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How can I convert a String to an int in Java?

My String contains only numbers and I want to return the number it represents.

For example, given the string "1234" the result should be the number 1234.

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Refer this post – Drona Nov 5 at 5:12

23 Answers 23

up vote 1925 down vote accepted
int foo = Integer.parseInt("1234");

See the Java Documentation for more information.

(If you have it in a StringBuffer, you'll need to do Integer.parseInt(myBuffer.toString()); instead).

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Back in the C++ days, we could call static methods from an instance. So people saw all the methods available on a class by looking at an instance of one. Now we have to reference the type to get the list of static methods. And thus code-self-documentation falls one step back into obscurity. – Lee Louviere May 3 '13 at 18:08
@LeeLouviere You can do this in Java with non-primitive types, just like in C++. – Overv Dec 10 '13 at 18:21
@LeeLouviere I don't really think that's a feature, so much as something that can hamper your first-glance understanding of the class. – davidahines Dec 22 '14 at 16:27
This will throw NumberFormatException if input is not a valid number. – Francesco Menzani Aug 28 at 16:05
Should be: (If you have it in a StringBuffer, your code is ancient and you need to use StringBuilder). – bcsb1001 Aug 31 at 11:40

For example, here are two ways:

Integer x = Integer.valueOf(str);
// or
int y = Integer.parseInt(str);

There is a slight difference between these methods:

  • valueOf returns a new or cached instance of java.lang.Integer
  • parseInt returns primitive int.

The same is for all cases: Short.valueOf/parseShort, Long.valueOf/parseLong, etc.

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For the differences between the two methods, see this question – hertzsprung May 19 '13 at 8:38
valueOf method is just return valueOf(parseInt(string)); – Paul Verest Oct 28 '14 at 8:55

Well a very important point to consider is that Integer parser throws NumberFormatException as stated in Javadoc.

int foo;
String StringThatCouldBeANumberOrNot = "26263Hello"; //will throw exception
String StringThatCouldBeANumberOrNot2 = "26263"; //will not throw exception
try {
      foo = Integer.parseInt(StringThatCouldBeANumberOrNot);
} catch (NumberFormatException e) {
      //Will Throw exception!
      //do something! anything to handle the exception.

try {
      foo = Integer.parseInt(StringThatCouldBeANumberOrNot2);
} catch (NumberFormatException e) {
      //No problem this time but still it is good practice to care about exceptions.
      //Never trust user input :)
      //do something! anything to handle the exception.

It is important to handle this exception when trying to get integer values from splitted arguments or dynamically parsing something.

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To convert a string into an int, use:

String str = "1234";
int num = Integer.parseInt(str);

To convert a number into a string, use:

int num = 1234;   
String str = String.valueOf(num);
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Do it manually in Java:

public static int strToInt( String str ){
    int i = 0;
    int num = 0;
    boolean isNeg = false;

    //Check for negative sign; if it's there, set the isNeg flag
    if (str.charAt(0) == '-') {
        isNeg = true;
        i = 1;

    //Process each character of the string;
    while( i < str.length()) {
        num *= 10;
        num += str.charAt(i++) - '0'; //Minus the ASCII code of '0' to get the value of the charAt(i++).

    if (isNeg)
        num = -num;
    return num;

Do it manually in Python:

def strtoint(s):
    i = 0
    num = 0
    isNeg = False

    if s[0] == '-':
        isNeg = True
        i = 1

    while i < len(s) and s[i].isdigit():
        num *= 10
        num += ord(i) - ord('0')

    return num
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What if the input is greater than 2^32? What if the input contains non-numeric characters? – yohm Oct 22 '14 at 3:43

Like this:

int parsedInt = Integer.parseInt("1234");
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Using the Integer.parseInt method, you can convert from string to integer:

int your_int_value = Integer.parseInt("Your String");
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See this link, it has also suggested to use Integer.valueOf() because it caches some frequently used integer e.g. from -128 to 127.

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Yeah, in case you are comparing it with new Integer(). Integer.parseInt returns primitive int, so it is definitely a better method. But your point is also valid, if wrapper type is considered. – Rohit Jain Nov 2 '12 at 10:09
String str = "1993";

int i = Integer.parseInt(str);

Integer i = Integer.valueOf(str);
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public static int stringToInt(String value, int _default) {
    try {
        return Integer.parseInt(value);
    } catch (NumberFormatException e) {
        return _default;
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Currently I'm doing an assignment for college, where I can't use certain expressions, such as the ones above, and by looking at the ASCII table, I managed to do it. It's a far more complex code , but it could help others that are restricted like I was.

