-2

My question is quite similar to How to check if all elements of a list matches a condition. But I couldn't find a right way to do the same thing in a for loop. For example, using all in python is like:

>>> items = [[1, 2, 0], [1, 0, 1], [1, 2, 0]]
>>> all(item[2] == 0 for item in items)
False

But when I want to use the similar method to check all elements in a for loop like this

>>> for item in items:
>>>    if item[2] == 0:
>>>        do sth
>>>    elif all(item[1] != 0)
>>>        do sth

The "all" expression cannot be used in here. Is there any possible way like "elif all(item[2] == 0)" to be used here. And how to check if all elements in list match a condition in a for loop?

  • Why would you want to use a loop, if Python has built-in uses like all and any? – Nander Speerstra Aug 3 '16 at 8:12
  • Because I have one For loop, and a if condition. I just want to add an else condition to check if all elements match one condition. And I just want to know is there a simple way for using 'all' and 'any' in this scenario? – American curl Aug 3 '16 at 8:19
2

If you want to have an if and an else, you can still use the any method:

if any(item[2] == 0 for item in items):
    print('There is an item with item[2] == 0')
else:
    print('There is no item with item[2] == 0')

The any comes from this answer.

  • Thanks, this is what I want! – American curl Aug 3 '16 at 8:38
1

Here:

items = [[1, 2, 0], [1, 0, 1], [1, 2, 0]]

def check_list(items): 
    for item in items:
        if item[2] != 0:
            return False
    return True

print(check_list(items))

If you want to make it a bit more generic:

def my_all(enumerable, condition):
    for item in enumerable:
        if not condition(item):
            return False
    return True

print(my_all(items, lambda x: x[2]==0)
0

Try This:-

prinBool = True
for item in items:
    if item[2] != 0:
     prinBool = False
     break
print prinBool
  • This only prints if False, not if True. – Nander Speerstra Aug 3 '16 at 8:10
  • yes, it print False only – Rakesh Kumar Aug 3 '16 at 8:11
  • 1
    Edited Answer, It will print both – Rakesh Kumar Aug 3 '16 at 8:12
0

You could use a for loop with the else clause:

for item in items:
    if item[2] != 0:
       print False
       break
else:
    print True

The statements after else are executed when the items of a sequence are exhausted, i.e. when the loop wasn't terminated by a break.

  • Thank you, I just want to know is there any way to check all elements at one time in this scenario? – American curl Aug 3 '16 at 8:13
0

With functools, it will be easier :

from functools import reduce

items = [[1, 2, 0], [1, 0, 1], [1, 2, 0]]
f = lambda y,x : y and x[2] == 0  
reduce(f,items)
-1

Do you mean something like this?

for item in items:
    for x in range (0,3):
        if item[x] == 0:
            print "True"

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