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I have googled this question and couldn't find an answer that worked with my code so i wrote this to get the frequency of the words the only issue is that i am getting the wrong number of occurrences of words apart form one that i think is a fluke. Also i am checking to see if a word has already been entered into the vector so i don't count the same word twice.

fileSize = textFile.size();
vector<wordFrequency> words (fileSize);
int index = 0;
for(int i = 0; i <= fileSize - 1; i++)
{
    for(int j = 0; j < fileSize - 1; j++)
    {
        if(string::npos != textFile[i].find(textFile[j]) && words[i].Word != textFile[j])
        {
            words[j].Word = textFile[i];
            words[j].Times = index++;
        }
    }
    index = 0;
}

Any help would be appreciated.

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Are you getting more no of occurrences than expected?? And what does the find member function of textfile do in your program??? –  bhuwansahni Mar 11 '12 at 11:37
    
@bhuwansahni yes i am getting one that is right. The find is a vector function that looks for matching strings. –  bobthemac Mar 11 '12 at 11:40
    
And what does find return on failure and succcess?? –  bhuwansahni Mar 11 '12 at 11:45
    
@bhuwansahni if there is success it adds the word and the number of times it has occurred and if it fails it doesn't do anything. –  bobthemac Mar 11 '12 at 11:49
    
Will you post the code for your find fuction here?? –  bhuwansahni Mar 11 '12 at 11:53

3 Answers 3

up vote 1 down vote accepted

try this code instead if you do not want to use a map container..

    struct wordFreq{
    string word;
    int count;
    wordFreq(string str, int c):word(str),count(c){}
    };
vector<wordFreq> words;

int ffind(vector<wordFreq>::iterator i, vector<wordFreq>::iterator j, string s)
{
    for(;i<j;i++){
        if((*i).word == s)
            return 1;
    }
    return 0;
}

Code for finding the no of occurrences in a textfile vector is then:

for(int i=0; i< textfile.size();i++){
    if(ffind(words.begin(),words.end(),textfile[i]))    // Check whether word already checked for, if so move to the next one, i.e. avoid repetitions
        continue;
    words.push_back(wordFreq(textfile[i],1));          // Add the word to vector as it was not checked before and set its count to 1
    for(int j = i+1;j<textfile.size();j++){            // find possible duplicates of textfile[i]
        if(file[j] == (*(words.end()-1)).word)
            (*(words.end()-1)).count++;
    }
}
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Needed a bit of tweaking but got it working now thanks for the help. –  bobthemac Mar 11 '12 at 14:02
1  
Ouch... this is awkward! It is much simpler to use a map or unordered_map class! –  Matthieu M. Mar 11 '12 at 14:11
    
Yeah using map would be much better but in case u don't want to use it... –  bhuwansahni Mar 11 '12 at 17:10
    
@bobthemac: :), but using map would be much easier... –  bhuwansahni Mar 11 '12 at 17:12

Consider using a std::map<std::string,int> instead. The map class will handle ensuring that you don't have any duplicates.

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Using an associative container:

typedef std::unordered_map<std::string, unsigned> WordFrequencies;

WordFrequencies count(std::vector<std::string> const& words) {
  WordFrequencies wf;
  for (std::string const& word: words) {
    wf[word] += 1;
  }
  return wf;
}

It is hard to get simpler...

Note: you can replace unordered_map with map if you want the worlds sorted alphabetically, and you can write custom comparisons operations to treat them case-insensitively.

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