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never thought i had issues with nested loops well here Iam: What i want to achieve is this: Given two number A and B i need to find all counting numbers between 1 and the A*B for example A=4 B=3 i need this:

      1 2 3
      4 5 6
      7 8 9
      10 11 12

I wrote the initial parts but i can't figure out how can i write down the value which changes in every row

      for(int i=1; i<=A; i++){
                 for(int j=1; j<=B; j++){
                      System.out.println("?");}}

Having A*B gives me

    1 2 3
    2 4 6
    3 6 9
    4 8 12

I tried some other combinations too but to no luck, It might look straight forward but its the first time i'm facing this. Thanks in advance!

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1  
How about just looping for (int i = 1; i <= A*B; i++)? –  Kerrek SB Aug 23 '11 at 2:06
1  
Look at the pattern in your desired matrix. Row 0 starts with 1, row 1 starts with 4, row 2 -> 7, row 3 -> 10. Come up with a formula to duplicate that and you're halfway there. Hint: start your loops with 0, not 1. Hint 2: make your formula work in terms of the row number and the value of B. –  Paul Aug 23 '11 at 2:08
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6 Answers

up vote 3 down vote accepted

You can try (i-1)*B + j.

Another option is to just use 1 for loop:

int limit = A * B;
for (int i = 1; i <= limit; i++) {
    System.out.print(i + " ");
    if (i % B == 0) {
        System.out.println();
    }
}
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for(int i=0; i<A; i++){
    for(int j=0; j<B; j++){
        System.out.print(B*i + (j + 1));
    }
    System.out.println("");
}
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I think this is mathematically sound solution. Small fix, (B(i - 1) + j); should be changed to (B*(i - 1) + j); –  Serith Aug 23 '11 at 2:49
    
@Serith Thanks for that catch. Fixed. Also switched from looping from 1 to looping from 0. Had copypasta'd OP's source and edited it without realizing that. Prefer base of 0 myself. –  Sam DeHaan Aug 23 '11 at 11:51
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I don't know Why it has to be a nested loop? however, this one might work

for(int i=0; i < A; i++){
      for(int j=i*B; j<(i+1)*B; j++){
           System.out.print(j+1);
      }
      System.out.print("\n");
}
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for(int i=1;i<=A*B;i++)
{  System.out.printf("%d%c",i,(i%B!=0?' ':'\n'));
}

for(i=1;i<A*B;i+=B)
{ for(j=i;j<i+B;j++)
  { System.out.printf("%d ",j);
  }
  System.out.println();
}
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+1 Not sure why someone downvoted this. –  Paulpro Aug 23 '11 at 2:14
    
Question is about nested loops. –  Sam DeHaan Aug 23 '11 at 2:14
    
I'm guessing the downvoter thought printf wasn't available in Java. The answer can be made more clear by using System.out.printf. However, it should be i%B. –  Kshitij Mehta Aug 23 '11 at 2:16
    
@Sam true, but this answer does give the OP a cleaner, one line solution. The OP may not be aware that something like this even exists. –  Kshitij Mehta Aug 23 '11 at 2:19
    
now I think I got it right –  titus Aug 23 '11 at 2:28
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 for(int i=1; i<=A; i++){
                 for(int j=1; j<=B; j++){
                      System.out.print(B*(i - 1) + j);
                 }
                 System.out.println();
 }
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probably shouldn't be using println –  Kshitij Mehta Aug 23 '11 at 2:10
    
You're right, but I was answering the formula question (edited, thanks) –  Soufiane Hassou Aug 23 '11 at 2:14
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The solution is ridiculously simply, just use one more variable and count it from 1 to A*B.

q = 0;
for(int i=0; i<A; i++){
    for(int j=0; j<B; j++){
        q++;
        System.out.print(q + " ");
    }
    System.out.println();
}
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