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've created a custom ListView adapter/item. The item contains a CheckedTextView and a TextView.

In the adapter's getView() method, the custom item is created and its setTask(Task) method is called right before it's returned.

The setTask(Task) method gets 2 Strings and a boolean from the Task object passed in as a parameter. (I do recognize that its address is actually what gets passed.)

One of the Strings is assigned to the custom item's TextView's text property IF that String contains text. Otherwise, the TextView's visible property is set to "gone."

To make that determination, I check to see if the String's length is less than or equal to 0... it produces unexpected behavior - it ALWAYS evaluates true.

If I change it to check if the String is equal to "", it always returns false.

This leads me to believe that the String I'm checking is null. Why would that be?

protected void onFinishInflate() {
    super.onFinishInflate();
    checkbox = (CheckedTextView)findViewById(android.R.id.text1);   
    description = (TextView)findViewById(R.id.description);
}

public void setTask(Task t) {
    task = t;
    checkbox.setText(t.getName());
    checkbox.setChecked(t.isComplete());
    if (t.getDescription().length() <= 0)
        description.setVisibility(GONE);
    else
        description.setText(t.getDescription());
}

And here's the getView() method in the adapter:

public View getView(int position, View convertView, ViewGroup parent) {

    TaskListItem tli;
    if (convertView == null)
        tli = (TaskListItem)View.inflate(context, R.layout.task_list_item, null);
    else
        tli = (TaskListItem)convertView;

    tli.setTask(currentTasks.get(position));
    return tli; 
}
share|improve this question
    
Your question is a typical class-room case. –  Blessed Geek Jun 23 '11 at 0:16
    
@Blessed Geek Forgive me - I'm new to Stack Overflow. Does that mean it wasn't advanced enough to ask? Did I do something frowned upon around here? I'm not in a Java class now and never have been, but I am a beginner. –  derrik Jun 23 '11 at 17:42
    
No, no, not at all. Saying that it is a typical class-room case means that it is very important for you to understand this case thoroughly. As the understanding of this case lays the foundation of your understanding of the Java programming language (and C# as well). –  Blessed Geek Jun 23 '11 at 22:16

6 Answers 6

up vote 6 down vote accepted
myString == ""

checks the reference of the string object rather than the content. You should use:

"".equals(myString)

which checks the content of the string, rather then the reference. You could use:

myString.equals("")

but that has a chance of a NullPointerException if myString is null.

share|improve this answer
1  
Great answer - totally clear and concise. Thanks! –  derrik Jun 22 '11 at 22:54

The == operator checks if both sides refer to the same object. Two strings that have the same contents don't (usually) refer to the same object, see below.

String s = "";
String t = "";
if (s == t){
  //false! s and t refer to different objects
}
if (s.equals(t) && t.equals(s)){ //these two are equivalent
  //true!
}
s = t;
if (s == t){
  //now they refer to the same object, so true!
}
share|improve this answer
    
I wouldn't call it 'object equality'. That's what .equals() is. The == operator compares variable references. –  Sarel Botha Jun 22 '11 at 22:03
    
True, edited as such –  Martijn Jun 22 '11 at 22:04
    
Have you actually tried your code above ? s == t will actually return true even before you assign them to be the same variable. –  Kal Jun 22 '11 at 22:33
    
@Kal is correct. Because you set them both up as string literals they point to the same object in String's internal pool. See my answer for how I constructed a non-literal empty string. –  Paul Jun 22 '11 at 22:42

In Java you can't use == to compare the contents of a String with another String. The == operator always compares the reference or memory address of the variables. In other languages == can be made to compare the contents of objects. In Java it cannot. Use .equals() or .equalsIgnoreCase().

share|improve this answer
    
You can't use == to compare the contents of a String but sometimes it gives the same result as .equals(). This often trips up new Java programmers. If you write String a = "hi"; String b="hi"; then a==b gives the same result as a.equals(b). Test code set up using literals works great with ==...then fails in production If b is changed to b = new String({'h','i'}); then == will be false, though a.equals(b) will still be true; –  Paul Jun 22 '11 at 22:40

