Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm a beginner programmer and I'm trying to make a very simple version of Hangman. I'm having so problem with my code. This is the portion of code I'm having a problem with:

        for(int i = 0; i <= wordLength - 1; i++ ) {

            if (letter == theWord.charAt( i )) {

                onemore=i+1;
                System.out.println("This letter matches with letter number " + onemore + " in the word.");
                ***displayWord.charAt(i)=letter;***
                System.out.println("The word so far is " + displayWord);
            } 

        }

The part I'm getting an error with has 3 asterisks on either side of it.

displayWord is a String and letter is a char.

Netbeans tells me:

unexpected type required: variable found: value

I have no idea what the problem is.

share|improve this question
    
Maybe I should have elaborated. When you have displayWord.charAt(), its equivalent to saying a single character. Of course, thats what it results to, but not what we see. So in your case, I assume you didn't want to say 'c' = 'd', because it doesn't really do anything. But what you wanted was to put letter into the index of whatever String displayWord represented. The problem is that can never even happen because displayWord.charAt() isn't actually a String perse, but rather a character after the statement is evaluated. Does that make sense? –  Andy Aug 9 '12 at 3:58
add comment

4 Answers

Basically, Java Strings are immutable, that is, there contents can't be changed.

You'd be better of using a StringBuilder.

String theWord = "This is a simple test";
char letter = 'i';
char changeTo = '-';

StringBuilder displayWord = new StringBuilder(theWord);

int i = theWord.indexOf(letter);
if (i != -1) {
    System.out.println("This letter matches with letter number " + (i + 1) + " in the word.");
    displayWord.setCharAt(i, changeTo);

    System.out.println("The word so far is " + displayWord);
}

System.out.println(displayWord);

This results in:

This letter matches with letter number 3 in the word.
The word so far is Th-s is a simple test
This letter matches with letter number 6 in the word.
The word so far is Th-s -s a simple test
This letter matches with letter number 12 in the word.
The word so far is Th-s -s a s-mple test
Th-s -s a s-mple test

Now the short version might look something like

String displayWord = theWord.repace(letter, changeTo);
share|improve this answer
2  
Great explanation. If it helps, think of it this way, what does displayWord.charAt() return? Its a character. Now imagine you used that character instead of using displayWord.charAt(). Would saying i dont know, something like 'c' = 'd'; make any sense for what you are trying to do? It helps to replace the statement you have with what you are expecting it to have, and sort of go from there. Hopefully that advice helps you understand where other issues you may have come from. –  Andy Aug 9 '12 at 3:32
    
+1 for the additional info :) –  MadProgrammer Aug 9 '12 at 3:34
    
@Andy What do you mean by " It helps to replace the statement you have with what you are expecting it to have, and sort of go from there.? –  user1218257 Aug 9 '12 at 3:38
    
Could you give me an example? –  user1218257 Aug 9 '12 at 3:38
    
Oops. For some reason Chrome didn't load all of Mad Programmers reply. I now understand what to do. Thank you :) –  user1218257 Aug 9 '12 at 3:44
show 9 more comments

charAt(i) RETURNS the value of the letter at that part of the word, you can't use it to CHANGE the value. Strings in Java are immutable, so you actually can't change this one. You can create a new one (using a constructor or possible one of the replaceXXX functions) and assign it back to displayWord, or take a look at the StringBuffer class which is more efficient for this type of thing.

share|improve this answer
    
I think for what I'm doing, StringBuilder would be more efficient (first comment). But thanks anyway. I will probably use String Buffer for something else. –  user1218257 Aug 9 '12 at 3:45
add comment

Since String is an immutable object, you can't change its content. Immutable means that once the content of the String is set, you don't have the ability of changing it in any way. You can always change the reference but never the content itself.

That being said, the String object doesn't offer any method to violate this principle. There's no setCharAt and you can't assign a new value to the result of charAt(i). Note how some methods that "seem" to change the String (like replace) are instead returning a new cloned object with changes on it. For example:

String sample = "Hello World!";
sample.replace('e', '*');
System.out.println(sample);

The above code is not making any changes on sample, so the result printed on the screen will be Hello World!. In order to capture the changes made by the replace method, we need to reassign the sample variable to the result of replace:

String sample = "Hello World!";
sample = sample.replace('e', '*');
System.out.println(sample);

In this case we are updating our sample variable with the new cloned String returned by replace. This value will have the changes, so we are going to see H*llo World! printed out.

Now that you know why you can't change the content of your Strings, let's see what solutions you have.

  1. First and foremost, to keep the exact behavior of your program, the perfect way to go is using a StringBuilder like @MadProgrammer pointed out before. An over simplistic way of looking at the StringBuilder class is basically as a mutable String. With it you can do all kind of replacements and modifications.

  2. Another solution (and not recommended) is to play with the String to create a new copy every time you want to change a character. This is going to be really cumbersome and offers no advantages over the StringBuilder solution, so I'm not going to go over the details.

  3. The third solution depends on your requirements and how flexible you can be. If all that you want to do is to replace every occurrence of a certain character in your String, then your code can be simplified a lot and you can use the replace method I talked about before. It will be something like:

    String theWord = "Here is our testing string"; char letter = 'e'; char changeTo = '*'; String displayWord = theWord.replace(letter, changeTo); System.out.println("The resulting word is: " + displayWord);

This will output the following result:

The resulting word is: H*r* is our t*sting string

Again, this only works in case your requirements are flexible enough and you can skip the "step by step" approach you are following in your example code.

share|improve this answer
add comment

I'm not sure about that error, but in Java you can't update the character in a style like that.

Instead, try using StringBuilder for your displayWord. That has a method: setCharAt that might be what you want.

Good luck coding :)

share|improve this answer
1  
StringBuffer is fully synchronized... perhaps you meant StringBuilder? It avoids the overhead. –  oldrinb Aug 9 '12 at 3:28
    
Depends what you're going for. I tend not to use StringBuilder from enterprise experience, plus there's comments in general about the performance of both. –  Teh Hippo Aug 9 '12 at 3:30
1  
Well there should be no reason to use StringBuffer unless you intend to be accessing it concurrently. Since I don't think there's any such access in his Hangman game, the synchonized is unnecessary. If the VM is intelligent enough, it can avoid most of the overhead by first checking if the lock could possibly be contended, so performance might turn out comparable... I wasn't intending to advocate premature optimization, just suggesting an alternative :p –  oldrinb Aug 9 '12 at 3:35
1  
Indeed :) I took that one in stride! I should probably use Buffer less in my normal uses... Unless tbh, I am getting that confused and misremembering. Maybe I do use Builder. That's actually more likely. Bit of a fail. Anyway! Get them started on concurrency nice & early. Bound to save problems later ;) –  Teh Hippo Aug 9 '12 at 3:37
    
@TehHippo I can assure you that in more than 99% of case where StringBuffer is used StringBuilder is a better choice. In the classes where StringBuffer was used in the JDK, the classes are not thread safe. –  Peter Lawrey Aug 13 '12 at 8:07
show 1 more comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.