67

I have found many threads for sorting by values like here but it doesn't seem to be working for me...

I have a dictionary of lists that have tuples. Each list has a different amount of tuples. I want to sort the dictionary by how many tuples each list contain.

>>>to_format 
>>>{"one":[(1,3),(1,4)],"two":[(1,2),(1,2),(1,3)],"three":[(1,1)]}
>>>for key in some_sort(to_format):
       print key,
>>>two one three

Is this possible?

2 Answers 2

119
>>> d = {"one": [(1,3),(1,4)], "two": [(1,2),(1,2),(1,3)], "three": [(1,1)]}
>>> for k in sorted(d, key=lambda k: len(d[k]), reverse=True):
        print k,


two one three

Here is a universal solution that works on Python 2 & Python 3:

>>> print(' '.join(sorted(d, key=lambda k: len(d[k]), reverse=True)))
two one three
2
  • I get this error when I try and run your code: NameError: global name 'd' is not defined. I'm on Python 2.7.5
    – mchangun
    Commented Dec 9, 2013 at 6:11
  • 5
    d is a sample dictionary variable name. Sub in whateer your dict is called
    – jamylak
    Commented Jan 30, 2015 at 8:13
8

dict= {'a': [9,2,3,4,5], 'b': [1,2,3,4, 5, 6], 'c': [], 'd': [1,2,3,4], 'e': [1,2]}
dict_temp = {'a': 'hello', 'b': 'bye', 'c': '', 'd': 'aa', 'e': 'zz'}

def sort_by_values_len(dict):
    dict_len= {key: len(value) for key, value in dict.items()}
    import operator
    sorted_key_list = sorted(dict_len.items(), key=operator.itemgetter(1), reverse=True)
    sorted_dict = [{item[0]: dict[item [0]]} for item in sorted_key_list]
    return sorted_dict

print (sort_by_values_len(dict))

output:
[{'b': [1, 2, 3, 4, 5, 6]}, {'a': [9, 2, 3, 4, 5]}, {'d': [1, 2, 3, 4]}, {'e': [1, 2]}, {'c': []}]

1
  • How would you make this so that each item in the dictionary is not a dictionary itself?
    – Ben Smith
    Commented Feb 10, 2020 at 22:55

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.