Write a function called sumIntervals/sum_intervals() that accepts an array of intervals, and returns the sum of all the interval lengths. Overlapping intervals should only be counted once.
Intervals are represented by a pair of integers in the form of an array. The first value of the interval will always be less than the second value. Interval example: [1, 5] is an interval from 1 to 5. The length of this interval is 4.
List containing overlapping intervals:
[
[1,4],
[7, 10],
[3, 5]
]
The sum of the lengths of these intervals is 7. Since [1, 4] and [3, 5] overlap, we can treat the interval as [1, 5], which has a length of 4.
sumIntervals( [
[1,2],
[6, 10],
[11, 15]
] ); // => 9
sumIntervals( [
[1,4],
[7, 10],
[3, 5]
] ); // => 7
sumIntervals( [
[1,5],
[10, 20],
[1, 6],
[16, 19],
[5, 11]
] ); // => 19// null argument
Interval.sumIntervals(null); // => 0
// empty intervals
Interval.sumIntervals(new int[][]{}); // => 0
Interval.sumIntervals(new int[][]{2,2}, {5,5}); // => 0
// disjoined intervals
Interval.sumIntervals(new int[][]{
{1,2},{3,5}
}); // => (2-1) + (5-3) = 3
// overlapping intervals
Interval.sumIntervals(new int[][]{
{1,4},{3,6},{2,8}
}); // [1,8] => 7// empty intervals
Intervals.SumIntervals(new (int, int)[]{ }); // => 0
Intervals.SumIntervals(new (int, int)[]{ (2, 2), (5, 5)}); // => 0
// disjoined intervals
Intervals.SumIntervals(new (int, int)[]{
(1, 2), (3, 5)
}); // => (2-1) + (5-3) = 3
// overlapping intervals
Intervals.SumIntervals(new (int, int)[]{
(1, 4), (3, 6), (2, 8)
}); // (1,8) => 7sum_intervals( {
{1,2},
{6, 10},
{11, 15}
} ); // => 9
sum_intervals( {
{1,4},
{7, 10},
{3, 5}
} ); // => 7
sum_intervals( {
{1,5},
{10, 20},
{1, 6},
{16, 19},
{5, 11}
} ); // => 19sum_intervals((const struct interval[]){
{1,2},
{6, 10},
{11, 15}
}, 3); /* => 9 */
sum_intervals((const struct interval[]){
{1,4},
{7, 10},
{3, 5}
}, 3); /* => 7 */
sum_intervals((const struct interval[]){
{1,5},
{10, 20},
{1, 6},
{16, 19},
{5, 11}
}, 5); /* => 19 */v1:
dd 1,2, \
6,10, \
11,15
v2:
dd 1,4
dd 7,10
dd 3,5
v3:
dd 1,5, 10,20, 1,6, 16,19, 5,11
mov rdi, v1
mov rsi, 3
call sumintvls ; EAX <- 9
mov rdi, v2
mov rsi, 3
call sumintvls ; EAX <- 7
mov rdi, v3
mov rsi, 5
call sumintvls ; EAX <- 19(sum-intervals [ [1 5] [10 15] [-1 3] ]) ; => 11
(sum-intervals [ [1 5] ]) ; => 4 sumOfIntervals([[1, 5], [10, 15], [-1, 3]]) // => 11
sumOfIntervals([[1, 5]]) // => 4 sum_of_intervals([{1, 5}, {10, 15}, {-1, 3}]) # => 11
sum_of_intervals([{1, 5}]) # => 4 sum_of_intervals([{1, 5}, {10, 15}, {-1, 3}]) # => 11
sum_of_intervals([{1, 5}]) # => 4 sumOfIntervals([(1, 5}, (10, 15}, (-1, 3)]) -- => 11
sumOfIntervals([(1, 5)]) -- => 4 sumofintervals([(1, 5}, (10, 15}, (-1, 3)]) # => 11
sumofintervals([(1, 5)]) # => 4 sumOfIntervals([[1, 5], [10, 15], [-1, 3]]) // => 11
sumOfIntervals([[1, 5]]) // => 4 (sum-intervals (list (list -1 21) (list -59 -45))) ;; 36
(sum-intervals (list (list 1 5) (list 10 15) (list -1 3))) ;; 11
(sum-intervals (list (list 1 2) (list 6 10) (list 11 15))) ;; 36