4

This question already has an answer here:

Suppose I have a list as the following:

a = ['111', 213, 74, '99', 't', '88', '-74', -74]

The list contains number-like string, number and string of the data types.

I consider number-like string can convert number, so it's can see as a number.

This is my method:

a = ['111', 213, 74, '99', 't', '88', '-74', -74]

def detect(list_):
    for element in list_:
        try:
            int(element)
        except ValueError:
            return False
    return True

print detect(a)

But it looks so lengthy and unreadable, so anyone has better method to detect it?

Additionally, my list contains negative number and negative-number-like string, how do I do?

marked as duplicate by ekhumoro python Oct 9 '15 at 2:57

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 2
    It is a bit lengthy but definitly not unreadable. But you should replace except: with except ValueError: and lift the try-except to wrap the forloop instead of individual elements – WorldSEnder Oct 9 '15 at 2:44
  • Although commenting the exception make it more readable, I hope it can be simplified one-line code. – Burger King Oct 9 '15 at 2:46
6

For only positive integers:

not all(str(s).isdigit() for s in a)

For negatives:

not all(str(s).strip('-').isdigit() for s in a)

For decimals and negatives:

not all(str(s).strip('-').replace('.','').isdigit() for s in a)
  • This will fail on ints and strings of negative numbers – inspectorG4dget Oct 9 '15 at 2:51
2
a = ['111', 213, 74, '99', 't', '88']

def detect(list_):
    try:
        map(int,list_)
        return True
    except ValueError:
        return False

print detect(a)
  • It's not a good idea. It just replaces for with map. – Burger King Oct 9 '15 at 2:49
1
a = ['111', 213, 74, '99', 't', '88']

print([x for x in a if not str(x).isdigit()])

['t']

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