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I'm working on a method that finds the first instance of a given value and returns its position. It works for some cases, but if I give it an array of [1,2,3], and set the value to 2, it returns 0, instead of 1. I'm not sure why, either. Here is the code:

int b = 0;
for(int a = 0; a < values.length; a++) {
    if (values[a] == find){
        b++;
    }
}
return b-1;

Thanks in advance!

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3 Answers 3

up vote 6 down vote accepted

Its because you are returning b-1. In fact, if you need to find the same instance and return the index, you wont even need the variable b. You could achieve this with something like this:

for( int a = 0; a < values.length; a++) {

if (values[a] == find){
   return a;
 }
}

return -1 // Notfound
} 

Add the return -1 line for when a value is not found, to use as a sentinel value.

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It won't compile, as the return statement is not in the right place, I assume. Says this method must return a type int. –  shewontreply Sep 10 '12 at 12:44
    
You didn't specified any definition on what to do when the value is not found. Try this, return a sentinel value of -1 when the value is not found in the array. (edited in answer) –  Sednus Sep 10 '12 at 12:49
2  
A sample program with the logic @Sednus has mentioned. –  basiljames Sep 10 '12 at 12:52
1  
Excellent, yes that works, apologies for not defining the question well. Thanks! –  shewontreply Sep 10 '12 at 12:52

Try

for( int a = 0; a<values.length; a++) {
    if (values[a] == find){
        return a;
    }
}
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Why not return a itself instead of doing b-1;

Maybe you can add a break statement too to stop iterating as you just need the position of first instance

    int b=0,result;
    for( int a = 0; a<values.length; a++)
    {

    if (values[a] == find)
     {
       result=a;
       break;
     }
    }

 return result;
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