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How do you left pad an int with zeros in java when converting to a string?

I'm basically looking to pad out integers up to 9999 with the leading zeros (e.g. 1 = "0001").

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1  
I can't answer anymore because the question is locked but I've used this before : new String(Num+10000).substring(1); –  Randyaa Aug 13 at 3:20
    
@Randyaa I think you mean new String(Integer.toString(num + 10000)).substring(1). –  Duncan Sep 23 at 8:29
    
Yup, that's it! my bad... I typed it in on my phone. You dont' need the "new String" either : Integer.toString(num+10000).subString(1) works. –  Randyaa Sep 23 at 15:10

11 Answers 11

up vote 723 down vote accepted
String.format("%05d", yournumber);

for zero-padding with length=5.

http://download.oracle.com/javase/7/docs/api/java/util/Formatter.html

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59  
Extra tip : Replace the d with a x ("%05x") for hexadecimal –  h3xStream Dec 17 '10 at 16:23
1  
Should I expect the options in String.format to be akin to printf() in C? –  Ehtesh Choudhury Apr 13 '11 at 18:23
6  
If you have to do this for a large list of values, performance of DecimalFormat is at least 3 times better than String.format(). I'm in the process of doing some performance tuning myself and running the two in Visual VM shows the String.format() method accumulating CPU time at about 3-4 times the rate of DecimalFormat.format(). –  Steve Ferguson May 1 '13 at 17:56
    
@Shurane mostly, yes. –  vikingsteve Nov 21 '13 at 12:33
1  
And to add more than 9 zeros use something like %012d –  Mohammad Banisaeid Aug 23 at 11:26

If you for any reason use pre 1.5 Java then may try with Apache Commons Lang method

org.apache.commons.lang.StringUtils.leftPad(String str, int size, '0')
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+1. apache commons solves 50% of utility problems in Java. –  Sajal Dutta Aug 30 '13 at 12:18
15  
...and not using java version 1.4 solves the other 50% –  vikingsteve Nov 21 '13 at 12:34

Found this example... Will test...

import java.text.DecimalFormat;
class TestingAndQualityAssuranceDepartment
{
    public static void main(String [] args)
    {
        int x=1;
        DecimalFormat df = new DecimalFormat("00");
        System.out.println(df.format(x));
    }
}

Tested this and:

String.format("%05d",number);

Both work, for my purposes I think String.Format is better and more succinct.

Cheers.

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1  
Yes, I was going to suggest DecimalFormat because I didn't know about String.format, but then I saw uzhin's answer. String.format must be new. –  Paul Tomblin Jan 23 '09 at 15:48
    
It's similar how you'd do it in .Net Except the .Net way looks nicer for small numbers. –  Omar Kooheji Jan 23 '09 at 16:00
int x = 1;
System.out.format("%05d",x);

if you want to print the formatted text directly onto the screen.

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But OP never asked for it. Internally String.format and System.out.format call the same java.util.Formatter implementation. –  bsd Aug 24 '13 at 13:40
3  
True it wasn't asked for but it is handy and I have learnt somethign new today. –  vikingsteve Nov 21 '13 at 12:35

If performance is important in your case you could do it yourself with less overhead compared to the String.format function:

/**
 * @param in The integer value
 * @param fill The number of digits to fill
 * @return The given value left padded with the given number of digits
 */
public static String lPadZero(int in, int fill){

    boolean negative = false;
    int value, len = 0;

    if(in >= 0){
        value = in;
    } else {
        negative = true;
        value = - in;
        in = - in;
        len ++;
    }

    if(value == 0){
        len = 1;
    } else{         
        for(; value != 0; len ++){
            value /= 10;
        }
    }

    StringBuilder sb = new StringBuilder();

    if(negative){
        sb.append('-');
    }

    for(int i = fill; i > len; i--){
        sb.append('0');
    }

    sb.append(in);

    return sb.toString();       
}

Performance

public static void main(String[] args) {
    Random rdm;
    long start; 

    // Using own function
    rdm = new Random(0);
    start = System.nanoTime();

    for(int i = 10000000; i != 0; i--){
        lPadZero(rdm.nextInt(20000) - 10000, 4);
    }
    System.out.println("Own function: " + ((System.nanoTime() - start) / 1000000) + "ms");

