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.

Suppose I have the C code below

for(i = 0; i < 10; i++){
    printf("Hello");
    if(i == 5){
        a[3] = a[2] * 2;
        if(a[3] == b)
            i = a[3];           //Skip to index = a[3]; depends on runtime value
    }
}

How to convert to Ruby? I know we can skip one iteration using next, but I have to skip a few iterations depending on conditional value and I don't know how many iterations to skip before runtime?


Here is the code I am actually working on (as mentioned by Coreyward):

I am looking for "straight line" in the array that the values differs less than 0.1(less than 0.1 will considered as a "straight line"). The range has to be longer than 50 to be considered as a long "line". After I find the line range [a,b], i wanna skip the iterations to upper limit b so it would not start again from a+1, and it will start to find new "straight line" from b+1

for(i=0; i<arr.Length; i++){
  if(arr[i] - arr[i + 50] < 0.1){
    m = i;                                   //m is the starting point
    for(j=i; j<arr.Length; j++){             //this loop makes sure all values differs less than 0.1
      if(arr[i] - arr[j] < 0.1){
        n = j;
      }else{
        break;
      }
    }
    if(n - m > 50){                          //Found a line with range greater than 50, and store the starting point to line array
      line[i] = m
    }
    i = n                                     //Start new search from n
  }

}

share|improve this question
2  
It would be much more helpful if you provided the intent of what you're trying to accomplish. There are some pretty handy methods in the Enumerator class that let you set the value for the next iteration (feed) and see the next value (peek), and you're also able to use a for loop in Ruby. I'm sure there's a cleaner way of writing this, I just don't know what it's trying to do. –  coreyward Mar 29 '12 at 18:09
    
You're going to index off the end of your array in C, probably want to change the bound to arr.Length-50. This seems like a somewhat convoluted way to find runs of 50 or more whose values are with epsilon of the initial value. –  dbenhur Mar 29 '12 at 18:48
    
You seem to be assuming values at larger index are never less than values at lower index. Is this true? –  dbenhur Mar 29 '12 at 18:52
add comment

2 Answers

up vote 2 down vote accepted

Another way is using the enumerator class:

iter = (1..10).to_enum
while true
  value = iter.next
  puts "value is #{value.inspect}"
  if value == 5
    3.times {value = iter.next}
  end
end

gives

value is 1
value is 2
value is 3
value is 4
value is 5
value is 9
value is 10
StopIteration: iteration reached at end
        from (irb):15:in `next'
        from (irb):15
        from C:/Ruby19/bin/irb:12:in `<main>'
share|improve this answer
    
This is cute, but not an equivalence to advancing an index directly. If one is iterating through an array with i and reaches a decision where one wants to advance to index j, doing (j-i).times{iter.next} is more complex and expensive than just assigning i = j –  dbenhur Apr 3 '12 at 16:28
add comment

Your case isn't easily covered by typical ruby iterators, but ruby also has ordinary while loops which can completely cover c-for. the following is equivalent to your c for loop above.

i = 0;
while i < 10 
  puts "Hello"
  if i == 5
    a[3] = a[2] * 2
    i = a[3] if a[3] == b
  end
  # in your code above, the for increment i++ will execute after assigning new i,
  # though the comment "Skip to index = a[3]" indicates that may not be your intent
  i += 1  
end
share|improve this answer
    
Yes this works, but is there any way to do it with Enumerators? I was thinking about drop so it will drop the values between 5 and a[3], but was confused and lost when I start coding. –  texasbruce Mar 29 '12 at 18:31
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.