220

I have some fields returned by a collection as

2.4200
2.0044
2.0000

I want results like

2.42
2.0044
2

I tried with String.Format, but it returns 2.0000 and setting it to N0 rounds the other values as well.

8
  • 3
    initially record type is string??
    – Singleton
    Dec 24, 2010 at 10:56
  • 2
    See my answer: String.Format() with 'G' should get what you want.. i've updated my answer with a link to standard numeric formats. Very userful.
    – Dog Ears
    Dec 24, 2010 at 11:15
  • 3
    A decimal can be casted to double, and the default ToString for double emits the trailing zeros. read this Dec 24, 2010 at 11:30
  • 2
    And it will probably cost less performance (interms of very large amount of records) than passing the "G" as a string-format to the ToString function. Dec 25, 2010 at 16:30
  • 5
    You shouldn't convert a decimal to a double, it will lose significance, and may introduce power of two rounding inaccuracies.
    – kristianp
    Feb 19, 2015 at 5:52

22 Answers 22

260

I ran into the same problem but in a case where I do not have control of the output to string, which was taken care of by a library. After looking into details in the implementation of the Decimal type (see http://msdn.microsoft.com/en-us/library/system.decimal.getbits.aspx), I came up with a neat trick (here as an extension method):

public static decimal Normalize(this decimal value)
{
    return value/1.000000000000000000000000000000000m;
}

The exponent part of the decimal is reduced to just what is needed. Calling ToString() on the output decimal will write the number without any trailing 0. E.g.

1.200m.Normalize().ToString();
10
  • 38
    This answer owns because unlike basically every other answer on this question (and even the whole subject) is actually WORKS and does what the OP is asking.
    – Coxy
    Dec 13, 2011 at 1:33
  • 3
    is the number of 0s an exact quantity here or just to cover most expected values? Sep 23, 2012 at 5:48
  • 5
    MSDN states "The scaling factor is implicitly the number 10, raised to an exponent ranging from 0 to 28", which I understand as the decimal number will have at most 28 digits past the decimal point. Any number of zeros >= 28 should work. Oct 9, 2012 at 16:32
  • 3
    This is the best answer! The number in the answer has 34 figures, the 1 followed by 33 0-s, but that creates exactly the same decimal instance as a number with 29 figures, one 1 and 28 0-s. Just like @ThomasMaterna said in his comment. No System.Decimal can have more than 29 figures (numbers with leading digits greater than 79228... can have only 28 figures in total). If you want more trailing zeroes, multiply by 1.000...m instead of dividing. Also, Math.Round can chop off some zeroes, for example Math.Round(27.40000m, 2) gives 27.40m, so only one zero left. Aug 26, 2013 at 12:05
  • 2
    Great trick but does NOT work on Mono and is not guarantueed to work on feature versions of .NET
    – Bigjim
    Dec 17, 2013 at 23:25
196

Is it not as simple as this, if the input IS a string? You can use one of these:

string.Format("{0:G29}", decimal.Parse("2.0044"))

decimal.Parse("2.0044").ToString("G29")

2.0m.ToString("G29")

This should work for all input.

Update Check out the Standard Numeric Formats I've had to explicitly set the precision specifier to 29 as the docs clearly state:

However, if the number is a Decimal and the precision specifier is omitted, fixed-point notation is always used and trailing zeros are preserved

Update Konrad pointed out in the comments:

Watch out for values like 0.000001. G29 format will present them in the shortest possible way so it will switch to the exponential notation. string.Format("{0:G29}", decimal.Parse("0.00000001",System.Globalization.CultureInfo.GetCultureInfo("en-US"))) will give "1E-08" as the result.

7
  • 16
    Watch out for values like 0.000001. G29 format will present them in the shortest possible way so it will switch to the exponential notation. string.Format("{0:G29}", decimal.Parse("0.00000001",System.Globalization.CultureInfo.GetCultureInfo("en-US"))) will give "1E-08" as the result
    – Konrad
    Aug 31, 2011 at 14:51
  • 2
    Note that "G0" works just like "G29", since, as stated, when the precision specifier is zero, the default precision for the type (that is 29 for decimal) is used. Jul 7, 2013 at 22:08
  • 16
    @Konrad - is there a way to avoid the Scientific notation for numbers that have 5 or 6 decimal places?
    – Jill
    Oct 24, 2013 at 14:23
  • @DogEars what about if I get 20,00000 from database and I want to present on my UI only 20,00?
    – Roxy'Pro
    Feb 2, 2017 at 13:34
  • Warning! This answer works only if your current culture expects a point as decimal separator. In many cultures the point is assumed to be the thousands separator and the result will be totally wrong. Always specify the culture info in these conversions.
    – Steve
    Jun 29, 2018 at 19:02
106