    // Using String.format
    rdm = new Random(0);        
    start = System.nanoTime();

    for(int i = 10000000; i != 0; i--){
        String.format("%04d", rdm.nextInt(20000) - 10000);
    }
    System.out.println("String.format: " + ((System.nanoTime() - start) / 1000000) + "ms");
}

Result

Own function: 1697ms

String.format: 38134ms

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Above there's a mention of using DecimalFormat being faster. Did you have any notes on that? –  Patrick May 22 at 19:21

Although many of the above approaches are good, but sometimes we need to format integers as well as floats. We can use this, particularly when we need to pad particular number of zeroes on left as well as right of decimal numbers.

import java.text.NumberFormat;  
public class NumberFormatMain {  

public static void main(String[] args) {  
    int intNumber = 25;  
    float floatNumber = 25.546f;  
    NumberFormat format=NumberFormat.getInstance();  
    format.setMaximumIntegerDigits(6);  
    format.setMaximumFractionDigits(6);  
    format.setMinimumFractionDigits(6);  
    format.setMinimumIntegerDigits(6);  

    System.out.println("Formatted Integer : "+format.format(intNumber).replace(",",""));  
    System.out.println("Formatted Float   : "+format.format(floatNumber).replace(",",""));  
 }    
}  
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Check my code that will work for integer and String.

Assume our first number is 2. And we want to add zeros to that so the the length of final string will be 4. For that you can use following code

    int number=2;
    int requiredLengthAfterPadding=4;
    String resultString=Integer.toString(number);
    int inputStringLengh=resultString.length();
    int diff=requiredLengthAfterPadding-inputStringLengh;
    if(inputStringLengh<requiredLengthAfterPadding)
    {
        resultString=new String(new char[diff]).replace("\0", "0")+number;
    }        
    System.out.println(resultString);
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public static final String zeroPad (int value, int size) {
  String s = "0000000000"+value;
  return s.substring(s.length() - size);
}
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Bad performance –  Jaime Hablutzel Jan 23 '12 at 17:08
    
Unreadable/unclear seems like a more prominent issue. –  mafu Oct 25 '12 at 14:41
public static String zeroPad(long number, int width) {
   long wrapAt = (long)Math.pow(10, width);
   return String.valueOf(number % wrapAt + wrapAt).substring(1);
}

The only problem with this approach is that it makes you put on your thinking hat to figure out how it works.

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2  
The only problem? Try it with a negative number or with a width greater than 18. –  Carlos Heuberger Oct 5 '11 at 19:56
1  
Good point. And I guess it does more than was requested since it truncates at width (which wasn't explicitly asked for but is typically needed). It's a shame that Java's (painfully slow in comparison) String.format() doesn't support variable widths and doesn't support precision at all for integer specifiers. –  johncurrier Oct 5 '11 at 23:30
import java.io.*;
class LeftZeroPad{
    public static void main(String[] args) throws IOException{
        System.out.println("Enter an integer,length less than 5:");
        BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
        String x = br.readLine();
        int len=x.length();
        int i;
        System.out.println("Length of the integer:" +len);
        if (5 > len) 
        { 
            for (i=0; i < (5-len); i++) 
            { 
                //For Right Zero Padd
                //x += '0';
                //For Left Zero Padd
                 x='0'+ x;      
            } 
            System.out.println("Integer after Left Zero Pad:" + x);
        } 
        else
            {System.out.println("Entered integer length is greater than 5");}
        }
}
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4  
Why the Yoda code? 5 > len? What advantage does it have? ...or is it merely a matter of taste? –  Jaco Van Niekerk Jan 4 '12 at 8:07
public class leftpadding {
public static void main(String[] args) {
    for (int i = 1; i < 10000; i++) {
        System.out.print(padded(i,5)+ " ");
}   
}
public static String padded(int x,int pad)
{
        String r="";
    for (int i=0; i<pad-(Integer.toString(x).length()); i++ )
    r+="0";
return r+x; 
}
}
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Holy cow thats hardcore! –  Derek Oct 23 '12 at 20:40
2  
why do you convert integer to string to get length? if its a number you could use (int)Math.log(x)+1 as length and problem solved.. –  SSpoke Feb 3 at 4:23

protected by Gilbert Le Blanc Sep 3 '13 at 15:51

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