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I'm trying to determine if a particular item in an Array of strings is an integer or not.

I am .split(" ")'ing an infix expression in String form, and then trying to split the resultant array into two arrays; one for integers, one for operators, whilst discarding parentheses, and other miscellaneous items. What would be the best way to accomplish this?

I thought I might be able to find a Integer.isInteger(String arg) method or something, but no such luck.

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marked as duplicate by Flow, Kevin Panko, Eran, Kninnug, Eric Brown Oct 17 '13 at 17:25

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

67  
+1 for using .split(" ")'ing as a verb. Bravo! –  corsiKa Mar 26 '11 at 0:38
28  
+1 for +1'ing that –  iluxa Mar 26 '11 at 0:40
20  
+1 for using +1'ing as a verb. –  Vic Sep 27 '13 at 7:27
    
I do not understand with several java updates, such easy helper methods are not being made built in into the kit. –  tony9099 Sep 30 '13 at 14:08
2  
@Nick to further your argument that it's not necessary to be in Java, only about one in every 772 visitors decided to vote up my answer, despite there being three useful solutions (admittedly, each better than the previous one). I think that is a clear indicator this is an edge case where in most cases you're better off changing the way you solve the problem such that you don't need my solution instead of actually using it. –  corsiKa Oct 4 '13 at 16:22

10 Answers 10

up vote 140 down vote accepted
public static boolean isInteger(String s) {
    try { 
        Integer.parseInt(s); 
    } catch(NumberFormatException e) { 
        return false; 
    }
    // only got here if we didn't return false
    return true;
}

A non exception based method:

public static boolean isInteger(String s) {
    return isInteger(s,10);
}

public static boolean isInteger(String s, int radix) {
    if(s.isEmpty()) return false;
    for(int i = 0; i < s.length(); i++) {
        if(i == 0 && s.charAt(i) == '-') {
            if(s.length() == 1) return false;
            else continue;
        }
        if(Character.digit(s.charAt(i),radix) < 0) return false;
    }
    return true;
}

A more expensive non-exception based method:

public static boolean isInteger(String s, int radix) {
    Scanner sc = new Scanner(s.trim());
    if(!sc.hasNextInt(radix)) return false;
    // we know it starts with a valid int, now make sure
    // there's nothing left!
    sc.nextInt(radix);
    return !sc.hasNext();
}
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2  
You'll note that this does not check for null. We're willing to let the null pointer exception get thrown. If you want to handle that, you can. I chose not to, but rather to delegate it up. –  corsiKa Mar 26 '11 at 0:36
    
Awesome, thanks. –  Nick Coelius Mar 26 '11 at 0:41
    
try/catch block for that? I think that is a bit excessive for this task as throwing an exception can be expensive and if a number of strings are not integers then you get expense. –  demongolem Dec 16 '11 at 16:57
    
@demongolem I added non-exception based method. –  corsiKa Dec 16 '11 at 17:38
3  
The "non exception based method" will consider "-" to be an integer. –  Zach Langley Sep 5 '12 at 15:45

Or you can enlist a little help from our good friends at Apache Commons : StringUtils.isNumeric(String str)

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The only question I have about this method is "" returning true. Our intuition tells us that the empty string is not a number (Integer for the OP question) you can perform mathematical operations on, but I guess you can say you cannot prove that the empty string is non-numeric because we haven't told you yet what the String will be. –  demongolem Dec 16 '11 at 17:02
3  
I wish this was a good answer for me, but not only does "" return true but also "-1" will return false. That means that it will neither return true for all valid integers nor will the fact that it returns true guarantee that passing it to Integer.parseInt will not throw an exception. –  jhericks Apr 4 '13 at 2:41
2  
@jhericks Thanks for pointing that out. When I first answered this a couple of years ago it was referencing an older version of Commons StringUtils. They have since updated the api such that empty string is now considered non-numeric. Unfortunately the negative case would have to be handled separately which is a drawback but the work around is trivial. Simply a check for numberCandidate.startsWith("-") and a substring call with a negation after the parseInt call assuming the value was numeric of course. –  WillMatt Apr 5 '13 at 7:14

Using regular expression is better.

str.matches("-?\\d+");


-?     --> negative sign, could have none or one
\\d+   --> one or more digits

It is not good to use NumberFormatException here if you can use if-statement instead.

