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c# decimal.toString() conversion problem

Example: I have a value in decimal(.1) when I convert decimal to string using toString() it returns (0,10). Instead of .(DOT) it returns ,(COMMA).

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5 Answers 5

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I believe this is to do with the culture/region which your operating system is set to. You can fix/change the way the string is parsed by adding in a format overload in the .ToString() method.

For example

decimalValue.ToString(CultureInfo.InvariantCulture);
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  • @sivaprakash Feel free to tick my answer as correct then :)
    – Ralt
    Jun 17, 2015 at 15:04
  • for marking answer as correct requires 15reputation.i have only 7 Jun 20, 2015 at 6:13
  • 1
    Hey, @sivaprakash just a friednly reminder that you have enough reputation to tick the answer as correct
    – Tomek
    Oct 10, 2017 at 10:30
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you have to define the format, it will depend in your local setting or define the format, using something like this

decimal.ToString(System.Globalization.CultureInfo.CreateSpecificCulture("en-us"));

cheers

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For this to be happening, the thread's current culture must be one that uses a separator of comma instead of dot.

You can change this on a per ToString basis using the overload for ToString that takes a culture:

var withDot = myVal.ToString(CultureInfo.InvariantCulture);

Alternatively, you can change this for the whole thread by setting the thread's culture before performing any calls to ToString():

var ci = CultureInfo.InvariantCulture;
Thread.CurrentThread.CurrentCulture = ci;
Thread.CurrentThread.CurrentUICulture = ci;

var first = myVal.ToString();
var second = anotherVal.ToString();
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For comma (,)

try this:

decimalValue.ToString(System.Globalization.CultureInfo.CreateSpecificCulture("tr-tr"))
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Then your current culture's NumberDecimalSeparator is , instead of ..

If that's not desired you can force the dot with CultureInfo.InvariantCulture:

decimal num = 0.1m;
string numWithDotAsSeparator = num.ToString(CultureInfo.InvariantCulture);

or NumberFormatInfo.InvariantInfo

string numWithDotAsSeparator = num.ToString(NumberFormatInfo.InvariantInfo)

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