In my opinion its safer to use Custom Numeric Format Strings.

decimal d = 0.00000000000010000000000m;
string custom = d.ToString("0.#########################");
// gives: 0,0000000000001
string general = d.ToString("G29");
// gives: 1E-13
2
39

I use this code to avoid "G29" scientific notation:

public static string DecimalToString(this decimal dec)
{
    string strdec = dec.ToString(CultureInfo.InvariantCulture);
    return strdec.Contains(".") ? strdec.TrimEnd('0').TrimEnd('.') : strdec;
}

EDIT: using system CultureInfo.NumberFormat.NumberDecimalSeparator :

public static string DecimalToString(this decimal dec)
{
    string sep = CultureInfo.CurrentCulture.NumberFormat.NumberDecimalSeparator;
    string strdec = dec.ToString(CultureInfo.CurrentCulture);
    return strdec.Contains(sep) ? strdec.TrimEnd('0').TrimEnd(sep.ToCharArray()) : strdec;
}
4
  • 10
    Nice, but it won't work for cultures that use comma for the decimal separator. You'd need to use Culture.NumberFormat.NumberDecimalSeparator
    – blearyeye
    Jan 12, 2017 at 13:57
  • 1
    Best approach. Everything else is needlessly complicated. Just remember always to check if your number contains decimal point.
    – RRM
    Oct 30, 2018 at 15:33
  • 1
    To be an extension is missing the "this" before the parameter: public static string DecimalToString(this decimal dec) Jan 23, 2020 at 16:15
  • Thank you very much for the comments. I have updated the answer with a new version with the tips.
    – x7BiT
    Feb 29, 2020 at 21:44
27

Use the hash (#) symbol to only display trailing 0's when necessary. See the tests below.

decimal num1 = 13.1534545765;
decimal num2 = 49.100145;
decimal num3 = 30.000235;

num1.ToString("0.##");       //13.15%
num2.ToString("0.##");       //49.1%
num3.ToString("0.##");       //30%
9
  • 9
    Not an answer. You are not removing trailing zeros, you are removing precision. Your proposed method num1.ToString("0.##") should return 13.1534545765 (no change) becouse there aren't any trailing zeros. Jan 10, 2017 at 17:23
  • 2
    And that's exactly why I'm displaying the answers to my three proposed inputs so users can see how my solution works.
    – Fizzix
    Jun 19, 2017 at 4:17
  • 1
    It does not answer the question even if you list proposed inputs. Dec 24, 2017 at 3:56
  • @Jan'splite'K. It's the same, because trailing zeros often preserve significance, therefore the precision decreases when one removes them. Just google the topic. Jan 7, 2020 at 16:48
  • 1
    Perfect answer to the question. BEST answer in my opinion. Comment that it removes precision is correct, but that was not the quesiton. Most important -- it's what I need. My users will typically enter whole numbers, maybe something like 2.5, but I need to support 3 digits beyond the decimal point. So I want to give them what they entered, not with a bunch of zeroes they didn't enter. e.g., Console.Write ($"num3={num3:0.##}"); => num3=30
    – bobwki
    Mar 19, 2020 at 0:54
19

I found an elegant solution from http://dobrzanski.net/2009/05/14/c-decimaltostring-and-how-to-get-rid-of-trailing-zeros/

Basically

decimal v=2.4200M;

v.ToString("#.######"); // Will return 2.42. The number of # is how many decimal digits you support.
4
  • 1
    Note that if v is 0m, the result of your code is an empty string rather than "0".
    – Sam
    Feb 22, 2017 at 1:00
  • 4
    Yes. It should be "0.########".
    – PRMan
    May 24, 2017 at 23:33
  • Good answer, but the link is broken -- goes to the site's home-page now -- so you could likely remove it. Aug 21, 2020 at 13:08
  • You will lose data if your value has more decimal places than your format string. decimal test = 0.00000005m; Console.WriteLine(test.ToString("0.######"));
    – IHAFURR
    Feb 22, 2021 at 13:18
4

