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I have two sets of ranges, represented by [ start, stop ] values. Some of the ranges overlap, meaning that the start of one range is in between the [ start, stop ] of the other range. I'd like to make a new set of ranges that has no such overlap, and also doesn't include any new values in a range.

The ranges look like this:

@starts  @ends
      5    108 
      5    187
     44    187
     44    229 
     44    236 
     64    236 
    104    236
    580    644
    632    770

The output that I expect would be this:

@starts  @ends
      5    236
    580    770

This is because the first seven ranges overlap with the interval from 5 => 236, and the last two overlap with the interval from 632 => 770.

Here's the code that I tried:

$fix = 0;
foreach (@ends) {  
    if ($starts[$fix + 1] < $ends[$fix]) {
        splice(@ends, $fix, $fix);
        splice(@starts, $fix + 1, $fix + 1);
    } else {
        $fix += 1;
    }
}

I can print out the values myself, I just need help with the algorithm for merging.

share|improve this question
    
What happened to 44? –  Blender Jun 30 '11 at 16:19
    
@Blender - It's in the range [5, 236]. –  Ted Hopp Jun 30 '11 at 16:21
2  
@Orion - Would ranges [5, 10] and [10, 12] get merged into [5, 12]? What about [5, 10] and [11, 12]? Also, are the arrays always sorted? If so, by start or by end? (Can't tell from your posted sample.) –  Ted Hopp Jun 30 '11 at 16:22
    
the arrays are sorted by by start, and yes [5, 10] and [5, 12] would get merged to [5,12] –  Orion Jun 30 '11 at 16:28
    
@Orion - I was asking about [5, 10] and [10, 12] (adjacent but not overlapping). –  Ted Hopp Jun 30 '11 at 18:54

5 Answers 5

up vote 2 down vote accepted

This edits your arrays in-place, simply collapsing boundaries when they overlap.

# Since they're sorted by @starts, accept the 0th interval, start at 1
for (1..$#starts) {
    # extra check on array bounds, since we edit in-place
    last unless $_ < @starts;
    # don't need to collapse if no overlap with previous end
    next unless $starts[$_] <= $ends[$_-1];
    # delete this start and the previous end
    splice(@starts,$_,1);
    splice(@ends,$_-1,1);
    # rerun this loop for the same value of $_ since it was deleted
    redo;
}
share|improve this answer
    
this worked excellently! –  Orion Jul 1 '11 at 14:21

I think that this is what you want. You have a series of ranges of the form [start,stop], and you'd like to merge the overlapping ranges. The approach below is fairly simple.

  1. There are two sets of ranges, the original set and the merged set.
  2. You add the first range to the set of merged (non-overlapping) ranges. For each candidate range left from the original set, you make a choice:
    • If that candidate overlaps with one already in the merged set, you extend the boundaries of the range in the merged set appropriately.
    • If there is no overlap between the candidate range and any range in the merged set, you add the candidate to the merged set.

Hopefully this makes sense. It's not too obvious from your question that this is what you wanted, so let me know if this isn't right.

#!/usr/bin/perl

use strict;
use warnings;

my @starts = qw/ 5 5 44 44 44 64 104 580 632 /;
my @ends   = qw/ 108 187 187 229 236 236 236 644 770 /;

my @ranges;
while ( @starts && @ends ) {
    my $s = shift @starts;
    my $e = shift @ends;
    push @ranges, [ $s, $e ];
}

my @merged_ranges;
push @merged_ranges, shift @ranges;

foreach my $range (@ranges) {
    my $overlap = 0;
    foreach my $m_range (@merged_ranges) {
        if ( ranges_overlap($range,$m_range) ) {
            $overlap = 1;
            $m_range = merge_range($range,$m_range);
        }
    }
    if ( !$overlap ) {
        push @merged_ranges, $range;
    }
}

print join ' ', qw/ start end /;
print "\n";
foreach my $range (@merged_ranges) {
    print join ' ', ( $range->[0], $range->[1] );
    print "\n";
}

sub ranges_overlap {
    my $r1 = shift;
    my $r2 = shift;

    return ( $r1->[0] <= $r2->[1] && $r2->[0] <= $r1->[1] );
}

sub merge_range {
    my $r1 = shift;
    my $r2 = shift;
    use List::Util qw/ min max/;

    my $merged = [ min($r1->[0],$r2->[0]), max($r1->[1],$r2->[1]) ];
    return $merged;
}
share|improve this answer
    
how would i get my data into an array like that it is currently in two arrays one with the starts and one with the ends –  Orion Jun 30 '11 at 16:44
    
