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 would like to use an IEnumerable to generate a sequence of values -- specifically, a list of Excel-like column headers.

private IEnumerable<string> EnumerateSymbolNames()
{
  foreach (var sym in _symbols)
  {
    yield return sym;
  }

  foreach (var sym1 in _symbols)
  {
    foreach (var sym2 in _symbols)
    {
      yield return sym1 + sym2;
    }
  }

  yield break;
}
private readonly string[] _symbols = new string[] { "A", "B", "C", ...};

This works fine if I fetch the values from a foreach loop. But what I want is to use the iterator block as a state machine and fetch the next available column header in response to a user action. And this -- consuming the generated values -- is where I've run into trouble.

So far I've tried

return EnumerateSymbolNames().Take(1).FirstOrDefault();

return EnumerateSymbolNames().Take(1).SingleOrDefault();

return EnumerateSymbolNames().FirstOrDefault();

var enumerator = EnumerateSymbolNames().GetEnumerator();
enumerator.MoveNext();
return enumerator.Current;

... but none of these have worked. (All repeatedly return "A".) Based on the responses to this question, I'm wondering what I want is even possible -- although several of the responses to that post suggest techniques similar to my last one.

And no, this is not a homework assignment :)

share|improve this question
    
In your last example, just make enumerator a field and initialize it once instead of calling EnumerateSymbolNames().GetEnumerator() everytime. –  sloth Sep 18 '12 at 13:04

3 Answers 3

up vote 4 down vote accepted

When you use GetEnumerator, you need to use the same enumerator for each iteration. If you call GetEnumerator a second time, it will start over at the beginning of the collection.

If you want to use Take, you must first Skip the number of records that have already been processed.

share|improve this answer
5  
Although Skip and Take easily lead to an O(n^2) algorithm in this case... –  usr Sep 18 '12 at 12:51
2  
Not to contradict anything in this answer, but to add, the enumerator is the state machine mentioned in the question. The enumerable produces a new instance of that state machine, in the initial state. –  hvd Sep 18 '12 at 13:05

This code worked for me...

var states = EnumerateSymbolNames();
var stateMachine = states.GetEnumerator();

do
{
  //something
} while (stateMachine.MoveNext());

When print the results within that loop, it successfully produced the following output:

A
B
C
...
AA
AB
AC
...
BA
BB
...

Which is what I think you intended...

share|improve this answer

As both @cadrell0's answer and @Mr Steak's comment point out, what I needed to do was retain a reference to the enumerator returned by EnumerateSymbolNames().GetEnumerator().

When you're in a foreach loop, this is done implicitly for you: the iterator variable wraps an enumerator, which (I'm assuming) is scoped locally to the loop. So -- and this is the key piece -- when the iterator block does (the equivalent of)

enumerator.MoveNext();
return enumerator.Current;

... you're always using the same enumerator. Whereas what I was doing was creating / obtaining a different (new) enumerator every time. And predictably, it always started out at the first position in the sequence. This was probably obvious to everyone but me; it seems obvious to me as well in hindsight. (I was thinking of the enumerator as sort of a singleton property of the sequence, assuming that I'd be getting the same enumerator back every time.)

The following does what I want:

public class SymbolGenerator
{
    private readonly string[] _symbols = { "A", "B", "C", ... };

    private readonly IEnumerator<string> _enumerator;

    public SymbolGenerator()
    {
        _enumerator = EnumerateSymbols().GetEnumerator();
    }

    public string GetNextSymbol()
    {
        _enumerator.MoveNext();
        return _enumerator.Current;
    }

    private IEnumerable<string> EnumerateSymbols()
    {
        // (unchanged)
    }
}
share|improve this answer

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.