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.
3231
votes
By the way, be aware that if the string is null, the call: int i = Integer.parseInt(null); throws NumberFormatException, not NullPointerException.
– Pavel Molchanov
I'm a little surprised that this question should be so highly rated when an important part of the specification is missing: what should happen if the string DOESN'T contain only digits? For example, many of the answers will happily parse "-1" and return -1, but we don't know if that's acceptable.
– Michael Kay
30 Answers
4295
votes
String myString = "1234";
int foo = Integer.parseInt(myString);
If you look at the Java documentation you'll notice the "catch" is that this function can throw a NumberFormatException, which of course you have to handle:
int foo;
try {
foo = Integer.parseInt(myString);
}
catch (NumberFormatException e)
{
foo = 0;
}
(This treatment defaults a malformed number to 0, but you can do something else if you like.)
Alternatively, you can use an Ints method from the Guava library, which in combination with Java 8's Optional, makes for a powerful and concise way to convert a string into an int:
import com.google.common.primitives.Ints;
int foo = Optional.ofNullable(myString)
.map(Ints::tryParse)
.orElse(0)
728
votes
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:
valueOfreturns a new or cached instance ofjava.lang.IntegerparseIntreturns primitiveint.
The same is for all cases: Short.valueOf/parseShort, Long.valueOf/parseLong, etc.
257
votes
Well, a very important point to consider is that the 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 split arguments or dynamically parsing something.
89
votes
Do it manually:
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;
}
59
votes
An alternate solution is to use Apache Commons' NumberUtils:
int num = NumberUtils.toInt("1234");
The Apache utility is nice because if the string is an invalid number format then 0 is always returned. Hence saving you the try catch block.
42
votes
Integer.decode
You can also use public static Integer decode(String nm) throws NumberFormatException.
It also works for base 8 and 16:
// base 10
Integer.parseInt("12"); // 12 - int
Integer.valueOf("12"); // 12 - Integer
Integer.decode("12"); // 12 - Integer
// base 8
// 10 (0,1,...,7,10,11,12)
Integer.parseInt("12", 8); // 10 - int
Integer.valueOf("12", 8); // 10 - Integer
Integer.decode("012"); // 10 - Integer
// base 16
// 18 (0,1,...,F,10,11,12)
Integer.parseInt("12",16); // 18 - int
Integer.valueOf("12",16); // 18 - Integer
Integer.decode("#12"); // 18 - Integer
Integer.decode("0x12"); // 18 - Integer
Integer.decode("0X12"); // 18 - Integer
// base 2
Integer.parseInt("11",2); // 3 - int
Integer.valueOf("11",2); // 3 - Integer
If you want to get int instead of Integer you can use:
Unboxing:
int val = Integer.decode("12");intValue():Integer.decode("12").intValue();
42
votes
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 cycles, therefore, a for cycle (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.
We're dividing the latter (lastdigit) by 10 in the fashion 2/10 = 0.2 (hence why double) like this:
lastdigit = lastdigit / 10;
This is merely playing with numbers. We were 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 cycles
- No "Magic" Expressions such as parseInt
29
votes
Whenever there is the slightest possibility that the given String does not contain an Integer, you have to handle this special case. Sadly, the standard Java methods Integer::parseInt and Integer::valueOf throw a NumberFormatException to signal this special case. Thus, you have to use exceptions for flow control, which is generally considered bad coding style.
In my opinion, this special case should be handled by returning an empty Optional<Integer>. Since Java does not offer such a method, I use the following wrapper:
private Optional<Integer> tryParseInteger(String string) {
try {
return Optional.of(Integer.valueOf(string));
} catch (NumberFormatException e) {
return Optional.empty();
}
}
Example usage:
// prints "12"
System.out.println(tryParseInteger("12").map(i -> i.toString()).orElse("invalid"));
// prints "-1"
System.out.println(tryParseInteger("-1").map(i -> i.toString()).orElse("invalid"));
// prints "invalid"
System.out.println(tryParseInteger("ab").map(i -> i.toString()).orElse("invalid"));
While this is still using exceptions for flow control internally, the usage code becomes very clean. Also, you can clearly distinguish the case where -1 is parsed as a valid value and the case where an invalid String could not be parsed.
29
votes
Methods to do that:
Integer.parseInt(s)Integer.parseInt(s, radix)Integer.parseInt(s, beginIndex, endIndex, radix)Integer.parseUnsignedInt(s)Integer.parseUnsignedInt(s, radix)Integer.parseUnsignedInt(s, beginIndex, endIndex, radix)Integer.valueOf(s)Integer.valueOf(s, radix)Integer.decode(s)NumberUtils.toInt(s)NumberUtils.toInt(s, defaultValue)
Integer.valueOf produces an Integer object and all other methods a primitive int.