I just added some code to do that. The brackets represent an array reference in Perl, so that a range is represented as a pair of [ $start, $end ] values. You can index into array references using the $ref->[0] and $ref->[1] syntax. Search for array reference or multidimensional array in Perl if that doesn't make any sense. –  James Thompson Jun 30 '11 at 16:55
1  
ranges_overlap should be just: $r1->[0] <= $r2->[1] && $r2->[0] <= $r1->[1]. what you have incorrectly returns false for e.g. ([1,5],[3,4]) –  ysth Jun 30 '11 at 16:59
    
@ysth - thanks for catching that. I've fixed the code to reflect your bugfix. –  James Thompson Jun 30 '11 at 17:04

Since the arrays are ordered by start, then the easiest is to work from the end:

# this assumes at least one element in @starts, @ends
my $n = $#starts;
for (my $i = $#starts - 1; $i >= 0; $i--) {
    if ($ends[$i] < $starts[$n]) {
        # new interval
        $n--;
        ($starts[$n], $ends[$n]) = ($starts[$i], $ends[$i]);
    } else {
        # merge intervals - first scan for how far back to go
        while ($n < $#starts && $ends[$i] < $starts[$n+1]) {
            $n++;
        }
        $starts[$n] = $starts[$i];
    }
}
@starts = @starts[$n..$#starts];
@ends   = @ends[$n..$#ends];
share|improve this answer

How's this?

#!perl

use strict;
use warnings;

my @starts = qw(5   5   44  44  44  64  104 580 632);
my @ends =   qw(108 187 187 229 236 236 236 644 770);

my @starts_new;
my @ends_new;

if ((scalar @starts) ne (scalar @ends)) {
    die "Arrays are not of equal length!\n";
}

my %ranges;
my $next_i = 0;
for (my $i=0; $i <= $#starts; $i=$next_i) {
    # If nothing changes below, the next array item we'll visit is the next sequential one.
    $next_i = $i + 1;

    # Init some temp stuff.
    my $start = $starts[$i]; # this one shouldn't change during this "for $i" loop
    my $end = $ends[$i];
    for (my $j=$i+1; $j <= $#ends; $j++) {
        if ($starts[$j] <= $end) {
            # This item further down the @starts array is actually less than
            # (or equal to) the current $end.
            # So, we need to "skip" this item in @starts and update
            # $end to reflect the corresponding entry in @ends.
            $next_i = $j +1;
            $end = $ends[$j];
        }
    }
    # We have a valid start/end pair.
    push (@starts_new, $start);
    push (@ends_new, $end);
}

for (my $i=0; $i <= $#starts_new; $i++) {
    print "$starts_new[$i], $ends_new[$i]\n";
}
share|improve this answer

I am not fluent in PERL, but the following pseudocode solution can probably be easily adapted:

for(i=0; i<N;){
    //we know that the next merged interval starts here:
    start = starts[i]
    end   = ends[i]

    for(i=i+1; i < N && starts[i] < end; i++){  //perhaps you want <= ?
        end = maximum(end, ends[i]);
    }

    add (start, end) to merged array
}
share|improve this answer
    
That will create extra results. You'll get a result for every loop thru the outer FOR loop. So, 9 results with this test data, instead of the desired 2. I think my algorithm avoids that, certainly with this test data. –  jimtut Jun 30 '11 at 18:42
    
Maybe I should have used while loops to be more clear - the inner loop also updates the i variable so eveything works all right in the end. Looking more attently, it kind of looks like I just did away with your next_i –  hugomg Jul 1 '11 at 4:05
    
Yes, I can see it now. Thanks! –  jimtut Jul 1 '11 at 18:53

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