im new on python 3.

What I want to do is to alternate upper and lowercase but only on a dictionary key.

my dictionary is created from a list, its key is the word (or list element) and its value is the times this element appears in the list.

kb     = str(input("Give me a string: "));
txt    = kb.lower();      #Turn string into lowercase
cadena = txt.split();     #Turn string into list
dicc   = {};              

for word in cadena:
         if (word in dicc):
             dicc[word] = dicc[word] + 1
         else:
             dicc[word] = 1
print(dicc)

With this code i can get for example:

input: "Hi I like PYthon i am UsING python"
{'hi': 1, 'i': 2, 'like': 1, 'python': 2, 'am': 1, 'using': 1}

but what I am trying to get is actually is:

{'hi': 1, 'I': 2, 'like': 1, 'PYTHON': 2, 'am': 1, 'USING': 1}

I tried using this:

for n in dicc.keys():
    if (g%2 == 0):
        n.upper()

    else:
        n.lower()
print(dicc)

But it seems that I have no idea of what I'm doing. Any help would be appreciated.

  • 1
    You are confusing the key with its position in the array of keys – shadowtalker Nov 15 at 18:10
  • 3
    Also, note that dictionary order is nondeterministic before python 3.7. I personally wouldn't rely on dictionary order regardless; use collections.OrderedDict instead – shadowtalker Nov 15 at 18:11
  • Are you only trying to print your keys with the upper/lower case pattern, or do you actually want to modify the dict so that your keys are in alternating upper and lowercase order? – Carol Ng Nov 15 at 18:14
  • What do you want from the string "bad bad bad"? Would you want the dict {"bad": 3} or {"bad":2, "BAD":1} ? – Prune Nov 15 at 18:18
  • Also... you need to read up on how dictionaries work in Python. Where did you get the idea that .item() would work? – shadowtalker Nov 15 at 18:18

Using itertools and collections.OrderedDict (to guarantee order in Python < 3.7)

Setup

import itertools
from collections import OrderedDict

s = 'Hi I like PYthon i am UsING python'
switcher = itertools.cycle((str.lower, str.upper))
d = OrderedDict()
final = OrderedDict()

First, create an OrderedDictionary just to count the occurences of strings in your list (since you want matches to be case insensitive based on your output):

for word in s.lower().split():
    d.setdefault(word, 0)
    d[word] += 1

Next, use itertools.cycle to call str.lower or str.upper on keys and create your final dictionary:

for k, v in d.items():
    final[next(switcher)(k)] = v

print(final)

OrderedDict([('hi', 1), ('I', 2), ('like', 1), ('PYTHON', 2), ('am', 1), ('USING', 1)])
  • Can be generalized to cycle over (op.methodcaller('lower'), op.methodcaller('upper')). – shadowtalker Nov 15 at 18:22
  • Hey, thank you! This is giving me an idea, actually I am trying to modify the dict but certainly this is helping me a lot. – Paco Chamorro-Fierro Nov 15 at 19:30

Your n in dicc.keys() line is wrong. You are trying to use n as both the position in the array of keys and the key itself.

Also the semicolons are unnecessary.

This should do what you want:

from collections import OrderedDict

# Receive user input

kb     = str(input("Give me a string: "))
txt    = kb.lower()
cadena = txt.split()
dicc   = OrderedDict()

# Construct the word counter

for word in cadena:
    if word in dicc:
        dicc[word] += 1
    else:
        dicc[word] = 1

If you just want to print the output with alternating case, you can do something like this:

# Print the word counter with alternating case

elems = []
for i, (word, wordcount) in enumerate(dicc.items()):
    if i % 2 == 0:
        word = word.upper()
    elems.append('{}: {}'.format(word, wordcount)

print('{' + ', '.join(elems) + '}')

Or you can make a new OrderedDict with alternating case...

dicc_alt_case = OrderedDict((word.upper() if (i % 2 == 0) else word, wordcount)
                            for word, wordcount in dicc.items())

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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