0
  while (i < a.size() && value2.substring(0, prefix.length()).compareTo(prefix) == 0) {
        value2 = a.get(i);

        if (value2.endsWith(suffix)) {
            counter++;
            setter = true;

        }

        i++;

    }

I was just wondering if there was a way to avoid using the get() method twice in my code. My problem right now is that I need to assign value 2 before so that my while loop works but I also need to update it within the while loop.

5
  • 2
    You can have in-line assignment inside your while condition.
    – PM 77-1
    Mar 24 '17 at 0:27
  • This is in fact only once... because one statement is outside while and the other is within while which is called during iteration and not the outside one...
    – Ahmad
    Mar 24 '17 at 0:35
  • @PM 77-1 Thank you. Could you demonstrate how I would do that with my while loop?
    – Peter
    Mar 24 '17 at 0:35
  • @Ahmad The first index is looked up twice.
    – shmosel
    Mar 24 '17 at 0:38
  • will see later.... but i will say , just see "I need to assign value 2 before so that my while loop works" you can use do-while which will execute at least once and then check the condition....
    – Ahmad
    Mar 24 '17 at 0:51
4

Maybe this is what you need:

for (String value : a) {
        if (!value.startWith(prefix)) break;
        if (value.endsWith(suffix)) {
            counter++;
            setter = true;
        }
    }

If a is not iterable:

        while(i < a.size()){
        String value = a.get(i);
        if (!value.startsWith(prefix))
            break;
        if(value.endsWith(suffix)){
            counter++;
            setter = true;
        }
        i++;
    }
3
  • thank you very much, this is neat. Would this work with a list of value? with changing indexes?
    – Peter
    Mar 24 '17 at 0:44
  • Ok thanks for the advice. As i'm not using an actual list type a class that a lecturer made using a different typed class it's not working. It's class work where i have to use classes given to me so I'm not able to use actual List types..
    – Peter
    Mar 24 '17 at 1:03
  • Then you can only use a while loop, but I think maybe you can use startWith for string prefix comparison.
    – Ke Li
    Mar 24 '17 at 1:11
1
        while(i <a.size()){
            value2 = a.get(i);
            if(value2.substring(0,prefix.length()).compareTo(prefix)!=0){
                break;
            }
            if(value2.endsWith(suffix)){
                counter++;
                setter = true;

            }
            i++;
       }
1
  • This is the easiest one to understand thank you very much.
    – Peter
    Mar 24 '17 at 0:52
1

This is similar to a Python issue about not being able to assign in conditions; we can use the while(true) if () break; idiom instead - actually, we cannot do while (true) as we'll crash on i == a.size(), so instead we'll split the code into a while and an if:

while (i < a.size())
{
    String value2 = a.get(i);
    if (value2.substring(0, prefix.length()).compareTo(prefix)==0)
    {
        if(value2.endsWith(suffix)){
            counter++;
            setter = true;
        }
    }
    else
    {
        break;
    }
    i++;
}

(Oh, and please try to format your code with regular indentation levels; it makes things so much easier to follow for not just us, but you too.)


Following on from comments below, one can also do the shorter, but in my opinion harder to read:

String value2;
while (i < a.size() && (value2 = a.get(i)).substring(0, prefix.length()).compareTo(prefix)==0)
{
    if(value2.endsWith(suffix))
    {
        counter++;
        setter = true;
    }
    i++;
}

In this case, with the assignment in the middle of the second expression, I think it is easy for the reader to overlook.

5
  • Can you please provide a reference for not being able to assign in conditions for Java?
    – PM 77-1
    Mar 24 '17 at 0:42
  • @PM77-1 You can of course in Java - it's just that I was looking at that Python page yesterday so I remembered their while True: if : break idiom to avoid double assignments.
    – Ken Y-N
    Mar 24 '17 at 0:44
  • If you do in-line assignment it will be the only one. No need to complicate the code.
    – PM 77-1
    Mar 24 '17 at 0:46
  • @PM77-1 We're getting into a style argument, but I've edited the answer to add an in-line example, but I think it looks worse. But on the other hand, I've just realised my version will crash when i == a.size()... Let me edit that too.
    – Ken Y-N
    Mar 24 '17 at 1:00
  • @KenY-N thanks for the example on how to use in-line assignments. You're right in this example it's harder to follow but it's still very useful information for the future.
    – Peter
    Mar 24 '17 at 1:51
1

in java8, you can use stream like this:

    counter = a.stream()
           .filter(s -> s.startsWith(prefix))
           .filter(s -> s.endsWith(suffix))
           .count();
    setter = counter > 0;

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