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

        id = sequence.get(i);

        switch(id) {
        case 1:
            sq1.setBackgroundResource(R.drawable.square_show);

            hnd.postDelayed(new Runnable() {
                public void run() {
                    sq1.setBackgroundResource(R.drawable.square);
                }
            }, 2000);

            break;
        case 2:
            sq2.setBackgroundResource(R.drawable.square_show);

            hnd.postDelayed(new Runnable() {
                public void run() {
                    sq2.setBackgroundResource(R.drawable.square);
                }
            }, 2000);

            break;
        case 3: ...

Do you have any idea why when this cicle is passed through, each and every one of the cases are true? As if var "id" is 1, 2, 3 AND 4 AND 5 and every else

The code doesn't wait the 2 seconds between each loop, but gets them as true at the 1st one

share|improve this question
2  
I don't get it... If the for pass by every number (1... 2... 3... 4...) so every one of the cases are true... –  Thiago Moura May 17 '13 at 1:28
3  
You are using thread and doing wait on it. It just waits for thread not for the for loop. –  JustWork May 17 '13 at 1:29
    
yes, it should pass by (for ex) 5, 9, and 1. 5 (wait 2 secs) 9 (wait) 1 (wait), instead it it gives them all correct at once –  DomeWTF May 17 '13 at 1:30
    
what do you suggest doing JustWork? –  DomeWTF May 17 '13 at 1:32
    
what you do as @JustWork said you are posting all off them at once on n different threads, with same delay. You can apply small hack by setting 2000 * i at your thread post delay time. But still this is not a proper way to do it, it's just a way to wiggle around :) –  Marko Lazić May 17 '13 at 1:34
show 3 more comments

6 Answers

Ok I see this got a lot of attention. As JustWork said you are executing for loop and all of the cases are dealt instantly, you are just creating N threads which wait 2 seconds and then do. As I said already you can apply simple hack by adding 2000 * i at your post Delay time. Like this

case 1:
        sq1.setBackgroundResource(R.drawable.square_show);

        hnd.postDelayed(new Runnable() {
            public void run() {
                sq1.setBackgroundResource(R.drawable.square);
            }
        }, 2000 * (i + 1));

This means that you are going to create all threads at once and each is going to wait 2 seconds before it shows. i + 1 is for the time when i is zero.

Hope this helps and enjoy your work.

share|improve this answer
1  
We have a winnah! –  Edward Falk May 17 '13 at 1:44
    
Thank you, you saved me =) –  DomeWTF May 17 '13 at 2:12
add comment

postDelayed is an Asynchronous call. Or you put a thread sleep, or you implement a notification and wait for the response, or you increment the delay each loop, like

int delay = 0;

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

    id = sequence.get(i);

    delay += 2000;

    switch(id) {
    case 1:
        sq1.setBackgroundResource(R.drawable.square_show);

        hnd.postDelayed(new Runnable() {
            public void run() {
                sq1.setBackgroundResource(R.drawable.square);
            }
        }, delay);

        break;
    case 2:
        sq2.setBackgroundResource(R.drawable.square_show);

        hnd.postDelayed(new Runnable() {
            public void run() {
                sq2.setBackgroundResource(R.drawable.square);
            }
        }, delay);

        break;
    case 3: ...

But the best solution is implement a notification handler.

share|improve this answer
add comment

i think there is some issue with the declaration and values of the id and lvl variables. please check their values in debug mode.

share|improve this answer
    
lvl is set to 3 and id is set to the position i of a list of integers –  DomeWTF May 17 '13 at 1:36
    
the output shows that all the cases are being satisfied. it doesn't mean that in a single loop all of the cases are called. It means that for a single loop only one case is passed coz you have break statements. The issue with the code is that the loop is running long enough to satisfy each and every cases (one at a time in a loop cycle). so think more looping not more casing!! –  Pravat Panda May 17 '13 at 1:48
add comment

Because you are looping through, consider the following:

for(int i = 0; i <= lvl-1; ++i) { 
    id = sequence.get(i); // this probably returns i

    switch(id) {
    case 1:
        // this will execute during the *first* iteration of the for loop
    case 2:
        // this will execute during the *second* iteration of the for loop
    ...
    }
}

This is my best guess, without being able to see the rest of your code.

share|improve this answer
add comment

I suggest that if you want to delay your loop you must use Thread.sleep(2000);

But you also must use Async call for the for loop. And this will provide you not to lock UI thread.

share|improve this answer
add comment

The code isn't supposed to wait. The execution of the delayed Runnable is supposed to wait. The code in the for/switch just keeps running, at maximum speed.

But why have the switch at all? If you had an array T[] sq = {sq1, sq2, ...}; you could just use sq[sequence.get(i)].setBackgroundResource(R.drawable.square_show), etc., and eliminate the switch altogether.

share|improve this answer
add 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.