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Following Linq to datatable query gives me error Specific cast is not valid.

decimal[] temp = dt.AsEnumerable()
    .Select(r => new
       {
           totLen = r.Field<decimal>("Quantity") 
                     * (r.Field<decimal>("Breath") 
                         * r.Field<decimal>("Length"))
       })
    .Cast<decimal>()
    .ToArray();

Can any one suggest me why?

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4 Answers 4

up vote 1 down vote accepted

You don't need to create anonymous type:

decimal[] temp = dt.AsEnumerable()
    .Select(r => r.Field<int>("Quantity") 
               * r.Field<decimal>("Breath") 
               * r.Field<decimal>("Length"))
    .ToArray();
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You should be able to just return a decimal straight from Select().

decimal[] temp = dt.AsEnumerable().Select(
    r => r.Field<decimal>("Quantity") * (r.Field<decimal>("Breath") * r.Field<decimal>("Length")
)).ToArray();
share|improve this answer
    
Additional brackets and casting is not necessary. –  Dennis Jan 22 '13 at 10:31
    
@Dennis There is an edit button for this :) –  Rudi Visser Jan 22 '13 at 10:34

You are trying to cast anonymous type to decimal, which of course will not work. Do not create anonymous type - simply select decimal value:

decimal[] temp = (from r in dt.AsEnumerable()
                  select r.Field<decimal>("Quantity") * 
                         r.Field<decimal>("Breath") * 
                         r.Field<decimal>("Length")).ToArray();

Same with Linq methods syntax:

decimal[] temp = dt.AsEnumerable()
                   .Select(r => r.Field<decimal>("Quantity") * 
                                r.Field<decimal>("Breath") * 
                                r.Field<decimal>("Length"))
                   .ToArray();

How to make your code work? Use Select instead of Cast:

.Select(x => x.totLen).ToArray();

But again, you don't need anonymous type to select single value.

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Your projection (Select) creates instances of anonymous type like this:

class SomeAnonymousClass
{
   public totLen { get; set; }
}

...which instances can't be casted to decimal.

share|improve this answer
    
But I need value in decimal point. –  Sagar Upadhyay Jan 22 '13 at 10:27
    
@SagarUpadhyay: if so, why are you creating anonymous type? –  Dennis Jan 22 '13 at 10:31

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