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I am reading some book and I have encountered a piece of code that wasn't explained in the book, but has some part which is very confusing to me, bold part, and I want to know what is it about.

void Set::intersection(const Set& s1, const Set& s2)
{
    Set s;
    s.arrayA = new double[ s1.sizeA<s2.sizeA ? s1.sizeA : s2.sizeA];
    int i, j, k;
    while(i < s1.sizeA && j < s2.sizeA)
        if(s1.arrayA[i] < s2.arrayA[j])
            i++;
        else if (s1.arrayA[i] > s2.arrayA[j])
            j++;
        else
            s.arrayA[k++] = s1.arrayA[j++,i++]; // question is about this line

    s.sizeA= k;
    deleteA();
    copyA(s);  
}

What does it do, and why is there two parameters inside the [] brackets? Thanks in advance.

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1  
You really got this from a book?? This looks dodgy -- s.sizeA= k; but k is not initialised, unless you have omitted something. –  mathematician1975 Jun 17 '12 at 19:17
    
Look 5th line. @mathematician1975 –  Takarakaka Jun 17 '12 at 19:18
    
So what is the value of k then? –  mathematician1975 Jun 17 '12 at 19:20
1  
@Takarakaka : The 5th line declares k, but does not initialize it. –  ildjarn Jun 17 '12 at 19:27
1  
i, j and k are still not initialised with any values before they are used! –  Mr Lister Jun 17 '12 at 19:31

1 Answer 1

up vote 1 down vote accepted

Two parameter within brackets is expression using comma operator. Result of such expression is result of last item (j++, i++ gives i incremented by one, while j is also incremented by one). So s.arrayA[i++] = s1.arrayA[j++,i++]; really can be converted to equal j++, s.arrayA[i++] = s1.arrayA[i++];

This code intersects to sets s1 and s2. It seems code suggests that arrays (that implement sets) are sorted. Code is walking on s1.arrayA and s2.arrayA and if some element is present in both sets, than it places that element in s.arrayA.

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OK, but how is it possible to do such a thing? It's not clear to me? What constructor is called? And why first j++ and only later i++? –  Takarakaka Jun 17 '12 at 19:15
    
It seems that Set s; calls default constructor for Set. –  Ruben Jun 17 '12 at 19:18
    
Aha, it is so much clear to me now. So why would I discard my first operator at all? –  Takarakaka Jun 17 '12 at 19:24
    
You cannot discard that operator, because it defines variable you use later. So is this code yours or from some book?) –  Ruben Jun 17 '12 at 19:27
    
From a book written by our local programmer. –  Takarakaka Jun 17 '12 at 19:31

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