168

In my python program I am getting this error:

KeyError: 'variablename'

From this code:

path = meta_entry['path'].strip('/'),

Can anyone please explain why this is happening?

  • 8
    Key error generally means the key doesn't exist. So,are you sure 'path' exist.? – RanRag Apr 12 '12 at 2:13
  • 2
    Print the contents of meta_entry and ensure the key you want exists. – Makoto Apr 12 '12 at 2:14
228

A KeyError generally means the key doesn't exist. So, are you sure the path key exists?

From the official python docs:

exception KeyError

Raised when a mapping (dictionary) key is not found in the set of existing keys.

For example:

>>> mydict = {'a':'1','b':'2'}
>>> mydict['a']
'1'
>>> mydict['c']
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
KeyError: 'c'
>>>

So, try to print the content of meta_entry and check whether path exists or not.

>>> mydict = {'a':'1','b':'2'}
>>> print mydict
{'a': '1', 'b': '2'}

Or, you can do:

>>> 'a' in mydict
True
>>> 'c' in mydict
False
  • hmm...how would I do that? (Sorry for being a noob) The app is hosted on google app engine and I don't have access to any files that it creates. – David Liaw Apr 12 '12 at 2:49
  • So, you don't have access to python code the app uses.? – RanRag Apr 12 '12 at 2:53
  • I have access to my code but none of the code that it creates or the engine uses – David Liaw Apr 12 '12 at 5:22
  • So, the code you posted path = meta_entry['path'].strip('/'), is it part of your code or the engine. If it is part of the engine i am afraid nothing can't be done. – RanRag Apr 12 '12 at 5:24
  • It's part of my code – David Liaw Apr 15 '12 at 4:56
117

I fully agree with the Key error comments. You could also use the dictionary's get() method as well to avoid the exceptions. This could also be used to give a default path rather than None as shown below.

>>> d = {"a":1, "b":2}
>>> x = d.get("A",None)
>>> print x
None
  • 8
    +1 for very relevant .get() comment. Looks like a good application of the Python EAFP (Easier to Ask for Forgiveness than Permission) instead of LBYL (Look Before You Leap) which I think is less Pythonic. – Niels Bom Apr 24 '12 at 11:08
27

For dict, just use

if key in dict

and not use

if key in dict.keys()

It will be time-consuming

5

Yes, it is most likely caused by non-exsistent key.

In my program, I used setdefault to mute this error, for efficiency concern. depending on how efficient is this line

>>>'a' in mydict.keys()  

I am new to Python too. In fact I have just learned it today. So forgive me on the ignorance of efficiency.

In Python 3, you can also use this function,

get(key[, default]) [function doc][1]

It is said that it will never raise a key error.

  • The get method is ancient, I think even 1.x dicts had it. But I'm sure 2.7 already had it. – Jürgen A. Erhard Feb 21 '17 at 9:22
3

This means your array is missing the key you're looking for. I handle this with a function which either returns the value if it exists or it returns a default value instead.

def keyCheck(key, arr, default):
    if key in arr.keys():
        return arr[key]
    else:
        return default


myarray = {'key1':1, 'key2':2}

print keyCheck('key1', myarray, '#default')
print keyCheck('key2', myarray, '#default')
print keyCheck('key3', myarray, '#default')

Output:

1
2
#default
  • 6
    Argh... horrible, horrible unpythonic code. Don't write PHP code in Python: it's not an array, it's a dictionary (you may call it a hash, but array is right out). And: dicts already have your "keyCheck" function: instead of "keyCheck('key1', myarray, '#default')" you'd do "mydict.get('key1', '#default')" – Jürgen A. Erhard Feb 21 '17 at 9:21
2

I received this error when I was parsing dict with nested for:

cats = {'Tom': {'color': 'white', 'weight': 8}, 'Klakier': {'color': 'black', 'weight': 10}}
cat_attr = {}
for cat in cats:
    for attr in cat:
        print(cats[cat][attr])

Traceback:

Traceback (most recent call last):
      File "<input>", line 3, in <module>
    KeyError: 'K'

Because in second loop should be cats[cat] instead just cat (what is just a key)

So:

cats = {'Tom': {'color': 'white', 'weight': 8}, 'Klakier': {'color': 'black', 'weight': 10}}
cat_attr = {}
for cat in cats:
    for attr in cats[cat]:
        print(cats[cat][attr])

Gives

black
10
white
8
0

For example, if this is a number :

ouloulou={
    1:US,
    2:BR,
    3:FR
    }
ouloulou[1]()

It's work perfectly, but if you use for example :

ouloulou[input("select 1 2 or 3"]()

it's doesn't work, because your input return string '1'. So you need to use int()

ouloulou[int(input("select 1 2 or 3"))]()

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