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I have this loop here

 for(int i =0; i < prices.length; i++)
  {
        if(prices[i]>largest)
        {
            largest = prices[i];
        }

        else if(prices[i]<smallest)
        {
            smallest= prices[i];
        }
  }

which loops through the whole array and finds the min and max value. Say I wanted to only loop through the first 20 elements how do I do that? I have tried along the lines of putting a nested loop in under this for loop and seeing if I come across it but I can't.

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8  
Change the condition to i < prices.length && i < 20 –  Peter Lawrey Feb 4 '13 at 22:09
10  
No offense, but may be it is better to first read literature about basics of the language? –  Andrey Feb 4 '13 at 22:10
    
most intro textbooks don't show that you can put any boolean expression in the loop clause. be nice and help OP out –  Robert Levy Jun 17 '14 at 16:44

6 Answers 6

up vote 16 down vote accepted

You could just add the requirement to the loop control condition:

for(int i =0; i < prices.length && i < 20; i++)

This would check the first 20 elements where ther are more than 20 in the array, but the whole array if there are less than 20 items.

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Thank you! The problem I was having, I though about user2033853 but that didnt loop through that array! Thank you for your kind help! –  user1816464 Feb 4 '13 at 22:16
for(int i =0; i < 20 && i < prices.length; i++)

This will loop through 20 times, i.e. first twenty elements of the array.

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And what about when there are less than 20 elements in prices? –  nkr Feb 4 '13 at 22:13
    
@nkr I edited the answer to check the length of the array as well. –  user2033853 Feb 4 '13 at 22:15

Change your for loop to something like this:

for(int i =0; i < (prices.length < 20 ? prices.length : 20); i++)
{
    if(prices[i]>largest)
    {
        largest = prices[i];
    }
    else if(prices[i]<smallest)
    {
        smallest= prices[i];
    }
}
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If you only want to loop through the first 20 elements, then say so in the header of the for loop, like this.

for(int i =0; i < prices.length && i < 20; i++)
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@AndrewCooper I edited it a while ago, make sure you reload the question before you downvote. –  Michael M. Feb 4 '13 at 22:14
1  
Comment and downvote removed –  Andrew Cooper Feb 4 '13 at 22:16

Replace prices.length with Math.min(20, prices.length), which is the length of the array or 20, whichever is smaller:

for(int i =0; i < Math.min(20, prices.length); i++)

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5 answers and they all have a double comparison in the loop?

No wonder, Java programs run so slowly...

The correct way to do such a loop is:

 for(int i = 0, len = Math.min(prices.length, 20); i < len; i++)

moving the comparison between length and 20 out of the loop and evaluating the loop-condition therefore twice as fast. (ignoring what the JIT might or might not be doing)

Also, you have to initialize largest/smallest with the first element (or you get invalid values, if there is only one element in the array due to the else), and then you can skip the first element in the loop, making it even "faster":

 largest = prices[0];
 smallest = prices[0];
 for(int i = 1, len = Math.min(prices.length, 20); i < len; i++)
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did you see my answer before posting yours? i did exactly what you did. –  amphibient Feb 5 '13 at 14:17
    
@foampile: Yes, but you also call Min in the loop, instead before the loop –  BeniBela Feb 5 '13 at 14:24
    
i think the java optimizer will take care of redundant evaluations –  amphibient Feb 5 '13 at 14:37
    
here, i was not 100% sure so i asked the question: stackoverflow.com/questions/14711125/… –  amphibient Feb 5 '13 at 15:34

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