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I have to implement a vector using an array in C++ that is used to count the number of unique words from the input. It reads the input and then adds to the words to a struct which contains its count and the unique word and then this is added to the vector. I have successfully implemented insert. The problem is that I can't get the inserting/ incrementing unique word count to work (elements aren't added to the vector). Here is my code:

#include <stdio.h>
#include <iostream>
#include <unistd.h>
#include "MyVector.h"
using namespace std;

struct wordCount{
    string val;
    int count;
};

int main(int argc, char** argv) {
  enum { total, unique,individual } mode = total;
  for (int c; (c = getopt(argc, argv, "tui")) != EOF;) {
    switch(c) {
    case 't': mode = total; break;
    case 'u': mode = unique; break;
    case 'i': mode = individual; break;
    }
  }
  argc += optind;
  argv += optind;
  string word;
  Vector<wordCount> words;
  Vector<wordCount>::iterator it;
  int count = 0;
  while (cin >> word) {
    count++;
    if(mode == unique || mode == individual){
      for(it=words.begin();it != words.end();it++){
        if((it-1)->val <= word && it->val >= word){
            // Found word, increment its count
            if(it->val == word){
                it->count++;
                break;
            }
            // Otherwise insert the new unique word
            else{
              cout << "adding unique word" << endl;
              wordCount* wc;
              wc = new wordCount;
              wc->val = word;
              wc->count = 1;
              words.insert(it,*wc);
              break;
            }
        }
      }
    }
  }
  switch (mode) {
    case total: cout << "Total: " << count << endl; break;
    case unique: cout << "Unique: " << words.size() << endl; break;
    case individual:
        for(it=words.begin();it!=words.end();it++){
          cout << it->val << ": " << it->count << endl;}
        break;
  }
}
share|improve this question
    
So if it's a duplicate word, what's the desired behavior? Should the duplicate be inserted? –  SirPentor May 6 '11 at 6:40
    
if((it-1)->val <= word && it->val >= word), how is this checking supposed to work? –  Shamim Hafiz May 6 '11 at 6:40
    
Duplicate words should increment the count of the word and not be inserted. –  Jonno_FTW May 6 '11 at 9:34
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3 Answers

up vote 2 down vote accepted

It's hard to say anything without seeing your implementation of Vector. If we assume it adheres to the standard container conventions (and doesn't have an error in trying to do so): you iterate starting with it.begin(), but immediately access it-1. That's undefined behavior for a standard container. (I don't know what it will do with your implementation ofVector`, but it would take some tricky code to make it work.)

At a higher level, there seems a basic inconsistency: you're keeping the vector sorted, but still using linear search. If you're using linear search, there's no point in keeping the vector sorted; just use:

Vector<wordCount>::iterator it = words.begin();
while ( it != words.end() && *it != word ) {
    ++ it;
}
if ( it == words.end() ) {
    //  not found, append to end...
} else {
    //  found, do whatever is appropriate...
}

(although I'd probably append to end, recover the iterator to the newly inserted element, and treat it as if it were found).

Alternatively, if you're keeping the vector sorted, use a binary search, not a linear search.

In either case, put the search in a separate function. (If this wasn't homework, I'd say just use std::vector and either std::find_if or std::lower_bound.)

Also, why the new in the innermost else? A more reasonable approach would be to provide a constructor for wordCount (which sets the count to 0), and do something like:

if ( ! found ) {
    it = words.insert( wordCount( word ) );
}
++ it->count;

The definition of found will depend on whether you're using binary search or not. In terms of the standard, this would be either:

Vector<wordCount>::iterator it
    = std::find_if( words.begin(), words.end(), MatchWord( word );
if ( it == words.end() ) {
    it = words.insert( words.end(), wordCount( word ) );
}
++ it-count;

or

Vector<wordCount>::iterator it
    = std::lower_bound( words.begin(), words.end(), word, CompareWord() );
if ( it == words.end() || it->val != word ) {
    it = words.insert( wordCount( word ) );
++ it->count;

You should probably strive for something similar, with a separate lookup function, returning either end, or the position for the insertion when the value isn't found.

This keeps the various concerns clearly separated, and avoids the excessive nesting in your code. (You should probably try to avoid break in general, and in multiply nested ifs, it is completely inacceptable—you'll notice that one of the other people answering missed them, and misunderstood the control flow because of it.)

share|improve this answer
    
I decided to go with a binary search which means inserting the wordCount so that it stays sorted. But I don't know how to insert and increment at the same time (so that only one loop is used which either ends up incrementing a count or inserting a new unique word). –  Jonno_FTW May 6 '11 at 16:00
    
If the entry isn't present, insert, and set the iterator to the inserted entry (the return value of insert). Then increment through the iterator, exactly as if you'd found it. –  James Kanze May 9 '11 at 7:48
    
I might add that this is a common idiom: look up and insert if not present. You might want to look at std::map<>::operator[] for example. (In your case, write a small function which returns an iterator to the corresponding entry, inserting it if necessary.) –  James Kanze May 9 '11 at 7:50
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Well, why don't you use a map? That's exactly what it's for, mapping from one thing to another. From a string (the word) to an int (the number of occurences) in your case. Or do you have to use a vector?

share|improve this answer
1  
This is homework. I suspect the whole point of the exercise is to implement a vector on top of a C array yourself. –  Frerich Raabe May 6 '11 at 6:48
1  
@Frerich: Well, I personally have always been opposing to the idea of teaching (mostly) useless stuff that only takes time and can be done way easier another way. –  Xeo May 6 '11 at 6:50
    
I already did it with a map but the TA said it wasn't acceptable. I have to use an array. –  Jonno_FTW May 7 '11 at 7:42
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Try to use a std::map.

Counter::Map words;
Counter count(words);

std::for_each(
    std::istream_iterator<std::string>(myInStream /*std::cin*/), 
    std::istream_iterator<std::string>(),
    count);

std::copy(
    words.begin(),
    words.end(),
    std::ostream_iterator<Counter::Map::value_type>(myOutStream /*std::cout*/, "\n"));

The Counter functor could look like this

struct Counter
{
    typedef std::map<std::string, size_t> Map;
    Counter(Map& m) : words(&m) {}
    void operator()(const std::string& word)
    {
        Map::iterator it = words->lower_bound(word);
        if (it == words->end() || it->first != word)
            words->insert(it, std::make_pair(word, 1));
        else
            ++it->second; 
    }
    Map* words;
};

Using a std::vector

struct CounterVector
{
    typedef std::vector<std::pair<std::string, size_t> > Vector;
    CounterVector(Vector& m) : words(&m) {}

    struct WordEqual
    {
        const std::string* s;
        WordEqual(const std::string& w) : s(&w) {}
        bool operator()(Vector::const_reference p) const {
            return *s == p.first;}
    };

    void operator()(const std::string& word)
    {
        Vector::iterator it = std::find_if(
            words->begin(), words->end(), WordEqual(word));
        if (it == words->end())
            words->push_back(std::make_pair(word,1));
        else
            ++it->second;
    }
    Vector* words;
};
share|improve this answer
    
I already did that but the TA said it wasn't acceptable. I have to use an array. –  Jonno_FTW May 6 '11 at 9:32
    
@Jonno_FTW: use another functor (see edit). –  hansmaad May 6 '11 at 10:57
    
You should avoid answering homework-questions with complete solutions. See this topic on meta. –  Björn Pollex May 6 '11 at 11:07
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