You're comparing strings using == which is always a bad idea with Objects. Your empty string "" points to a different String object than t.getDescription(), though the values may be the same. With Strings sometimes == will work because the String class maintains a pool of Strings and will it use for string literals and constants. A demonstration of how String works is better than words, however.

public class StringTest
{
  public static void main(String[] args)
  {
    String s0="";  // literal
    System.out.println("Length of s0 = " + s0.length());
    System.out.println("Does s0 point to same object as empty string? " 
      + (s0==""));  // since both are literals the same object is used for both
    System.out.println("Does s0 equal an empty string? "
      + s0.equals("")); // comparing values
    System.out.println("Is s0 empty? " + s0.isEmpty());
    System.out.println("");

    StringBuilder sb = new StringBuilder("");
    String s1 = sb.toString(); // don't use a literal for s1
    System.out.println("Length of s1 = " + s1.length());
    System.out.println("Does s1 point to same object as empty string? " 
      + (s1==""));  // s1 is a different object
    System.out.println("Does s1 equal an empty string? " + s1.equals("")); 
    System.out.println("Is s1 empty? " + s1.isEmpty());
    System.out.println("");

    // Do this like s1 but with a twist
    sb = new StringBuilder("");
    String s2 = sb.toString(); // again not a literal
    System.out.println("Does s2 point to same object as empty string? " 
      + (s2=="")); 
    System.out.println("Length of s2 = " + s0.length());
    s2 = s2.intern(); // returns the object from the pool that equals() s2
    System.out.println("Now does s2 point to same object as empty string? " 
      + (s2==""));  // s2 now has the reference to the empty string in the pool
    System.out.println("Does s2 equal an empty string? " + s2.equals(""));
    System.out.println("Is s2 empty? " + s2.isEmpty());
  }
}

I hope this helps.

share|improve this answer
    
Really helpful. Answered my question and also gave me some very welcome insight on the String class. –  derrik Jun 22 '11 at 22:57

Additionally, you should check t.getDescription() before using .length() on it.

if(t.getDescription()!=null){
(t.getDescription().length()>0)?description.setText(t.getDescription()):description.setVisibility(GONE);}
else { description.setVisibility(GONE);}

To avoid playing with String, insure that t->description always start as null instead of empty String. This can be done in Class constructor.

share|improve this answer

As it turns out, other than comparing String object directly, there is another serious bug which JUST occurred to me. (Please correct me if I'm wrong.)

Because views in a ListView are sometimes recycled, the "tli" reference sometimes references a view who's visibility property is already set to "gone." That property never gets changed back to "visible" even if the String ISN'T empty. I just had to explicitly set that property under both conditions. Here's the fixed code:

public void setTask(Task t) {
    task = t;

    checkbox.setText(task.getName());
    checkbox.setChecked(task.isComplete());
    if (task.getDescription().equals("")) 
        description.setVisibility(GONE);
    else
        description.setVisibility(VISIBLE);
        description.setText(task.getDescription());
}

It now functions whether or not I check the content or the length of the String from task.getDescription().

share|improve this answer
    
You should ask a new question. Nobody is going to see this Android question here. I know very little about Android development but knew the answer to your Java question. –  Sarel Botha Jun 23 '11 at 14:10
    
@sjbotha I actually tagged the question as both Android and Java. Is that what you meant? That it should be asked in Android? –  derrik Jun 23 '11 at 17:42
    
Yes, but also, when you ask a new question your question shows up on the home page and other areas. The text from this question will only be read by people interested in your original question. –  Sarel Botha Jun 23 '11 at 18:53
    
@sjbotha I see what you mean. So should I ask a new question related to the other, Android specific bug and then immediately answer it myself? Is that considered proper etiquette here or would it appear that I was fishing for reputation? Thanks for all your help. It's much appreciated. –  derrik Jun 23 '11 at 20:13
    
Yes, that is proper, or you can just ask if your solution is the correct one in your question and get feedback. –  Sarel Botha Jun 23 '11 at 20:32

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.