4

I am trying to solve this problem:

"Your task is to sort a given string. Each word in the string will contain a single number. This number is the position the word should have in the result.

Note: Numbers can be from 1 to 9. So 1 will be the first word (not 0).

If the input string is empty, return an empty string. The words in the input String will only contain valid consecutive numbers.

Examples: "is2 Thi1s T4est 3a" --> "Thi1s is2 3a T4est"

I tried to first split the string that I received and then use the sort() function but I think that is ordering the sentence by the size of each word rather by the number in them.

def order(sentence):
    words = sentence.split()
    words.sort()
    return words

print(order("is2 Thi1s T4est 3a"))

It should order the sentence like this "Thi1s is2 3a T4est" but my code sort the sentence like this ['3a', 'T4est', 'Thi1s', 'is2']

3
  • 4
    Yep, your code is sorting the words by their lexicographical ("dictionary") ordering. You'll need a key function that can find the number in each word, and use that.
    – AKX
    Commented Jul 10, 2019 at 16:13
  • 2
    Since this is very likely homework, you might not get a full-on solution. Nudges in the right direction like the above comment are where you should start. Commented Jul 10, 2019 at 16:20
  • 3
    As AKX mentioned, you need to pass something to the key argument of sorted and that needs to be a function that can extract only the number from each of your words. Once you have that, the answer is sorted(words, key=get_number_from_word). Have a go at creating that get_number_from_word function. For example get_number_from_word("T4est") should return "4" or 4.
    – Dan
    Commented Jul 10, 2019 at 16:21

8 Answers 8

5

Function version:

sentence = "is2 Thi1s T4est 3a"

def order(sentence):
    # creates a tuple of (int, word) for each word in the sentence
    # we need a nested listed comprehension to iterate each letter in the word
    # [... for w in sentence.split() ...] -> for each word in the sentence
    # [... for l in w ...] -> for each letter in each word
    # [... if l.isdigit()] -> if the letter is a digit
    # [(int(l), w) ...] -> add a tuple of (int(letter), word) to the final list
    words = [(int(l), w) for w in sentence.split() for l in w if l.isdigit()]
    words.sort(key=lambda t: t[0])
    return " ".join(t[1] for t in words)

print(order(sentence))

>>> Thi1s is2 3a T4est

Here's a fun one-liner

sentence = "is2 Thi1s T4est 3a"
new = " ".join(t[1] for t in sorted([(int(l), w) for w in sentence.split() for l in w if l.isdigit()], key=lambda t: t[0]))
print(new)

>>> Thi1s is2 3a T4est
5
  • Which part @RaúlSantamaría? I'll add some info to the answer
    – bphi
    Commented Jul 10, 2019 at 16:43
  • 2
    @RaúlSantamaría don't be tempted by a one liner. It detracts from readability, which is very important.
    – Dan
    Commented Jul 10, 2019 at 16:44
  • the whole thing, but especially this [(int(l), w) for w in sentence.split() for l in w if l.isdigit()] Commented Jul 10, 2019 at 16:47
  • @RaúlSantamaría added some comments explaining the different parts of that
    – bphi
    Commented Jul 10, 2019 at 16:53
  • 1
    Dan is right that you shouldn't use a one liner in real code, but it's helpful to explore more advanced python syntax.
    – bphi
    Commented Jul 10, 2019 at 16:56
3

I wasn't going to post an answer as this sounds like homework.

That said, there are other answers that aren't as clear/readable. I've kept list expansion out of this example for readability.

def order(sentence):
    words = sentence.split()
    ordered_words = sorted(words, key=int_from_word)
    return " ".join(ordered_words)

def int_from_word(word):
    for character in word:
        if character.isdigit():
            return int(character)
    return None

print(order("is2 Thi1s T4est 3a"))

Output:

Thi1s is2 3a T4est
1
  • 2
    This is the most clear solution. @JimWright you should add a " ".join to order for completeness
    – Dan
    Commented Jul 10, 2019 at 16:43
0

This will work, commented the process line by line:

def order(sentence):
    words = sentence.split()
    ### extract the number from the string (single word)
    nums = [ int(''.join(filter(str.isdigit, x))) for x in words ]
    ### pair the number to the word
    dictionary = dict(zip(nums, words))
    ### sort based on the number extracted
    sorted_x = sorted(dictionary.items(), key=lambda kv: kv[0])
    ### take only word (and not number coupled)
    result = [ x[1] for x in sorted_x ]
    return result

print(order("is2 Thi1s T4est 3a"))
### output:
['Thi1s', 'is2', '3a', 'T4est']
0

Using regex and sort() since no one has done that already:

import re

s = "is2 Thi1s T4est 3a"
words = s.split()

myre = re.compile(r'\d+')
words.sort(key=lambda x: myre.findall(x))

print(' '.join(words))

Since the OP has a thing for one liners (this is less efficient and less readable):

import re

s = "is2 Thi1s T4est 3a"
new = ' '.join(sorted(s.split(), key=lambda x: re.findall(r'\d+', x)))
print(new)
0

I believe this is a homework question so I am posting the simplest way I could solve it.

def find_number(word): #returns the number present in the string
    for i in range(len(word)):
        if(word[i].isdigit()):
            num=""
            while(i<len(word) and word[i].isdigit()):
                num+=word[i]
                i+=1
            return int(num)
def order(sentence):
    od={}
    ct="a"
    for i in sentence.split():
        #numbering the strings so that if there are duplicates they are not lost
        od[ct+i]=find_number(i)
        ct=chr(ord(ct)+1)
    for i in sorted(od.values()):
        for j in od: #we can use other way of printing but this is the simplest but way less efficient
            if (od[j]==i):
                print(j[1:])
                break
s=input()
order(s)
0

It's not pretty, but you can split each word in the sentence into characters.

def order(sentence):
    indices=[]
    words=[]
    for word in sentence.split():
        letters=[letter for letter in word]
        for letter in letters:
            try:
                indices+=[int(letter)-1]
            except:
                pass
    output=[]
    for index in indices:
        output+=[sentence.split()[index]]
    return output

If you want the output to be a string you can change the return statement:

return " ".join(output)
0
import collections

s ="outp4ut Thi1s 3an st5ring i2s"

d = collections.defaultdict()

for word in s.split():
    for char in word:   # itertaing through the characters of the word
        if char.isdigit():  
            d[int(char)] = word  # adding char to the dictionary if the char is a digit
            break
       
values_arr = []

for num in sorted(d.keys()): # sort the keys
    values_arr.append(d[num])

output = " ".join(values_arr)   

print(output)

### output: Thi1s i2s 3an outp4ut st5ring
0

def order(sentence): words = sentence.split() ordered_words = sorted(words, key=int_from_word) return " ".join(ordered_words)

def int_from_word(word): for character in word: if character.isdigit(): return int(character) return None

print(order("is2 Thi1s T4est 3a"))

1
  • As it’s currently written, your answer is unclear. Please edit to add additional details that will help others understand how this addresses the question asked. You can find more information on how to write good answers in the help center.
    – Community Bot
    Commented Jan 17 at 15:02

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