2

Context: I have a list with the structure below. It can contain a variable number of items, in multiples of 3. I am trying to transform each set of 3 into a separate JSON document.

['SCAN1.txt', 'Lastmodified:20191125.121049', 'Filesize:7196', 'SCAN2.txt', 'Lastmodified:20191125.121017', 'Filesize:3949', 'SCAN3.txt', 'Lastmodified:20191125.121056', 'Filesize:2766']

Question: How can I convert the single list into a JSON document with the following form, while also allowing for variability in the number of files it can accomadate:

{  
  {  
    "File": {  
      "File_Name":"SCAN1.txt",  
      "Last_Modified":"20191125.121049",
      "File_Size":"7196"  
    } 
  {  
    "File": {  
      "File_Name":"SCAN2.txt",  
      "Last_Modified":"20191125.121017",
      "File_Size":"3949"  
    } 
  }
  {  
    "File": {  
      "File_Name":"SCAN3.txt",  
      "Last_Modified":"20191125.121056",
      "File_Size":"2766"  
    }
  } 
}
0
3

Using chunked from more-itertools,

    from more_itertools import chunked
    import json

    example = ['SCAN1.txt', 'Lastmodified:20191125.121049', 'Filesize:7196', 'SCAN2.txt', 'Lastmodified:20191125.121017', 'Filesize:3949', 'SCAN3.txt', 'Lastmodified:20191125.121056', 'Filesize:2766']

    def file_to_json(file):
        return {"File": {"File_Name": file[0], "Last_Modified": file[1], "File_Size": file[2]}} 

    json.dumps([file_to_json(file) for file in list(chunked(example, 3))])

Output:

        [{
        "File": {
            "File_Name": "SCAN1.txt",
            "Last_Modified": "Lastmodified:20191125.121049",
            "File_Size": "Filesize:7196"
        }
    }, {
        "File": {
            "File_Name": "SCAN2.txt",
            "Last_Modified": "Lastmodified:20191125.121017",
            "File_Size": "Filesize:3949"
        }
    }, {
        "File": {
            "File_Name": "SCAN3.txt",
            "Last_Modified": "Lastmodified:20191125.121056",
            "File_Size": "Filesize:2766"
        }
    }]
3
  • While this is close it doesn't accommodate variability in the number of potential files. Every 3 items in the list need to be transformed into a separate JSON element. But there can be variability in the number of files (in multiples of 3) Is there a way to modify the return value of file_to_json so that it can handle any number of files? – emalcolmb Dec 8 '19 at 4:13
  • 1
    I don't understand. Can you please modify your example output to show an example of this "variability"? – Kent Shikama Dec 8 '19 at 4:15
  • 1
    Note this solution handles any numbers of files. Do you mean there can be more than 3 attributes per file? – Kent Shikama Dec 8 '19 at 4:16
2

You could also change your result to have the filenames as keys instead, since they are unique:

{
    "SCAN1.txt": {
        "Filesize": 7196,
        "Lastmodified": 20191125.121049
    },
    "SCAN2.txt": {
        "Filesize": 3949,
        "Lastmodified": 20191125.121017
    },
    "SCAN3.txt": {
        "Filesize": 2766,
        "Lastmodified": 20191125.121056
    }
}

Which could be achieved like below(comments included):

from collections import defaultdict
from json import dumps
from ast import literal_eval

lst = [
    "SCAN1.txt",
    "Lastmodified:20191125.121049",
    "Filesize:7196",
    "SCAN2.txt",
    "Lastmodified:20191125.121017",
    "Filesize:3949",
    "SCAN3.txt",
    "Lastmodified:20191125.121056",
    "Filesize:2766",
]


def group_file_documents(lst, prefix="SCAN"):
    # Use defaultdict of dicts to represent final JSON structure
    # Also can be serialized like normal dictionaries
    result = defaultdict(dict)

    current_file = None
    for item in lst:

        # Update current file name if starts with prefix
        if item.startswith(prefix):
            current_file = item
            continue

        # Ensure current file name is present
        if current_file:

            # Split key.values and strip whitespace, just in case
            key, value = map(str.strip, item.split(":"))

            # Convert to actual int/float value
            result[current_file][key] = literal_eval(value)

    return result

# Print serialized JSON file with sorted keys and indents of 4 spaces
print(dumps(group_file_documents(lst), sort_keys=True, indent=4))

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