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In Java is there a way to check the condition:

"Does this single character appear at all in string x"

without using a loop?

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3  
Is there any particular reason that you are trying to avoid loops? –  shsteimer Feb 3 '09 at 14:26

11 Answers 11

up vote 50 down vote accepted

You can use String.indexOf().

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3  
But there's always a loop behind that call because you can't find a symbol otherwise. –  vava Feb 3 '09 at 6:25
    
indexOf() uses a loop internally. –  Simucal Feb 3 '09 at 6:57
4  
Thats not what Barfoon asked. B wishes to avoid doing the loop in B's code. Naturally the API needs to do a loop after all a String is an array of characters wrapped up in a nice class with lots of useful methods. –  mP. Feb 5 '09 at 2:55
  • String.contains() which checks if the string contains a specified sequence of char values
  • String.indexOf() which returns the index within the string of the first occurence of the specified character or substring (there are 4 variations of this method)
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2  
a char isnt a CharSequence so it cant be passed to String.contains(CharSequence). –  mP. Feb 3 '09 at 5:45
    
uh... it is trivial to turn a char to a CharSequence, so I don't get the down voting .. + 1 –  hhafez Feb 3 '09 at 5:50
3  
The OP doesn't say a char, he/she says a "single character" - which could be a String; String implements the CharSequence interface. +1 for better written and more complete answer. –  Nick Pierpoint Feb 3 '09 at 7:58
7  
To use String.contains() with a single char c do this: String.contains(Character.toString(c)) –  friederbluemle Sep 19 '12 at 22:30

I'm not sure what the original poster is asking exactly. Since indexOf(...) and contains(...) both probably use loops internally, perhaps he's looking to see if this is possible at all without a loop? I can think of two ways off hand, one would of course be recurrsion:

public boolean containsChar(String s, char search) {
    if (s.length() == 0)
        return false;
    else
        return s.charAt(0) == search || containsChar(s.substring(1), search);
}

The other is far less elegant, but completeness...:

/**
 * Works for strings of up to 5 characters
 */
public boolean containsChar(String s, char search) {
    if (s.length() > 5) throw IllegalArgumentException();

    try {
        if (s.charAt(0) == search) return true;
        if (s.charAt(1) == search) return true;
        if (s.charAt(2) == search) return true;
        if (s.charAt(3) == search) return true;
        if (s.charAt(4) == search) return true;
    } catch (IndexOutOfBoundsException e) {
        // this should never happen...
        return false;
    }
    return false;
}

The number of lines grow as you need to support longer and longer strings of course. But there are no loops/recurrsions at all. You can even remove the length check if you're concerned that that length() uses a loop.

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If you define recursion as a non-loop procedure, you're a geek :D +1 for being creative. –  guerda Feb 3 '09 at 14:05
    
Well done, actually answers the question with some cleverness. –  Daniel Arndt Jun 22 '12 at 18:00

To check if something does not exist in a string, you at least need to look at each character in a string. So even if you don't explicitly use a loop, it'll have the same efficiency. That being said, you can try using str.contains(""+char).

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Agreed. At some point, somebody, somewhere needs to construct a loop to do this. Fortunately the Java API does this or our code would be very cluttered! –  Fortyrunner Feb 3 '09 at 6:26

Yes, using the indexOf() method on the string class. See the API documentation for this method

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String temp = "abcdefghi";
if(temp.indexOf("b")!=-1)
{
   System.out.println("there is 'b' in temp string");
}
else
{
   System.out.println("there is no 'b' in temp string");
}
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isn't this the exact duplicate of the accepted answer ?, we acknowledge your effort but you should try finding some unanswered question and answer them. –  Shekhar_Pro Jul 11 '11 at 9:35

If you need to check the same string often you can calculate the character occurrences up-front. This is an implementation that uses a bit array contained into a long array:

public class FastCharacterInStringChecker implements Serializable {
private static final long serialVersionUID = 1L;

private final long[] l = new long[1024]; // 65536 / 64 = 1024

public FastCharacterInStringChecker(final String string) {
    for (final char c: string.toCharArray()) {
        final int index = c >> 6;
        final int value = c - (index << 6);
        l[index] |= 1L << value;
    }
}

public boolean contains(final char c) {
    final int index = c >> 6; // c / 64
    final int value = c - (index << 6); // c - (index * 64)
    return (l[index] & (1L << value)) != 0;
}}
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package com;
public class _index {

    public static void main(String[] args) {
        String s1="be proud to be an indian";
        char ch=s1.charAt(s1.indexOf('e'));
        int count = 0; 
        for(int i=0;i<s1.length();i++) {
            if(s1.charAt(i)=='e'){
                System.out.println("number of E:=="+ch);
                count++;
            }
        }
        System.out.println("Total count of E:=="+count);
    }
}
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and for is not a loop now? –  Mindwin Feb 12 at 18:36
String s="praveen";
boolean p=s.contains("s");
if(p)
    System.out.println("string contains the char 's'");
else
    System.out.println("string does not contains the char 's'");

Output

string does not contains the char 's'
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The same answer has been provided before. –  Serge Belov Nov 10 '12 at 7:29
static String removeOccurences(String a, String b)
{
    StringBuilder s2 = new StringBuilder(a);

    for(int i=0;i<b.length();i++){
        char ch = b.charAt(i);  
        System.out.println(ch+"  first index"+a.indexOf(ch));

        int lastind = a.lastIndexOf(ch);

    for(int k=new String(s2).indexOf(ch);k > 0;k=new String(s2).indexOf(ch)){
            if(s2.charAt(k) == ch){
                s2.deleteCharAt(k);
        System.out.println("val of s2 :             "+s2.toString());
            }
        }
      }

    System.out.println(s1.toString());

    return (s1.toString());
}
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Here we are looking for occurrences of every character from String b present in String a and deleting the characters. –  Ganeshmani May 22 '12 at 5:22

//this is only the main... you can use wither buffered reader or scanner

string s;
int l=s.length();
int f=0;
for(int i=0;i<l;i++)
   {
      char ch1=s.charAt(i); 
      for(int j=0;j<l;j++)
         {
          char ch2=charAt(j);
          if(ch1==ch2)
           {
             f=f+1;
             s.replace(ch2,'');
           }
          f=0;
          }
     }
//if replacing with null does not work then make it space by using ' ' and add a if condition on top.. checking if its space if not then only perform the inner loop... 
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