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Or simply

mystring.matches("\\d+")

though it would return true for numbers larger than an int

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I'm speechless against the awesomeness of this answer. +1 –  abhishek14d Aug 29 '13 at 21:46
    
@user1538045 : your edit suggestion is really more of a comment –  njzk2 Sep 13 '13 at 14:37
    
doesn't work. matches any string that contains 1 or more digits in a row. for example, blabla. 0 bla bla bla matches. –  njzk2 Sep 13 '13 at 14:38
2  
@njzk2 use "^-?\\d+$" as your regex –  Sujay Sep 18 '13 at 13:42

You want to use the Integer.parseInt(String) method.

try{
  int num = Integer.parseInt(str);
  // is an integer!
} catch (NumberFormatException e) {
  // not an integer!
}
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As an alternative to trying to parse the string and catching NumberFormatException, you could use a regex; e.g.

if (Pattern.compile("-?[0-9]+").matches(str)) {
    // its an integer
}

This is likely to be faster, especially if you precompile and reuse the regex. However, the catch is that Integer.parseInt(str) will still fail if str represents a number that is outside range of legal int values.

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1  
will fail if the integer in question is outside of Integer range; likewise, will fail for strings like "000123". The simplest approach is usually the one that'll work most solidly. –  iluxa Mar 26 '11 at 1:30
    
@iluxa why would this technique fail for "000123"? –  corsiKa Mar 28 '11 at 18:37
    
cause 000123 is not a valid integer yet it'd pass the regular expression –  iluxa Mar 28 '11 at 19:32
1  
@iluxa - that only applies to literals in Java source code. Try it out if you still don't believe me ... or look at the source code of the Integer.parseInt(...) methods. –  Stephen C Mar 29 '11 at 14:05
2  
Integer.parseInt("000123"); will return the integer 123 without throwing any exception whatsoever. –  Harshal Waghmare May 29 '13 at 6:39

You can use Integer.parseInt() or Integer.valueOf() to get the integer from the string, and catch the exception if it is not a parsable int. You want to be sure to catch the NumberFormatException it can throw.

It may be helpful to note that valueOf() will return an Integer object, not the primitive int.

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edited for clarity. No need to be cheeky. –  Chad La Guardia Mar 26 '11 at 1:41
    
@krmby the objective is not to actually retrieve the value, only to determine if it fits the format. In that regard, Chad is correct in that both of the methods will work just fine. –  corsiKa Mar 28 '11 at 18:35
    
@glowcoder you are talking about edited version of the answer which i am not. I now both methods do the job fine but this does not change the fact that return type of Integer.parseInt() is int. –  Kerem Baydoğan Mar 29 '11 at 11:21
    
@krmby ah an interesting point. I was focusing on the first paragraph (which as I review, remains unchanged.) –  corsiKa Mar 29 '11 at 16:28
    
@glowcoder Author of this answer said: It may be helpful to note that those methods will return an Integer object, not the primitive int. I'm ONLY saying that parseInt() returns int. I said NOTHING about first paragraph. Chad La Guardia CORRECTED his answer according to my comment and everything is fine. So i'm not getting your point actually. –  Kerem Baydoğan Mar 29 '11 at 17:23

You can use Integer.parseInt(str) and catch the NumberFormatException if the string is not a valid integer, in the following fashion (as pointed out by all answers):

static boolean isInt(String s)
{
 try
  { int i = Integer.parseInt(s); return true; }

 catch(NumberFormatException er)
  { return false; }
}

However, note here that if the evaluated integer overflows, the same exception will be thrown. Your purpose was to find out whether or not, it was a valid integer. So its safer to make your own method to check for validity:

static boolean isInt(String s)  // assuming integer is in decimal number system
{
 for(int a=0;a<s.length();a++)
 {
    if(a==0 && s.charAt(a) == '-') continue;
    if( !Character.isDigit(s.charAt(a)) ) return false;
 }
 return true;
}
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This question might give you an idea: java.lang.NumberFormatException: For input string: "null"

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public boolean isInt(String str){
    return (str.lastIndexOf("-") == 0 && !str.equals("-0")) ? str.replace("-", "").matches(
            "[0-9]+") : str.matches("[0-9]+");
}
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This will also return true for the string ---0--- which surely is not int. –  Matthias Oct 16 '13 at 8:49
    
@Matthias You are right i haven't tested it, I edited my answer to check for that now –  Titus Oct 16 '13 at 23:46

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