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I have the following C# code that reads in data from a datatable (which was original constructed from an Excel spreadsheet)

    private byte GetVal(DataRow dataRow, string caption)
    {
        var val = dataRow.GetValue(caption).ToString().Trim();
        if (!String.IsNullOrEmpty(val))
        {
            return (byte)(Decimal.Parse(val) * 100);
        }
        return (byte)0;
    }

this is blowing up because there is value of: "5.5555555555555552E-2" reading in from one of the cells (the val variable)

its blowing up on this line:

    return (byte)(Decimal.Parse(val) * 100);

with the error: Input string was not in a correct format.

What is the best way to work around this so i can read in the value?

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2 Answers 2

up vote 2 down vote accepted

Try this:

return (byte)(Decimal.Parse(val, System.Globalization.NumberStyles.Float, System.Globalization.CultureInfo.InvariantCulture));

Decimal.Parse Method (String, NumberStyles, IFormatProvider)

NumberStyles.AllowExponent (AllowExponentis a subset of NumberStyles.Float)

Indicates that the numeric string can be in exponential notation. The AllowExponent flag allows the parsed string to contain an exponent that begins with the "E" or "e" character and that is followed by an optional positive or negative sign and an integer. In other words, it successfully parses strings in the form nnnExx, nnnE+xx, and nnnE-xx. It does not allow a decimal separator or sign in the significand or mantissa; to allow these elements in the string to be parsed, use the AllowDecimalPoint and AllowLeadingSign flags, or use a composite style that includes these individual flags.

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I am now getting that same error when the number is "0.5" . . any suggestions ? –  leora Jun 6 '12 at 22:47
    
@Ieora. Edited my answer, but why do you think that it's a byte when there are values with decimal places? Then i would suggest to return Decimal or Double. –  Tim Schmelter Jun 6 '12 at 23:14
return (byte)(Decimal.Parse(val, NumberStyles.AllowExponent) * 100);
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1  
There's a syntax problem in your code ;) –  Tim Schmelter Jun 6 '12 at 23:12
    
lol oops. thanks. –  seekerOfKnowledge Jun 6 '12 at 23:13

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