Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I read of a job interview question to write some code for the following:

Write an efficient function to find the first nonrepeated character in a string. For instance, the first nonrepeated character in “total” is 'o' and the first nonrepeated character in “teeter” is 'r'. Discuss the efficiency of your algorithm.

I came up with this solution in Python; but, I'm sure that there are way more beautiful ways of doing it.

word="googlethis"
dici={}

#build up dici with counts of characters
for a in word:
    try:
        if dici[a]:
            dici[a]+=1
    except:
        dici[a]=1

# build up dict singles for characters that just count 1 

singles={}
for i in dici:
    if dici[i]==1:
        singles[i]=word.index(i)

#get the minimum value

mini=min(singles.values())

#find out the character again iterating...

for zu,ui in singles.items():
    if ui==mini:
        print zu 

Is there a more concise and efficient answer?

share|improve this question
1  
Go to codereview.stackexchange.com. –  Ashwini Chaudhary Jan 24 '13 at 21:43
    
Please come up with better titles... "Job Interview: Write an algorithm" is about as non-specific as you can get. A title should help guide future users to a question (and hopefully an answer!) –  Ben Jan 24 '13 at 21:45
1  
@Ben thanks for editing...but i thing its kind of spacial...that this was asked in an interview...anyway...you are right in regard of the "be more specific" thing... –  Jurudocs Jan 24 '13 at 21:48

5 Answers 5

up vote 7 down vote accepted
In [1033]: def firstNonRep(word):
   ......:     c = collections.Counter(word)
   ......:     for char in word:
   ......:         if c[char] == 1:
   ......:             return char
   ......:         

In [1034]: word="googlethis"

In [1035]: firstNonRep(word)
Out[1035]: 'l'

EDIT: If you want to implement the same thing without using helpers like Counter:

def firstNonRep(word):
    count = {}
    for c in word:
        if c not in count:
            count[c] = 0
        count[c] += 1
    for c in word:
        if count[c] == 1:
            return c
share|improve this answer
3  
For how long is your ipython session open? :) –  Lev Levitsky Jan 24 '13 at 21:47
2  
is Counter ordered reliable? i don't think it is? –  dm03514 Jan 24 '13 at 21:48
6  
@dm03514: Counter is not order preserving. But if you notice, I iterate through the characters in the word. So the first non-repeating character in the word is returned –  inspectorG4dget Jan 24 '13 at 21:49
1  
+1 noticed after you pointed it out! –  dm03514 Jan 24 '13 at 21:50
1  
@LevLevitsky: Working on my master's thesis. It's been a while since I powered down the rig. ps aux ipython says it's been up since Jan13 –  inspectorG4dget Jan 24 '13 at 21:55

The idea here is to initialize an array with some default value , for example 0. And when you come across a particular character in the string, you just increase the counter using the ASCII value of that character in the array you defined initially.

As you pass through the string, you have to update the respective counters for the character in the array. Now one will require to go through the array one more time, and check if there is any value which is equal to 1, if there is - Just return that character as a first non-repeated character in a given string.

class FindFirstUniqueChar
{
    private static char ReturnFirstUniqueChar(string sampleString)
    { 
        // Initialize a sample char array and convert your string to char array.           
        char[] samplechar = sampleString.ToCharArray();

        // The default array will have all value initialized as 0 - it's an int array. 
        int[] charArray = new int[256];

        // Go through the loop and update the counter in respective value of the array 
        for (int i = 0; i < samplechar.Length; i++)
        {
          charArray[samplechar[i]] = charArray[samplechar[i]] + 1;
        }

        // One more pass - which will provide you the first non-repeated char.
        for (int i = 0; i < charArray.Length; i++)
        {

            if (charArray[samplechar[i]] == 1)
            {
                return samplechar[i];
            }
        }

        // Code should not reach here. If it returns '\0'
        // that means there was no non-repeated char in the given string. 
        return '\0';
    }

    static void Main(string[] args)
    {
        Console.WriteLine("The First Unique char in given String is: " +                         
                          ReturnFirstUniqueChar("ABCA"));
        Console.ReadLine();
    }
}

I have provided just a sample code. It doesn't include error check and edge cases. For those who are Interested to know the time complexity of the give algorithm - It is O(N) + O(N) = O(2N) which is nearly O(N). It does use an extra memory space. Your feedback is welcome.

share|improve this answer
    
Now, just for the fun - i would like to add one Question here. For example let's say String is "AAAAAAAAAABCA" - Come up with a way that in the second round of iteration through the string - Once you get the value at 0th Index, you don't need to go through Index 1 to 9 as they are same char 'A', Do you think we can directly jump to char 'B' for our further findings? Hint: you already have the counts for chars. –  vran freelancer Apr 8 '14 at 2:00

My solution. I can't speak to how efficient it is; I think it runs in n^2 time.

>>> def fst_nr(s):
...     collection = []
...     for i in range(len(s)):
...             if not s[i] in collection and not s[i] in s[i+1:]:
...                     return s[i]
...             else:
...                     collection+=[s[i]]
... 
>>> fst_nr("teeter")
'r'
>>> fst_nr("floccinaucinihilipilification")
'u'
>>> fst_nr("floccinacinihilipilification")
'h'
>>> fst_nr("floccinaciniilipilification")
'p'
>>> fst_nr("floccinaciniiliilification")
't'
>>> fst_nr("floccinaciniiliilificaion")
>>> 

Any advice for a humble Stack noob?

share|improve this answer
sorted(word,key=lambda x:(word.count(x),word.index(x)) )[0]

I think or DSM's also consice

next(c for c in word if word.count(c) == 1) 

which is marginally more efficient

>>> word = "teeter"
>>> sorted(word,key=lambda x:(word.count(x),word.index(x)) )[0]
'r'
>>> word = "teetertotter"
>>> sorted(word,key=lambda x:(word.count(x),word.index(x)) )[0]
'o'
>>> word = "teetertotterx"
>>> sorted(word,key=lambda x:(word.count(x),word.index(x)) )[0]
'o'
share|improve this answer
2  
This has a pretty huge runtime. O(nlogn) for sorting and O(n) for each word.count. So, a total runtime of O(n^2 logn), which is very inefficient. I think my solution works in O(n) runtime –  inspectorG4dget Jan 24 '13 at 21:47
1  
ehh yeah I was goin for consise :P –  Joran Beasley Jan 24 '13 at 21:48
1  
thats pretty concise though ;) –  Jurudocs Jan 24 '13 at 21:51
    
True. +1 for concise –  inspectorG4dget Jan 24 '13 at 21:54
1  
If we're going to be concise, why not next(c for c in word if word.count(c) == 1)? [Very inefficient, of course.] –  DSM Jan 24 '13 at 21:56
from collections import defaultdict
word="googlethis"
dici=defaultdict(int)

#build up dici with counts of characters
for a in word:
    if dici[a]:
        dici[a]+=1
for a in word:
    if didic[a] < 2:
        return a

wouldn't that work?

share|improve this answer
    
I dont think it would guarantee a first match ... (what if there are 2 letters in the word that only occur once) –  Joran Beasley Jan 24 '13 at 21:49
    
the for a in word loop should be ordered, correct? If I looped over the dictionary, you're correct, but I'm looping over the word, so it should be in order. –  Brenden Brown Jan 24 '13 at 21:52
    
yead sorry my bad ... I didnt read it and thought you were iterating over the dict –  Joran Beasley Jan 24 '13 at 21:55

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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