The first thing to do is to receive the input, in this case, a String of digits, I'll call it String number, and in this case, I'll exemplify it using the number 12, therefore String number = "12";

Another limitation was the fact that I couldn't use repetitive cicles, therefore, a for cicle (which would have been perfect) can't be used either. This limits us a bit, but then again, that's the goal. Since I only needed two digits (taking the last two digits), a simple charAtsolved it:

//Obtaining the integer values of the char 1 and 2 in ASCII
int semilastdigitASCII = number.charAt(number.length()-2);  
int lastdigitASCII = number.charAt(number.length()-1);

Having the codes, we just need to look up at the table, and make the necessary adjustments:

  double semilastdigit = semilastdigitASCII - 48;  //A quick look, and -48 is the key
  double lastdigit = lastdigitASCII - 48;


Now, why double? Well, because of a really "weird" step. Currently we have two doubles, 1 and 2, but we need to turn it into 12, there isn't any mathematic operation that we can do. What we're doing is divide the latter (lastdigit) by 10, in this fashion 2/10 = 0.2 (hence why double) like this: lastdigit = lastdigit/10;

This is merely playing with numbers. What we did here was turning the last digit into a decimal. But now, look at what happens:

double jointdigits = semilastdigit + lastdigit; // 1.0 + 0.2 = 1.2

Without getting too into the math, we're simply isolating units the digits of a number, you see, since we only consider 0-9, dividing by a multiple of 10 is like creating a "box" where you store it (think back at when your first grade teacher explained you what a unit and a hundred were). So:

int finalnumber = (int) (jointdigits*10); //Be sure to use parentheses "()"

And there you go, you turned a String of digits (in this case, two digits), into an integer composed of those two digits, considering the following limitations:

  • No Repetitive Cicles
  • No "Magic" Expressions such as parseInt
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Using type double for parsing an integer is not only a bad idea performance-wise. Values like 0.2 are periodic numbers in floating-point representation and cannot be represented precisely. Try System.out.println(0.1+0.2) to see the point -- the result will not be 0.3! Better stick with library code whereever you can, in this case Integer.parseInt(). – ChrisB Aug 14 at 14:23

I'm have a solution, but I do not know how effective it is. But it works well, and I think you could improve it. On the other hand, I did a couple of tests with JUnit which step correctly. I attached the function and testing:

static public Integer str2Int(String str) {
    Integer result = null;
    if (null == str || 0 == str.length()) {
        return null;
    try {
        result = Integer.parseInt(str);
    catch (NumberFormatException e) {
        String negativeMode = "";
        if(str.indexOf('-') != -1)
            negativeMode = "-";
        str = str.replaceAll("-", "" );
        if (str.indexOf('.') != -1) {
            str = str.substring(0, str.indexOf('.'));
            if (str.length() == 0) {
                return (Integer)0;
        String strNum = str.replaceAll("[^\\d]", "" );
        if (0 == strNum.length()) {
            return null;
        result = Integer.parseInt(negativeMode + strNum);
    return result;

Testing with JUnit:

public void testStr2Int() {
    assertEquals("is numeric", (Integer)(-5), Helper.str2Int("-5"));
    assertEquals("is numeric", (Integer)50, Helper.str2Int("50.00"));
    assertEquals("is numeric", (Integer)20, Helper.str2Int("$ 20.90"));
    assertEquals("is numeric", (Integer)5, Helper.str2Int(" 5.321"));
    assertEquals("is numeric", (Integer)1000, Helper.str2Int("1,000.50"));
    assertEquals("is numeric", (Integer)0, Helper.str2Int("0.50"));
    assertEquals("is numeric", (Integer)0, Helper.str2Int(".50"));
    assertEquals("is numeric", (Integer)0, Helper.str2Int("-.10"));
    assertEquals("is numeric", (Integer)Integer.MAX_VALUE, Helper.str2Int(""+Integer.MAX_VALUE));
    assertEquals("is numeric", (Integer)Integer.MIN_VALUE, Helper.str2Int(""+Integer.MIN_VALUE));
     is numeric", null, Helper.str2Int("czv.,xcvsa"));
     * Dynamic test
    for(Integer num = 0; num < 1000; num++) {
        for(int spaces = 1; spaces < 6; spaces++) {
            String numStr = String.format("%0"+spaces+"d", num);
            Integer numNeg = num * -1;
            assertEquals(numStr + ": is numeric", num, Helper.str2Int(numStr));
            assertEquals(numNeg + ": is numeric", numNeg, Helper.str2Int("- " + numStr));
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Converting a string to an int is more complicated than just convertig a number. You have think about the following issues:

  • Does the string only contains numbers 0-9?
  • What's up with -/+ before or after the string? Is that possible (refering to accounting numbers)?
  • What's up with MAX_-/MIN_INFINITY? What will happen if the string is 99999999999999999999? Can the maschine treat this string as an int?
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int number=Integer.valueOf(Integer.parseInt("987"));
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Why use an additional Integer.valueOf(...) if Integer.parseInt() already returns the same? – Thomas Apr 27 at 14:46
You are right @Thomas but both works differently and i think both have their own use it depends where we are using that just check this answer… it will make u clear – Spry Techies Apr 28 at 9:18

Try this:

int value = Integer.valueOf("1234");

This is the proper way of converting a string value to an integer value.

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What is wrong with this answer? – Peter Mortensen Nov 29 '14 at 8:39
The only thing that I can see is that he has a return type of int while using valueOf. While that will work, I'd assume it would be better to expect an Integer, or alternatively use parseInt. Either that or the fact that this answer was added a couple years after the initial question and it was functionally the same as several others. – S. Buda Feb 3 at 15:19

You can also begin by removing all non numerical characters and then parsing the int:

string mystr = mystr.replaceAll( "[^\\d]", "" );
int number= Integer.parseInt(mystr);

But be warned that this only works for non negative numbers.

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This will cause -42 to be parsed as 42. – user289086 Oct 11 '14 at 14:00

Ok, this thread is a little old but i had the same issue. In my case i want a custom validation after "Integer.parseInt()" throws an exception.

My solution was:

Integer myInt = null;
try {
    myInt = Integer.parseInt(userEntry);
} catch (NumberFormatException e) {
    log.debug("Wrong number entry (entry: {})", userEntry, e);

if (myInt == null) {
    // Custom Validation, maybe dialog for the user or something else
} else {
    // Set new Value

Althougt i have a custom validation i dont want an empty catch block. Therefore i log the exception only in debug mode. This will help avoid more warnings from SonarQube as well ;)

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An alternate solution is to use Apache commons NumberUtils

int num = NumberUtils.toInt("1234");

The Apache util is nice because if the string is an Invalid Number Format then 0 is always returned. Hence saving you the try catch block.

Apache NumberUtils API

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String a = 10;
int i = Integer.parseInt(a); // a is converted to integer i
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String strnumber = "1234";
Integer integer = Integer.valueOf(str);

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How is this different from other answers? – Maroun Maroun Aug 26 at 11:26
While this code may answer the OP's original question, a few words of explanation would go a long way to current and future readers understanding your answer even better. – The Thom Aug 26 at 11:47
Seems that there is no point here in parsing the integer as all you do with it after is printing it. Your example added years later is not really constructive. – Jean-François Savard Aug 27 at 12:17

We can use parseInt(String str) method of Integer wrapper class for converting string value to integer value.

For example-

String strValue = "12345";

Integer intValue = Integer.parseInt(strVal);

We can also use valueOf(String str) method of Integer wrapper class for String value into integer value.

For example -

String strValue = "12345";

Integer intValue = Integer.valueOf(strValue);

We can also use toInt(String strValue) NumberUtils Utility Class for converting String value to integer value.

For example-

String strValue = "12345";

Integer intValue = NumberUtils.toInt(strValue);
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string to int

int num = Integer.parseInt("String_value");

number to a string

String str = String.valueOf(1234);

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To convert a string to int, the code must be

int num = Integer.parseInt(String name);

But if the String variable doesnot contains only number means

it also contains the alphabets then this line of code throws a NumberFormatException.

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protected by Gilbert Le Blanc May 18 '13 at 14:35

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