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I'm attempting to:

  • load dictionary
  • update/change the dictionary
  • save
  • (repeat)

Problem: I want to work with just 1 dictionary (players_scores) but the defaultdict expression creates a completely seperate dictionary. How do I load, update, and save to one dictionary?

Code:

from collections import defaultdict#for manipulating dict
players_scores = defaultdict(dict)

import ast #module for removing string from dict once it's called back 


a = {}

open_file = open("scores", "w")
open_file.write(str(a))
open_file.close()

open_file2 = open("scores")
open_file2.readlines()
open_file2.seek(0)



i = input("Enter new player's name: ").upper()
players_scores[i]['GOLF'] = 0 
players_scores[i]['MON DEAL'] = 0
print()

scores_str = open_file2.read()
players_scores = ast.literal_eval(scores_str)
open_file2.close()
print(players_scores)
share|improve this question
    
Don't use ast.literal_eval unless you have to. Use the json module instead, it'll work fine for your needs here. json.dump(fileobj), then json.load(fileobj) (no .read() or .write() needed). –  Martijn Pieters Apr 26 '13 at 21:11
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2 Answers

up vote 1 down vote accepted

You are wiping your changes; instead of writing out your file, you read it anew and the result is used to replace your players_scores dictionary. Your defaultdict worked just fine before that, even if you can't really use defaultdict here (ast.literal_eval() does not support collections.defaultdict, only standard python literal dict notation).

You can simplify your code by using the json module here:

import json

try:
    with open('scores', 'r') as f:
        player_scores = json.load(f)
except IOError:
    # no such file, create an empty dictionary
    player_scores = {}

name = input("Enter new player's name: ").upper()
# create a complete, new dictionary
players_scores[name] = {'GOLF': 0, 'MON DEAL': 0}


with open('scores', 'w') as f:
    json.dump(player_scores, f)

You don't need defaultdict here at all; you are only creating new dictionary for every player name anyway.

share|improve this answer
    
Use the right tool for the job. Nice use of the standard lib. –  MikeHunter Apr 26 '13 at 21:59
    
I've been working on this all weekend and I finally got it! It's an amazing feeling to have made progress. Thank you! –  eternal44 Apr 29 '13 at 8:47
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I think one problem is that to index the data structure the way you what something like a defaultdict(defaultdict(dict)) is what's really needed, which unfortunately is impossible to specify directly as shown. However, to workaround that all you need is a simple lower-level intermediary factory function to pass to the upper-leveldefaultdict.

from collections import defaultdict

def defaultdict_factory(*args, **kwargs):
    """ create and return a defaultdict(dict) """
    return defaultdict(dict, *args, **kwargs)

Then you can useplayers_scores = defaultdict(defaultdict_factory)to create one.

Howeverast.literal_eval() won't work with one that's been converted to string representation because it's not one of the simple literal data types the function supports. Instead I would suggest you consider using Python's venerablepicklemodule which can handle most of Python's built-in data types as well custom classes like I am describing. Here's an example of applying it to your code (in conjunction with the code above):

import pickle

try:
    with open('scores', 'rb') as input_file:
        players_scores = pickle.load(input_file)
except FileNotFoundError:
    print('new scores file will be created')
    players_scores = defaultdict(defaultdict_factory)

player_name = input("Enter new player's name: ").upper()
players_scores[player_name]['GOLF'] = 0
players_scores[player_name]['MON DEAL'] = 0
# below is a shorter way to do the initialization for a new player
# players_scores[player_name] = defaultdict_factory({'GOLF': 0, 'MON DEAL': 0})

# write new/updated data structure (back) to disk
with open('scores', 'wb') as output_file:
    pickle.dump(players_scores, output_file)

print(players_scores)
share|improve this answer
    
I was reading comparisons between json and pickle and couldn't find an advantageous use for pickle. Do you prefer it over json for any situations? Thank you for your post, it's encouraging to receive help. –  eternal44 Apr 29 '13 at 8:50
    
@eternal44: pickle supports basic Python types and most user-defined classes with little or no extra work, json supports only a small but important subset of Python's built-in types. On the other hand it is supported by a number of other languages and is therefore more cross-platform and often used for web programming for that reason, if that's a consideration. It's also very fashionable to use json at the moment. –  martineau Apr 29 '13 at 10:51
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