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Start your free trialDavid Gray
1,531 PointsI get the expected value when I run my function locally, however the keys are in a different order, which is ok
def word_count(phrase): frequencies = {} lower_phrase = phrase.lower() words = lower_phrase.split(" ") for x in words: if x in frequencies.keys(): frequencies[x] += 1 else: frequencies[x] = 1 return(frequencies)
# E.g. word_count("I do not like it Sam I Am") gets back a dictionary like:
# {'i': 2, 'do': 1, 'it': 1, 'sam': 1, 'like': 1, 'not': 1, 'am': 1}
# Lowercase the string to make it easier.
def word_count(phrase):
frequencies = {}
lower_phrase = phrase.lower()
words = lower_phrase.split(" ")
for x in words:
if x in frequencies.keys():
frequencies[x] += 1
else:
frequencies[x] = 1
return(frequencies)
1 Answer
Steven Parker
231,269 PointsThe challenge error message says "Be sure you're lowercasing the string and splitting on all whitespace!".
To split on "all whitespace" the argument to "split" should be left empty. Specifying a space causes it to split only on literal spaces. You probably didn't notice it in outside testing because you probably just used single spaces as separators in the data.