The last two methods are from commons-lang3 and a big article about converting here.
24
votes
Use Integer.parseInt(yourString).
Remember the following things:
Integer.parseInt("1"); // ok
Integer.parseInt("-1"); // ok
Integer.parseInt("+1"); // ok
Integer.parseInt(" 1"); // Exception (blank space)
Integer.parseInt("2147483648"); // Exception (Integer is limited to a maximum value of 2,147,483,647)
Integer.parseInt("1.1"); // Exception (. or , or whatever is not allowed)
Integer.parseInt(""); // Exception (not 0 or something)
There is only one type of exception: NumberFormatException
24
votes
Converting a string to an int is more complicated than just converting a number. You have think about the following issues:
- Does the string only contain numbers 0-9?
- What's up with -/+ before or after the string? Is that possible (referring to accounting numbers)?
- What's up with MAX_-/MIN_INFINITY? What will happen if the string is 99999999999999999999? Can the machine treat this string as an int?
22
votes
We can use the parseInt(String str) method of the Integer wrapper class for converting a String value to an integer value.
For example:
String strValue = "12345";
Integer intValue = Integer.parseInt(strVal);
The Integer class also provides the valueOf(String str) method:
String strValue = "12345";
Integer intValue = Integer.valueOf(strValue);
We can also use toInt(String strValue) of NumberUtils Utility Class for the conversion:
String strValue = "12345";
Integer intValue = NumberUtils.toInt(strValue);
21
votes
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:
@Test
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));
assertEquals("Not
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));
}
}
}
19
votes
Google Guava has tryParse(String), which returns null if the string couldn't be parsed, for example:
Integer fooInt = Ints.tryParse(fooString);
if (fooInt != null) {
...
}
18
votes
13
votes
Apart from the previous answers, I would like to add several functions. These are results while you use them:
public static void main(String[] args) {
System.out.println(parseIntOrDefault("123", 0)); // 123
System.out.println(parseIntOrDefault("aaa", 0)); // 0
System.out.println(parseIntOrDefault("aaa456", 3, 0)); // 456
System.out.println(parseIntOrDefault("aaa789bbb", 3, 6, 0)); // 789
}
Implementation:
public static int parseIntOrDefault(String value, int defaultValue) {
int result = defaultValue;
try {
result = Integer.parseInt(value);
}
catch (Exception e) {
}
return result;
}
public static int parseIntOrDefault(String value, int beginIndex, int defaultValue) {
int result = defaultValue;
try {
String stringValue = value.substring(beginIndex);
result = Integer.parseInt(stringValue);
}
catch (Exception e) {
}
return result;
}
public static int parseIntOrDefault(String value, int beginIndex, int endIndex, int defaultValue) {
int result = defaultValue;
try {
String stringValue = value.substring(beginIndex, endIndex);
result = Integer.parseInt(stringValue);
}
catch (Exception e) {
}
return result;
}
12
votes
As mentioned, Apache Commons' NumberUtils can do it. It returns 0 if it cannot convert a string to an int.
You can also define your own default value:
NumberUtils.toInt(String str, int defaultValue)
Example:
NumberUtils.toInt("3244", 1) = 3244
NumberUtils.toInt("", 1) = 1
NumberUtils.toInt(null, 5) = 5
NumberUtils.toInt("Hi", 6) = 6
NumberUtils.toInt(" 32 ", 1) = 1 // Space in numbers are not allowed
NumberUtils.toInt(StringUtils.trimToEmpty(" 32 ", 1)) = 32;
10
votes
You can use this code also, with some precautions.
Option #1: Handle the exception explicitly, for example, showing a message dialog and then stop the execution of the current workflow. For example:
try { String stringValue = "1234"; // From String to Integer int integerValue = Integer.valueOf(stringValue); // Or int integerValue = Integer.ParseInt(stringValue); // Now from integer to back into string stringValue = String.valueOf(integerValue); } catch (NumberFormatException ex) { //JOptionPane.showMessageDialog(frame, "Invalid input string!"); System.out.println("Invalid input string!"); return; }Option #2: Reset the affected variable if the execution flow can continue in case of an exception. For example, with some modifications in the catch block
catch (NumberFormatException ex) { integerValue = 0; }
Using a string constant for comparison or any sort of computing is always a good idea, because a constant never returns a null value.
10
votes
10
votes
In programming competitions, where you're assured that number will always be a valid integer, then you can write your own method to parse input. This will skip all validation related code (since you don't need any of that) and will be a bit more efficient.
