5

I have a list of strings with some repeated. e.g. (not the actual list)

["hello", "goodbye", "hi", "how are you", "hi"]

I want to create a list of integers where each integer corresponds to a string. e.g. for the example above

[0, 1, 2, 3, 2]

where 0 = "hello", 1 = "goodbye" etc.

I looked at the example here: Convert a list of integer to a list of predefined strings in Python

I want to do basically the same thing but the other way around, strings to integers. That part shouldn't be too hard.

However, they seem to just create the dictionary in their code like this:

trans = {0: 'abc', 1: 'f', 2: 'z'}

Creating the dictionary yourself is fine when you know the exact contents of your list. My list of strings is extremely long and I don't know what the strings are as it comes from input. So I'd need to make the dictionary from my list of string some other way, like maybe a for loop.

I can't figure out how to make a dictionary that will map the strings in my list to numbers. I looked up how to make a dictionary with list comprehensions but I couldn't figure out how it deals with duplicates.

In other words, I'd like to know how to go through a list like my list of strings above and create a dictionary like:

{"hello": 0, "goodbye": 1, "hi": 2, "how are you": 3}

EDIT: I've had a lot of answers, thanks everyone for all your help. What I am now confused about is all the different ways of doing this. There have been a lot of suggestions, using enumerate(), set() and other functions. There was also one answer (@ChristianIacobs) that did it very simply with just a for loop. What I am wondering is whether there is any reason to use one of the slightly less simple answers? For instance, are they faster, or are there some situations where they are the only way that works?

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  • dict(enumerate(words))? Or {word: index for index, word in enumerate(words)} for the reverse. That would give you the last index of each word.
    – jonrsharpe
    Commented Jun 6, 2019 at 9:59
  • So do you want duplicates to just be ignored, then? Commented Jun 6, 2019 at 9:59
  • dict(zip(list_of_digits,list_of_strings))?
    – yatu
    Commented Jun 6, 2019 at 10:00
  • @jonrsharpe, I'm not necessarily concerned about them being indices. I was basically wanting each unique string to have a unique integer so that the strings could be replaced with integers that correspond to them. Commented Jun 6, 2019 at 10:03
  • @MegaEmailman, I'm just trying to make a dictionary that identifies each unique string with a unique integer. So the dictionary shouldn't have any duplicates in it. Then I can go through the list and make a new list that replaces each string with its number equivalent. Commented Jun 6, 2019 at 10:05

9 Answers 9

4

To create a dictionary from your list you first need to get rid of duplicate values. Use a set to achieve that:

my_list = ["hello", "goodbye", "hi", "how are you", "hi"]
unique_list = list(set(my_list))

['hi', 'hello', 'goodbye', 'how are you']

Now you can create your dictionary by zipping the unique_list with a range of numbers:

my_dict = dict(zip(unique_list, range(len(unique_list))))

{'hi': 0, 'hello': 1, 'goodbye': 2, 'how are you': 3}
2

Try this:

>>> w = ["hello", "goodbye", "hi", "how are you", "hi"]
>>> l = [0, 1, 2, 3, 2]
>>> trans = {l1:w1 for w1,l1 in zip(w,l)}
>>> trans
{0: 'hello', 1: 'goodbye', 2: 'hi', 3: 'how are you'}
1
words = ["hello", "goodbye", "hi", "how are you", "hi"]

d = dict()
i = 0
for word in words:
    if word not in d:
        d[word] = i
        i += 1
print(d)
#print(sorted(d.items(), key=lambda kv: kv[1])) print them sorted
4
  • This way seems simplest, I was definitely overcomplicating things with the stuff I'd tried. I'm just wondering if it matters whether I use dict() or {}? Commented Jun 6, 2019 at 10:13
  • @IceWarrior42 check this question stackoverflow.com/questions/664118/… Commented Jun 6, 2019 at 11:03
  • So dict() is slower? Or is dict() the only one that works in this case? Commented Jun 6, 2019 at 11:07
  • This seems to work in my program so I'm going to accept it. I'm still curious about any advantages the other answers might have though. Commented Jun 7, 2019 at 8:26
1

The ans in very simple. You can do it in just 2 lines.

The code is-

l = ['hello', 'goodbye', 'hi', 'how are you', 'hi']
{a: b for b,a in enumerate(l)}

Here enumerate create a tuple of (index, value) which is then Comprehend with the for loop

0

@jonrsharpe, I'm not necessarily concerned about them being indices. I was basically wanting each unique string to have a unique integer so that the strings could be replaced with integers that correspond to them.

Then the process is as follows:

  • determine the set of keys we need (each item in the original list).

  • Assign each a value - the easiest way is to make a list of that set again (since by definition, the elements are now unique) and use the index of the elements in that list. To build that mapping, we can use a trick with enumerate along the lines of what @jonrsharpe already proposed.

  • Translate the original list through the mapping.

Thus:

keys = list(set(original))
mapping = {k:v for v,k in enumerate(keys)}
result = [mapping[k] for k in original]
1
  • Actually, enumerate can be used directly on the set(original), but this is - I think - clearer for pedagogical purposes. Commented Jun 6, 2019 at 10:12
0

Here's my idea. It will be explained in comments. Assume you have a file containing nothing but the words.

import re         #Import the re module
phrases = {}       #Create a dictionary
file = open("/path/to/file", "r")       #Open the file containing all your phrases. 
Data = file.read()    #Read the file. 
cleanedData = re.split("[\s | \r | \n]", Data)    #Remove whitespace. 
for word in cleanedData:
    if not word in phrases:      #Check if the word is already in your dictionary. 
        phrases[word] = (len(phrases)+1)    #Sets the word as a key with a value starting at 1 and automatically increasing, but only adds it if it doesn't already exist. 
file.close()
0

You can do it by these steps:

  • get rid of duplicate words, by using set
  • map unique words to a unique number (array index), by using enumerate
  • loop over words to get their assigned number

You can get the expected output by below snippet.

words = ["hello", "goodbye", "hi", "how are you", "hi"]
unique_words = set(words)
words_map = {word: i for i, word in enumerate(unique_words)}

result = [words_map[word] for word in words]
print(result)
0

You can try something as follows:

vocab_dict = {word: index for index, word in enumerate(list(set(words)))}

Contents of the above vocab_dict given the words list is from the example mentioned would look something like below:

>> vocab_dict {'how are you': 0, 'hello': 1, 'goodbye': 2, 'hi': 3}

0
##**Simple program using map function to create dict**##
    list1 = ["hello", "goodbye", "hi", "how are you", "hi"]
    leng = (list(range(len(list1))))
    integ_map = map(lambda key,val:(key,val) ,list1,leng)
    print(dict(integ_map))

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