A very low level approach, but I belive this would be the most performant way by only using fast integer calculations (and no slow string parsing and culture sensitive methods):

public static decimal Normalize(this decimal d)
{
    int[] bits = decimal.GetBits(d);

    int sign = bits[3] & (1 << 31);
    int exp = (bits[3] >> 16) & 0x1f;

    uint a = (uint)bits[2]; // Top bits
    uint b = (uint)bits[1]; // Middle bits
    uint c = (uint)bits[0]; // Bottom bits

    while (exp > 0 && ((a % 5) * 6 + (b % 5) * 6 + c) % 10 == 0)
    {
        uint r;
        a = DivideBy10((uint)0, a, out r);
        b = DivideBy10(r, b, out r);
        c = DivideBy10(r, c, out r);
        exp--;
    }

    bits[0] = (int)c;
    bits[1] = (int)b;
    bits[2] = (int)a;
    bits[3] = (exp << 16) | sign;
    return new decimal(bits);
}

private static uint DivideBy10(uint highBits, uint lowBits, out uint remainder)
{
    ulong total = highBits;
    total <<= 32;
    total = total | (ulong)lowBits;

    remainder = (uint)(total % 10L);
    return (uint)(total / 10L);
}
1
4

This is simple.

decimal decNumber = Convert.ToDecimal(value);
        return decNumber.ToString("0.####");

Tested.

Cheers :)

1

Depends on what your number represents and how you want to manage the values: is it a currency, do you need rounding or truncation, do you need this rounding only for display?

If for display consider formatting the numbers are x.ToString("")

http://msdn.microsoft.com/en-us/library/dwhawy9k.aspx and

http://msdn.microsoft.com/en-us/library/0c899ak8.aspx

If it is just rounding, use Math.Round overload that requires a MidPointRounding overload

http://msdn.microsoft.com/en-us/library/ms131274.aspx)

If you get your value from a database consider casting instead of conversion: double value = (decimal)myRecord["columnName"];

1

Trying to do more friendly solution of DecimalToString (https://stackoverflow.com/a/34486763/3852139):

private static decimal Trim(this decimal value)
{
    var s = value.ToString(CultureInfo.InvariantCulture);
    return s.Contains(CultureInfo.InvariantCulture.NumberFormat.NumberDecimalSeparator)
        ? Decimal.Parse(s.TrimEnd('0'), CultureInfo.InvariantCulture)
        : value;
}

private static decimal? Trim(this decimal? value)
{
    return value.HasValue ? (decimal?) value.Value.Trim() : null;
}

private static void Main(string[] args)
{
    Console.WriteLine("=>{0}", 1.0000m.Trim());
    Console.WriteLine("=>{0}", 1.000000023000m.Trim());
    Console.WriteLine("=>{0}", ((decimal?) 1.000000023000m).Trim());
    Console.WriteLine("=>{0}", ((decimal?) null).Trim());
}

Output:

=>1
=>1.000000023
=>1.000000023
=>
1

how about this:

public static string TrimEnd(this decimal d)
    {
        string str = d.ToString();
        if (str.IndexOf(".") > 0)
        {
            str = System.Text.RegularExpressions.Regex.Replace(str.Trim(), "0+?$", " ");
            str = System.Text.RegularExpressions.Regex.Replace(str.Trim(), "[.]$", " ");
        }
        return str;
    }
0

You can just set as:

decimal decNumber = 23.45600000m;
Console.WriteLine(decNumber.ToString("0.##"));
2
  • 1
    For that to work you should put twenty eight '#' chars instead of just two. Jun 18, 2017 at 16:40
  • yeah, I misunderstood his question... =/ Dec 17, 2019 at 20:53
0

The following code could be used to not use the string type:

int decimalResult = 789.500
while (decimalResult>0 && decimalResult % 10 == 0)
{
    decimalResult = decimalResult / 10;
}
return decimalResult;

Returns 789.5

0

In case you want to keep decimal number, try following example:

number = Math.Floor(number * 100000000) / 100000000;
0

This will work:

decimal source = 2.4200m;
string output = ((double)source).ToString();

Or if your initial value is string:

string source = "2.4200";
string output = double.Parse(source).ToString();

Pay attention to this comment.

