56

I am trying to format the contents of a text box:

this.lblSearchResults1.Text =
    Convert.ToDouble(lblSearchResults1.Text).ToString(); 

How do I amend this so that I the text includes comma/thousand separators?

i.e. 1,000 instead of 1000.

2

7 Answers 7

89

Looking at the standard numeric format strings:

You can most easily use 'N' which will do the right thing based on the user culture, so in your case you can just add "N" as a param to the ToString

([double]12345.67).ToString("N")

12,345.67

3
  • This answer is slightly better than ToString("#,##0.00"), which works the same and also respects different thousand-separators in different cultures (e.g. "." in Germany and "'" in Switzerland). But ToString("N") makes it clearer that format might be culture-specific.
    – Knasterbax
    Feb 17, 2016 at 14:55
  • Respecting individual culture on this one gets the win for me. However, what about displaying an integer as an integer, rather than a float?
    – Xonatron
    Jan 18, 2018 at 1:16
  • 5
    Answer is "N0", where 0 is the number of decimal places. "N1", "N2" ,etc would work.
    – Xonatron
    Jan 18, 2018 at 1:22
66

For complete custom control, use ... .ToString("#,##0.00") or variations thereof. The . and , will be replaced by culture dependent symbols. In most of europe you'd get 1.234,56.
Another useful picture is 0.0#.

To use a pattern depending on the users (or on a selected) culture, use The Numeric ("N") Format Specifier, as in .ToString("N") or "... {0:N}".

2
  • 1
    I'm following this approach, but I get reversed result on Windows Server 2012, 530000 becomes 000,530
    – Akbari
    May 24, 2016 at 6:13
  • Research that thoroughly and then maybe post a separate question with a verifiable example. Include the computer's culture settings. May 24, 2016 at 7:31
11

The easiest way to do it would be something like:

Convert.ToDouble("1234567.12345").ToString("N")

If you want to control the decimal places you can do something like:

Convert.ToDouble("1234567.12345").ToString("N3")

In general look at the overloads on ToString for more exciting possibilities.

2
  • 6
    (Int32.Parse("78956258")).ToString("N0") -- Keep it simple !! Sep 13, 2018 at 11:29
  • 2
    @JG'sSpark: I'm not sure what point you are making... That seems the same as I have in my answer, not simpler really...
    – Chris
    Sep 13, 2018 at 11:58
10

If you take a closer look at Standard Numeric Format Strings you can try one of the following:

.ToString("n", CultureInfo.GetCultureInfo("en-US"))
.ToString("n", CultureInfo.GetCultureInfo("de-DE"))
.ToString("n", CultureInfo.CurrentCulture)
8

An alternative to the above mentioned responses would be to use

this.lblSearchResults1.Text = String.Format("{0:N}", Convert.ToDouble(lblSearchResults1.Text))

If you wanted decimal places, just enter the amount of decimal places you wish to have after the N. The following example will return the value with 2 decimal places.

this.lblSearchResults1.Text = String.Format("{0:N2}", Convert.ToDouble(lblSearchResults1.Text))

See http://msdn.microsoft.com/en-us/library/system.string.format.aspx for more information.

3

double.Parse(Amount).ToString("N");

1

Do not cast integral to double to do this!
Use NumberFormatInfo helper class, e.g:

    var nfi = new NumberFormatInfo() {
        NumberDecimalDigits = 0,
        NumberGroupSeparator = "."
    };

    var i = 1234567890;
    var s = i.ToString("N", nfi); // "1.234.567.890"

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