he can get the object of and array of objects the simplest way. – Illud Oct 28 at 2:51

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