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I essentially want to search the frequency of a string. For example, if I pass in the word "I", then the frequency of the word in the following sentence: "I went to the beach and I saw three people" should be 2. I've constructed such method in which I take a text (of any length), split it into an array by the white space, and loop through the array, searching if each index matches the word. Then, I increment the frequency counter and return the number as a string. Here's the method:

private int freq() {
String text = "I went to the beach and I saw three people";
String search = "I";
String[] splitter = text.split("\\s+");
int counter = 0;
   for (int i=0; i<splitter.length; i++)
   {
       if (splitter[i]==search) 
       {
           counter++;
       }
       else
       {

       }
   }
   return counter;
       }

}  

This is outside the method:

String final = Integer.toString(freq());
System.out.println(final);

But as I run this, I keep getting 0 as the result. I don't know what I'm doing wrong.

EDIT: You're all correct! What a waste of a question :(.

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You got a good HashMap out of it :) Seriously, knowing the basic data structures and when to use them is huge. –  Jeff Ferland Oct 20 '11 at 3:27
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6 Answers

up vote 7 down vote accepted

Use equals instead of ==

if (text[i].equals(search) )
   {
       counter++;
   }

better solution

Use a Map to map the words Map<String,Integer> with frequency.

String [] words = line.split(" ");

Map<String,Integer> frequency = new HashMap<String,Integer>();

for (String word:words){

    Integer f = frequency.get(word);
    //checking null
    if(f==null) f=0;
    frequency.put(word,f+1);
}

Then you can find out for a particular word with:

frequency.get(word)
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1  
nice Map solution! –  Macosx Iam Oct 20 '11 at 3:18
1  
I started writing a comment about log(N) time being used, then realized the Map was instantiated as an interface (doesn't work). I changed this to a concrete type. Two common Map implementations are TreeMap and HashMap. TreeMap is log(N) time, but you can have everything sorted. HashMap will give you O(1) insertion and O(1) lookup. –  Jeff Ferland Oct 20 '11 at 3:25
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Use equals() method to compare string.

if(text[i].equals(search))
{
   counter++;
}
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1  
I guess his logic is incorrect too! he/she should be traversing thru "splitter" not text :) –  doNotCheckMyBlog Oct 20 '11 at 3:12
    
Simple as that? Wow! and it works! –  Macosx Iam Oct 20 '11 at 3:13
    
@Brogrammer That's true. –  AVD Oct 20 '11 at 3:14
    
that was a typo. I am traversing through splitter –  Macosx Iam Oct 20 '11 at 3:14
    
@Macosx Iam, Cool bro! enjoy!!! –  doNotCheckMyBlog Oct 20 '11 at 3:19
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private int freq() {
    String text = "I went to the beach and I saw three people";
    String search = "I";
    String[] splitter = text.split("\\s+");
    int counter = 0;
/* problem: You want to be looping over splitter. */
    for (int i=0; i<text.length; i++)
    {
/* problem: splitter[i].equals(search) */
        if (text[i]==search)
        {   
            counter++;
        }   
    }
    return counter;
}
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Strings should be compared with String.equals, not ==, which checks to see if they're the same object, not if they haber the same contents.

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To compare two String you have to use the equals() method and not a simple ==

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For you code to work follow the other answers, use a .equals instead of ==, but you could also use apache commons lang:

StringUtils.countMatches(text, search);

http://commons.apache.org/lang/ http://commons.apache.org/lang/apidocs/org/apache/commons/lang3/StringUtils.html#countMatches(java.lang.CharSequence, java.lang.CharSequence)

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