Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have 2 loops like this

goodexpressions and badexpressions are string arrays

for(int i =0; i < goodexpressions.length; i++) {}


for(int j =0; j < badexpressions.length; j++) {}

i'm trying to declare both of these in one loop, i've got this so far but it's not correct

for(int b = 0 , c = 0; b < goodexpressions.length; b++ c < badexpressions.length; c++)

what am I supposed to do to correct this statement?

share|improve this question
Why do you want to do this? It makes the code hard to read, which is never a good thing. – Oliver Charlesworth Jul 14 '13 at 15:45
To count the number of strings in the arrays. – joe dacoolguy Jul 14 '13 at 15:45
Then count the number of strings in the first array, do the same for the second one, and add the results. To avoid code duplication, put the looping and counting code is a separate method, and call this method twice: int sum = countStringsIn(badexpressions) + countStringsIn(goodexpressions); – JB Nizet Jul 14 '13 at 15:47
Why not just use goodexpressions.length + badexpressions.length then? – Reimeus Jul 14 '13 at 15:48
So you want to find the length of both arrays combined, but make sure that there are no duplicates? Just do Arrays.asList(goodexpressions) and Arrays.asList(badexpressions), then create a new HashSet and use the addAll method to add both Arrays.asList(goodexpressions) and Arrays.asList(badexpressions). Finally, just call .size() on the HashList. (.asList() returns an array converted to a List, which you need to use the addAll method on a HashSet. A HashSet does not allow duplicate entries.) Your intentions are unclear, so I may not have answered your question well. – MathSquared Jul 14 '13 at 16:02

3 Answers 3

up vote 2 down vote accepted

Although what you are trying to do seems like a bad idea, here is a piece of code that will work. I don't know if it does exactly what you want it to though, since that isn't completely clear to me.

for(int b = 0, c = 0; b < goodexpressions.length || c < badexpressions.length; b++, c++) { }

When doing this, though, you still have to check if b and c are inside the array index range. You can also replace the || with && in which case you won't have to do that anymore, but you will be missing some items if the arrays are not equally long.

share|improve this answer
instead I just combined goodexpressions and badexpressions by myself(new string[] and copy pasted the strings in the 2 mentioned ararys) and used that one array instead. i wanted to use the apache library's array combiner but that would import unnecessary data and i am coding on android, and still, mobile phones have limited resources. thank you for the nice answer. – joe dacoolguy Jul 14 '13 at 16:01
@joedacoolguy "import unnecessary data" - huh? "mobile phones have limited resources" - not THAT limited. I wouldn't load Spring on one but utility libraries never killed anyone. Odds are your graphical assets will take up more space. – millimoose Jul 14 '13 at 16:04

I think this will do what you are asking:

for (int b = 0, c = 0; 
     b < goodexpressions.length && c < badexpressions.length; 
     b++, c++)

Note that there are exactly 2 semicolons separators on an old-style for loop.

And based on your comment, I think this might be better:

for (int i = 0; i < Math.min(goodexpressions.length, badexpressions.length); i++)


  1. It is not at all clear what the loop body is going to do. That will determine the right way to combine the loops ... or if it is just a bad idea to combine them at all.

  2. The above code is designed to stop at the smaller of the two lengths. If you want to stop at the larger, change && to || and min to max. However, if you do that, you also need to take care to avoid array bounds exceptions.

  3. Unless the intent is to use both goodexpression[i] and badexpression[i] at the same time (e.g. compare them, combine them, and so on), your code will be more readable and more efficient if you use two separate loops.

  4. Another possibility might be to simply check that the two arrays have the same length.

share|improve this answer
You are right about the first. For the second, it is unclear what the OP wants. My assumption was that he wanted to stop at that point. But if not, my code can trivially be adapted. – Stephen C Jul 14 '13 at 16:02
I removed the downvote, but anyone reading this answer should keep in mind that some elements will not be tested if the arrays are not of the same length. – NullUserException Jul 14 '13 at 16:03
And obviously changing && to || and min to max can cause index out of bounds exceptions on the smaller array. The bottom line is, "combining" two arrays in this fashion is not a good idea. – NullUserException Jul 14 '13 at 16:08

Depending on what you want to achieve, you should do one of the following. Say you have two lists A and B...

If you want to loop over all the elements in both lists A and B, create a new list, or array, holding the elements of both lists and loop over that list.

for (int i = 0; i < combinedAandB.length; i++) {

If you want to loop over all the combinations of elements from list A and list B, you have to use nested loops.

for (int i = 0; i < A.length; i++) {
    for (int k = 0; k < B.length; k++) {

Update: Concerning the two-variable for-loop approach in your question and the other two answers: Note that since both those variables will take on exactly the same values in each iteration of the loop, you can just as well use just one variable:

for (int i = 0; i < goodexpressions.length || i < badexpressions.length; i++) { }

But also note that this will not do you any good in terms of avoiding code duplication, since you still have to everything to both, goodexpressions[i] and badexpressions[i]. A better approach might be to write a method holding the loop and calling that method once with goodexpressions and once with badexpressions.

share|improve this answer

Your Answer


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.