I have following json file and python code and i need output example...

json file

{"b": [{"1": "add"},{"2": "act"}],
"p": [{"add": "added"},{"act": "acted"}],
"pp": [{"add": "added"},{"act": "acted"}],
"s": [{"add": "adds"},{"act": "acts"}],
"ing": [{"add": "adding"},{"act": "acting"}]}

python

import json
data = json.load(open('jsonfile.json'))
#print data

out put example

>> b
>> p
>> pp
>> s
>> ing

any ideas how to do that?

up vote 4 down vote accepted

This doesn't have anything to do with JSON. You have a dictionary, and you want to print the keys, which you can do with data.keys().

  • but it would print dict_keys(['ing', 'past', 's-es-ies', 'past-participle', 'base']) , how can i just print strings? – Scott Sep 13 '16 at 9:48
  • You can loop through. – Daniel Roseman Sep 13 '16 at 9:50

Here's a working example (it's emulating your file using io.StringIO):

import json
import io

jsonfile_json = io.StringIO("""
{
    "b": [{"1": "add"}, {"2": "act"}],
    "p": [{"add": "added"}, {"act": "acted"}],
    "pp": [{"add": "added"}, {"act": "acted"}],
    "s": [{"add": "adds"}, {"act": "acts"}],
    "ing": [{"add": "adding"}, {"act": "acting"}]
}
""")

data = json.load(jsonfile_json)

for k in data.keys():
    print(k)

As you can see, the answer to your question is using keys() method

For the sake of completeness:

d = {'p': 'pstuff', 'pp': 'ppstuff', 'b': 'bstuff', 's': 'sstuff'}
print('\n'.join(d))

Works in any version of Python. If you care about order:

print('\n'.join(sorted(d)))

Though in all honesty, I'd probably do Jim's approach:

print(*d, sep='\n'))

Simply unpack the keys with * in a print call, this provides the keys as positional arguments to print; use sep = '\n' if you want each key on a different line:

print(*data.keys(), sep= '\n')

This will print out:

b
pp
p
ing
s

As noted by @WayneWerner print(*data, sep='\n') is in effect like calling data.keys() and achieves the same result.

  • You don't need d.keys. Dicts iterate over the keys by default in both Python2 and Python3, so print(*d, sep='\n') will suffice. – Wayne Werner Sep 13 '16 at 10:02
  • @WayneWerner Right, updated to note that, thanks. – Jim Fasarakis Hilliard Sep 13 '16 at 10:05
  • If you run dis.dis('print(*d)') and dis.dis('print(*d.keys())') you'll see that no, it's not shorthand for d.keys(). dict is an iterable, which means it can be unpacked, but iterating over a dictionary means iterating over its keys, and has meant that at the very least since 2.7 but probably long before that. It has the same effect, but it's not shorthand (also in 2.7 d.keys() returns a list, while 3.x d.keys() returns a dict_keys view - very different things!) – Wayne Werner Sep 13 '16 at 10:10
  • 1
    @WayneWerner I've changed the 'shorthand' comment but I'd like to point out that in the end the same dictiter_new call is made, the difference mainly lies in how it is reached. With *d it is fast with dict_iter while with *d.keys() you get a dictview and go through dictkeys_iter . In the end the main difference is that *d is probably more efficient ;-) – Jim Fasarakis Hilliard Sep 13 '16 at 10:35

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