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I wanted to call a different activity if my String value(from) is empty and vice verse:

    String[] from = new String[] { "name" };

    if (from.length >= 1)

    {
        int[] to = new int[] { R.id.countryTextView111};
        conAdapter = new SimpleCursorAdapter(CountryList.this, R.layout.countrylist, null, from, to);
        setListAdapter(conAdapter); // set adapter

    }   
    else 

    {

        Intent intent = new Intent(getApplicationContext(), EmailSettings.class);
        startActivity(intent);

    }

For some reason my Condition isn't working so need an Expert view.

Thanks,

Ali

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2 Answers 2

up vote 0 down vote accepted
String[] from = new String[] { "name" };

for(int i=0;i<from.length;i++)
   {
      if(from[i]>="conditon")
       {
         //try code this
       }
   }
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Thats it that was the correct answer :) thank you so much mate and i am now going to mark this Thanks. –  Ali Abid Dec 10 '12 at 12:35

You are checking the length of the array, and it contains one entry so its length is 1
If you want to check the first entry's length then

String[] from = new String[] { "name" };

if (from[0].length >= 1)

{
    int[] to = new int[] { R.id.countryTextView111};
    conAdapter = new SimpleCursorAdapter(CountryList.this, R.layout.emailsettings, null, from, to);
    setListAdapter(conAdapter); // set adapter

}   
else 

{

    Intent intent = new Intent(getApplicationContext(), EmailSettings.class);
    startActivity(intent);

}
share|improve this answer
    
It will only be carrying one value so how to check in this way? –  Ali Abid Dec 10 '12 at 11:52
    
i do not understand, if it will always contains one entry, then why the if else –  Nermeen Dec 10 '12 at 11:56
    
Right now DB is empty so the String is also not carrying any value but for some strange reason its not jumping to "else" and staying at the first part. –  Ali Abid Dec 10 '12 at 11:57
    
String[] from = new String[] { "name" }; here you are putting (name) into the string array so it's length is 1, so it wont enter in else –  Nermeen Dec 10 '12 at 11:58
    
Yes thats true but "name" is mapped to a DB value. How can i check if this string is not containing any result coming from DB? –  Ali Abid Dec 10 '12 at 12:00

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