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I am looking at better way of writing following code using linq/lamda expression..

I am trying to form a string from list. I have function that convert t to string. So what i want is have a string from list.

Here is pseudo code:

  string strTemp;

  foreach (SearchTerm s in terms)
  {
    strTemp +=  string.Format(" and {0} ", s.CreateToString());
  }

where terms is list<searchTerms>.

Thanks CSC

share|improve this question
up vote 7 down vote accepted

Like this:

string temp = String.Join(" and ", terms.Select(s => s.CreateString()));

If you're not using .Net 4.0, you'll need to add .ToArray().

If you're calling the ToString method on each term (as opposed to a different method) and you are using .Net 4.0, you can simply write

string temp = String.Join(" and ", terms);
share|improve this answer
1  
...could you elaborate on why this is different with .Net 4.0? Is the Join(...) signature changed? – Peter Lillevold Jul 23 '10 at 14:16
1  
@Peter: .Net 4.0 adds three overloads that take IEnumerable<string>, IEnumerable<T>, and object[]. – SLaks Jul 23 '10 at 14:17
    
Thanks a lot. This works for me. – CSC Jul 23 '10 at 14:19
    
Earlier versions only took a string[] – SLaks Jul 23 '10 at 14:19

Here's an extension method I wrote to take an IEnumerable<T> and a string to use as a delimiter, and it returns the delimited string. Using this, you should be able to achieve what you want by calling terms.ToDelimitedString(" and ");

public static string ToDelimitedString<TSource>(this IEnumerable<TSource> list, string delimiter)
{
    // ensure that our list has at least 1 entry
    if (list == null || !list.Any())
        return String.Empty;

    StringBuilder returnString = new StringBuilder();
    TSource lastItemSeen = default(TSource);
    bool isFirstIteration = true;

    // enumerate through the list, "lagging" the appending by 1 entry.
    //  This avoids the need to strip away an extra trailing delimiter
    foreach (TSource item in list)
    {
        // null values should be skipped
        if (!isFirstIteration && lastItemSeen != null)
            returnString.AppendFormat("{0}{1}", lastItemSeen, delimiter);
        lastItemSeen = item;
        isFirstIteration = false;
    }

    // tack on the remaining list entry and return the string
    return returnString.Append(lastItemSeen).ToString();
}
share|improve this answer
    
... what is the value added for this code vs String.Join or IEnumerable<string>.Aggregate? This is a lot of code, but I don't get why you would write it? – Brian Genisio Jul 23 '10 at 14:26
    
@Brian: Until .Net 4.0, String.Join only took a string[]. Using the Aggregate extension method will either be slower or far messier. I've written a similar extension method myself in several answers here. stackoverflow.com/questions/2224012/… – SLaks Jul 23 '10 at 14:32
    
So? You have way too much code there. You are re-inventing the wheel: string.Join(" and ", terms.Select(term => term.ToString()).ToArray());. Even if you use Aggregate with a StringBuilder in the lambda, it is MUCH cleaner to do it that way. If you want the extension method, that is great (and I perfer it over directly calling Aggregate or string.Join), but to implement in this way is ugly and bug-prone. – Brian Genisio Jul 23 '10 at 14:34
    
@Brian: Don't call ToArray() if you can avoid it. It will be inefficient for large lists. – SLaks Jul 23 '10 at 14:37
1  
@SLaks: If you can quantitatively show me that it is noticeably slower with your data set, then I would agree. Almost always, ToArray() is negligible, and preferable over hard to read/maintain code. If ToArray() really is a problem, then use Aggregate with a StringBuilder. I fear that advice like "Don't call ToArray() if you can avoid it" is just pre-optimization in most cases, therefore I think it is incomplete advice. – Brian Genisio Jul 23 '10 at 14:40

@SLaks has a great answer. Just for completeness, since you asked for the "linq/lambda" way to do it:

var strTemp = 
  terms
  .Select(s => s.CreateString())
  .Aggregate("", (result, term) => result + term);
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