9
  • 2
    @Damien, yes, and note, that for these puroposes (you won't feel anything unless you do a billion of records), firstly because double is faster, second, because passing a string format to the ToString function cost more performance than not passing params. again, you won't feel anything unless you work on gazillions of records. Dec 27, 2010 at 6:06
  • 1
    You don't have to specify G, cuz double.ToString removes trailing zeros by default. Dec 27, 2010 at 7:32
  • 4
    Watch out for values like 0.000001. These will be presented in the exponential notation. double.Parse("0.00000001",System.Globalization.CultureInfo.GetCultureInfo("en-US")).ToString() will give "1E-08" as the result
    – Konrad
    Aug 31, 2011 at 14:55
  • 20
    Don't EVER do this. Usually, the reason you have a decimal is because you are representing a number precisely (not approximately like a double does). Granted, this floating point error is probably pretty small, but could result in displaying incorrect numbers, none-the-less
    – Adam Tegen
    Sep 13, 2013 at 15:37
  • 2
    Ouch, converting a 128-bit datatype (decimal) to a 64-bit datatype (double) for formatting, is not a good idea!
    – avl_sweden
    Jul 11, 2014 at 6:54
0

Here is an Extention method I wrote, it also removes dot or comma if it`s the last character (after the zeros were removed):

public static string RemoveZeroTail(this decimal num)
{
    var result = num.ToString().TrimEnd(new char[] { '0' });
    if (result[result.Length - 1].ToString() == "." || result[result.Length - 1].ToString() == ",")
    {
        return result.Substring(0, result.Length - 1);
    }
    else
    {
        return result;
    }
}
0

To remove trailing zero's from a string variable dateTicks, Use

return new String(dateTicks.Take(dateTicks.LastIndexOf(dateTicks.Last(v => v != '0')) + 1).ToArray());

0

Additional Answer:

In a WPF Application using XAML you could use

{Binding yourDecimal, StringFormat='#,0.00#######################'}

The above answer will preserve the zero in some situations so you could still return 2.00 for example

{Binding yourDecimal, StringFormat='#,0.#########################'}

If you want to remove ALL trailing zeros, adjust accordingly.

0

The following code will be able to remove the trailing 0's. I know it's the hard way but it works.

private static string RemoveTrailingZeros(string input) 
{
    for (int i = input.Length - 1; i > 0; i-- )
    {
        if (!input.Contains(".")) break;
        if (input[i].Equals('0'))
        {
            input= input.Remove(i);
        }
        else break;
    }
    return input;
}
-2

try this code:

string value = "100";
value = value.Contains(".") ? value.TrimStart('0').TrimEnd('0').TrimEnd('.') : value.TrimStart('0');
2
  • 3
    What about locales that don't use '.'? Jul 11, 2014 at 9:03
  • not an option at all in comparison with other approaches within this post. Converting to string and back is always bad option to manipulate numbers (at least because of locale) Jun 19, 2018 at 13:34
-3

Very simple answer is to use TrimEnd(). Here is the result,

double value = 1.00;
string output = value.ToString().TrimEnd('0');

Output is 1 If my value is 1.01 then my output will be 1.01

2
  • 5
    What about if value = 100? Nov 14, 2017 at 13:57
  • 5
    @Raj De Inno Even if value is 1.00 the output it is giving is "1." not "1" Jan 4, 2018 at 7:30
-11

try like this

string s = "2.4200";

s = s.TrimStart("0").TrimEnd("0", ".");

and then convert that to float

4
  • 1
    you can use subString() method for that, but according to question posted here, i don't see any requirement like that =)
    – Singleton
    Dec 24, 2010 at 11:03
  • 2
    What about locales that don't use '.' Jan 31, 2011 at 11:57
  • 10
    This fails miserably for numbers which are an even multiple of 10.0.
    – Ben Voigt
    Feb 21, 2011 at 15:00
  • 1
    What @BenVoigt said is entirely correct, as an examle "12300.00" will be trimmed to "123". Another effect that seems undesirable is that some numbers, like "0.00" are trimmed all the way down to the empty string "" (although this number is a special case of being an integral "multiple of 10.0"). Aug 26, 2013 at 12:35

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.