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I need to parse the string "1.2345E-02" (a number expressed in exponential notation) to a decimal data type, but Decimal.Parse("1.2345E-02") simply throws an error

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10 Answers 10

187

It is a floating point number, you have to tell it that:

decimal d = Decimal.Parse("1.2345E-02", System.Globalization.NumberStyles.Float);
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52

It works if you specify NumberStyles.Float:

decimal x = decimal.Parse("1.2345E-02", NumberStyles.Float);
Console.WriteLine(x); // Prints 0.012345

I'm not entirely sure why this isn't supported by default - the default is to use NumberStyles.Number, which uses the AllowLeadingWhite, AllowTrailingWhite, AllowLeadingSign, AllowTrailingSign, AllowDecimalPoint, and AllowThousands styles. Possibly it's performance-related; specifying an exponent is relatively rare, I suppose.

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  • I am trying to get this working with double but it seems it won't. Not sure why it couldn't.. ?
    – JanT
    Aug 5 '19 at 14:01
  • @JanT: With no more information than "it won't" and "it couldn't" I can't really help more. I suggest you ask a new question with much more detail, showing what you tried and exactly what happened.
    – Jon Skeet
    Aug 5 '19 at 18:36
  • I tried to run code like in your answer but instead of decimal used double. But already found workaround. Cheers
    – JanT
    Aug 5 '19 at 19:32
  • 1
    @JanT It would be nice if you could share your workaround. I have exactly the same problem and could use the info. Thanks! Sep 7 '19 at 15:20
  • @RickGlimmer: I'm not sure how you know your problem is exactly the same as JanT's, given that they never provided detail of what they were trying to do. Replacing decimal with double in my code works fine for me, just as I'd expect it to. If you could provide details of what you're trying to, the code you're using, and the result, it would be much easier to help.
    – Jon Skeet
    Sep 7 '19 at 15:31
36

In addition to specifying the NumberStyles I would recommend that you use the decimal.TryParse function such as:

decimal result;
if( !decimal.TryParse("1.2345E-02", NumberStyles.Any, CultureInfo.InvariantCulture, out result) )
{
     // do something in case it fails?
}

As an alternative to NumberStyles.Any you could use a specific set if you're certain of your formats. e.g:

NumberStyles.AllowExponent | NumberStyles.Float
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  • 1
    But its not necessary to use Float with AllowExponent because Float = AllowLeadingWhite | AllowTrailingWhite | AllowLeadingSign | AllowDecimalPoint | AllowExponent Mar 31 '17 at 8:39
  • @LukášKmoch Indeed you're right. Force of habit as the others (apart from Any) do not include it. Shouldn't hurt to perform the extra OR though. Mar 31 '17 at 15:57
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decimal d = Decimal.Parse("1.2345E-02", System.Globalization.NumberStyles.Float);
10

Be cautious about the selected answer: there is a subtility specifying System.Globalization.NumberStyles.Float in Decimal.Parse which could lead to a System.FormatException because your system might be awaiting a number formated with ',' instead of '.'

For instance, in french notation, "1.2345E-02" is invalid, you have to convert it to "1,2345E-02" first.

In conclusion, use something along the lines of:

Decimal.Parse(valueString.Replace('.',','), System.Globalization.NumberStyles.Float);
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  • 1
    You're absolutely right. I don't understand why nobody else brought it up. Jan 5 '17 at 7:00
  • 12
    Better use CultureInfo.InvariantCulture as a 3rd parameter of Parse Nov 12 '17 at 13:36
5

The default NumberStyle for decimal.Parse(String) is NumberStyles.Number, so if you just want to add the functionality to allow exponents, then you can do a bitwise OR to include NumberStyles.AllowExponent.

decimal d = decimal
    .Parse("1.2345E-02", NumberStyles.Number | NumberStyles.AllowExponent);
4

I've found that passing in NumberStyles.Float, in some cases, changes the rules by which the string is processed and results in a different output from NumberStyles.Number (the default rules used by decimal.Parse).

For example, the following code will generate a FormatException in my machine:

CultureInfo culture = new CultureInfo("");
culture.NumberFormat.NumberDecimalDigits = 2;
culture.NumberFormat.NumberDecimalSeparator = ".";
culture.NumberFormat.NumberGroupSeparator = ",";
Decimal.Parse("1,234.5", NumberStyles.Float, culture); // FormatException thrown here

I'd recommend using the input NumberStyles.Number | NumberStyles.AllowExponent, as this will allow exponential numbers and will still process the string under the decimal rules.

CultureInfo culture = new CultureInfo("");
culture.NumberFormat.NumberDecimalDigits = 2;
culture.NumberFormat.NumberDecimalSeparator = ".";
culture.NumberFormat.NumberGroupSeparator = ",";
Decimal.Parse("1,234.5",NumberStyles.Number | NumberStyles.AllowExponent, culture); // Does not generate a FormatException

To answer the poster's question, the right answer should instead be:

decimal x = decimal.Parse("1.2345E-02", NumberStyles.Number | NumberStyles.AllowExponent);
Console.WriteLine(x);
1

Warning about using NumberStyles.Any:

"6.33E+03" converts to 6330 as expected. In German, decimal points are represented by commas, but 6,33E+03 converts to 633000! This is a problem for my customers, as the culture that generates the data is not known and may be different than the culture that is operating on the data. In my case, I always have scientific notation, so I can always replace comma to decimal point before parsing, but if you are working with arbitrary numbers, like pretty-formatted numbers like 1,234,567 then that approach doesn't work.

0

You don't need to replace the dots (respectively the commas) just specify the input IFormatProvider:

float d = Single.Parse("1.27315", System.Globalization.NumberStyles.Float, new CultureInfo("en-US"));
float d = Single.Parse("1,27315", System.Globalization.NumberStyles.Float, new CultureInfo("de-DE"));
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If you want to check and convert the exponent value use this

string val = "1.2345E-02";
double dummy;
bool hasExponential = (val.Contains("E") || val.Contains("e")) && double.TryParse(val, out dummy);
if (hasExponential)
{
    decimal d = decimal.Parse(val, NumberStyles.Float);
}

Hope this helps someone.

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