For valid positive integer:
private static int parseInt(String str) { int i, n = 0; for (i = 0; i < str.length(); i++) { n *= 10; n += str.charAt(i) - 48; } return n; }For both positive and negative integers:
private static int parseInt(String str) { int i=0, n=0, sign=1; if (str.charAt(0) == '-') { i = 1; sign = -1; } for(; i<str.length(); i++) { n* = 10; n += str.charAt(i) - 48; } return sign*n; }If you are expecting a whitespace before or after these numbers, then make sure to do a
str = str.trim()before processing further.
7
votes
Simply you can try this:
- Use
Integer.parseInt(your_string);to convert aStringtoint - Use
Double.parseDouble(your_string);to convert aStringtodouble
Example
String str = "8955";
int q = Integer.parseInt(str);
System.out.println("Output>>> " + q); // Output: 8955
String str = "89.55";
double q = Double.parseDouble(str);
System.out.println("Output>>> " + q); // Output: 89.55
7
votes
7
votes
I am a little bit surprised that nobody mentioned the Integer constructor that takes String as a parameter.
So, here it is:
String myString = "1234";
int i1 = new Integer(myString);
Of course, the constructor will return type Integer, and an unboxing operation converts the value to int.
Note 1: It's important to mention: This constructor calls the parseInt method.
public Integer(String var1) throws NumberFormatException {
this.value = parseInt(var1, 10);
}
Note 2: It's deprecated: @Deprecated(since="9") - JavaDoc.
5
votes
Use Integer.parseInt() and put it inside a try...catch block to handle any errors just in case a non-numeric character is entered, for example,
private void ConvertToInt(){
String string = txtString.getText();
try{
int integerValue=Integer.parseInt(string);
System.out.println(integerValue);
}
catch(Exception e){
JOptionPane.showMessageDialog(
"Error converting string to integer\n" + e.toString,
"Error",
JOptionPane.ERROR_MESSAGE);
}
}
5
votes
It can be done in seven ways:
import com.google.common.primitives.Ints;
import org.apache.commons.lang.math.NumberUtils;
String number = "999";
Ints.tryParse:int result = Ints.tryParse(number);
NumberUtils.createInteger:Integer result = NumberUtils.createInteger(number);
NumberUtils.toInt:int result = NumberUtils.toInt(number);
Integer.valueOf:Integer result = Integer.valueOf(number);
Integer.parseInt:int result = Integer.parseInt(number);
Integer.decode:int result = Integer.decode(number);
Integer.parseUnsignedInt:int result = Integer.parseUnsignedInt(number);
4
votes
This is a complete program with all conditions positive and negative without using a library
import java.util.Scanner;
public class StringToInt {
public static void main(String args[]) {
String inputString;
Scanner s = new Scanner(System.in);
inputString = s.nextLine();
if (!inputString.matches("([+-]?([0-9]*[.])?[0-9]+)")) {
System.out.println("Not a Number");
}
else {
Double result2 = getNumber(inputString);
System.out.println("result = " + result2);
}
}
public static Double getNumber(String number) {
Double result = 0.0;
Double beforeDecimal = 0.0;
Double afterDecimal = 0.0;
Double afterDecimalCount = 0.0;
int signBit = 1;
boolean flag = false;
int count = number.length();
if (number.charAt(0) == '-') {
signBit = -1;
flag = true;
}
else if (number.charAt(0) == '+') {
flag = true;
}
for (int i = 0; i < count; i++) {
if (flag && i == 0) {
continue;
}
if (afterDecimalCount == 0.0) {
if (number.charAt(i) - '.' == 0) {
afterDecimalCount++;
}
else {
beforeDecimal = beforeDecimal * 10 + (number.charAt(i) - '0');
}
}
else {
afterDecimal = afterDecimal * 10 + number.charAt(i) - ('0');
afterDecimalCount = afterDecimalCount * 10;
}
}
if (afterDecimalCount != 0.0) {
afterDecimal = afterDecimal / afterDecimalCount;
result = beforeDecimal + afterDecimal;
}
else {
result = beforeDecimal;
}
return result * signBit;
}
}
4
votes
One method is parseInt(String). It returns a primitive int:
String number = "10";
int result = Integer.parseInt(number);
System.out.println(result);
The second method is valueOf(String), and it returns a new Integer() object:
String number = "10";
Integer result = Integer.valueOf(number);
System.out.println(result);
4
votes
You could use any of the following:
Integer.parseInt(s)Integer.parseInt(s, radix)Integer.parseInt(s, beginIndex, endIndex, radix)Integer.parseUnsignedInt(s)Integer.parseUnsignedInt(s, radix)Integer.parseUnsignedInt(s, beginIndex, endIndex, radix)Integer.valueOf(s)Integer.valueOf(s, radix)Integer.decode(s)NumberUtils.toInt(s)NumberUtils.toInt(s, defaultValue)
