Challenge: Water between Towers
In a two-dimensional world, we begin with a bar-chart, or rows of unit-width 'towers' of arbitrary height. Then it rains, completely filling all convex enclosures in the chart with water.
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Your task for this challenge is to write a generator water-towers
. It will take as input a (list @ud)
, with each number representing the height of a tower from left to right. It will output a @ud
representing the units of water that can be contained within the structure.
Example usage:
> +water-towers [5 3 7 2 6 4 5 9 1 2 ~]14
Unit Tests
Following a principle of test-driven development, we compose a series of tests which allow us to rigorously check for expected behavior.
/+ *test/= water-towers /gen/water-towers|%++ test-01%+ expect-eq!> `@ud`2!> (water-towers [1 5 3 7 2 ~])++ test-02%+ expect-eq!> `@ud`14!> (water-towers [5 3 7 2 6 4 5 9 1 2 ~])++ test-03%+ expect-eq!> `@ud`35!> (water-towers [2 6 3 5 2 8 1 4 2 2 5 3 5 7 4 1 ~])++ test-04%+ expect-eq!> `@ud`0!> (water-towers [5 5 5 5 ~])++ test-05%+ expect-eq!> `@ud`0!> (water-towers [5 6 7 8 ~])++ test-06%+ expect-eq!> `@ud`0!> (water-towers [8 7 7 6 5 4 3 2 ~])++ test-07%+ expect-eq!> `@ud`0!> (water-towers [0 1 6 7 10 7 6 1 0 ~])++ test-08%+ expect-eq!> `@ud`0!> (water-towers [100 0 0 0 0 0 0 0 ~])++ test-09%+ expect-eq!> `@ud`7!> (water-towers [100 0 0 0 0 0 0 0 1 ~])++ test-10%+ expect-eq!> `@ud`50!> (water-towers [10 0 0 0 0 0 10 ~])++ test-11%+ expect-eq!> `@ud`4!> (water-towers [8 7 8 7 8 7 8 7 8 ~])++ test-12%+ expect-eq!> `@ud`40!> (water-towers [0 1 2 3 4 5 4 3 2 1 1 2 3 4 5 4 3 2 1 1 2 3 4 5 4 3 2 1 0 ~])--
Solutions
These solutions were submitted by the Urbit community as part of a competition in ~2023.6. They are made available under the MIT License and CC0. We ask you to acknowledge authorship should you utilize these elsewhere.
Solution #1
By ~dannul-bortux. A model for literate programming in Hoon.
:::: A gate for computing volume of water collected between towers.:::: Take a list (of type list @ud), with each value representing the height of:: a tower from left to right. Outputs a @ud representing the units of water:: that can be contained within the structure.:::: Our approach involves calculating the total volume of rainfall or water by:: aggregating the water volume from each tower location. For a specific:: tower location. water volume is determined by subtracting the “height”:: of the tower with maximum rainfall (“total height with water”) from the:: height of the tower alone. Tower heights are given by corresponding values:: in the input list.:::: The “total height with water” at a location is determined by the height of:: surrounding boundary towers within our structure. Each tower location will:: have at most two boundary towers: one boundary tower on either side (left:: and right). The left boundary tower is defined as the highest tower to the:: left of our specified tower location. The right boundary tower is defined:: as the highest tower to the right of our specified tower location. The:: value of “total height with water” at a location is equal to the lesser of:: the two boundary tower heights (the minimum of the left boundary tower:: height vs. right boundary tower height). When less than two boundary:: towers are present, the “total height with water” is equal to the height:: of the tower itself because no water can be contained without boundaries.::|= inlist=(list @ud)^- @ud:: If, input list is empty::?: =(0 (lent inlist)):: Then, throw error::~| 'Error - input list cannot be empty'!!=< (compute-totalvol inlist)|%:::: +compute-totalvol: Gets total volume of water by summing water at each:: individual location.:::: Moves left to right iterating over each location (index in list).:: Determines waterfall at each location and aggregates all waterfall to:: find and return total volume.::++ compute-totalvol|= [n=(list @ud)]^- @ud:: i is face for iterating over all index/locations::=/ i 0:: tot is face for aggregating volume of water::=/ tot 0|-:: If, we're at end of input list::?: =(i (lent n)):: then, return total::tot:: else, compute water volume at current index, add to total, and increment i::%= $tot (add tot (compute-indvol i n))i +(i)==:::: +compute-indvol: Computes volume at an individual location.:::: Computes volume at an individual location (index in input list) by:: subtracting tower height from “total height with water”. “Total height:: with water” will be determined at a particular location by the height of:: “boundary towers” for that location.::++ compute-indvol|= [loc=@ud n=(list @ud)]^- @ud(sub (compute-waterheight loc n) (snag loc `(list @ud)`n)):::: +compute-waterheight: Measures the “total height with water” at a specified:: index/location.:::: “Total height with water” at a particular location is measured using the:: heights (value) at the left and right boundary towers. The lesser of these:: two values (left height vs right height) is equal to the “total height:: with water” at our input location.:::: Right boundary tower is the tallest tower to the right of the location--:: i.e. highest value (height) with higher index. The left boundary tower is:: the tallest tower to the left of the location i.e. highest value (height):: with lower index.:::: The “find-boundaryheight” arm iterates left to right and works for:: measuring height of the right boundary tower. For the left boundary tower:: we can use a mirror approach. We reverse the input list and adjust the:: input index accordinglyto move right-to-left.:::: In the case where no right or left boundary tower exists, our:: “find-boundaryheight” arm will return the tower height at our current:: index (indicating no water present) and we correctly compute 0 water:: volume in our compute-indvol arm.::++ compute-waterheight|= [loc=@ud n=(list @ud)]^- @ud:: rbth is a face for our "right boundary tower height" computed using our:: "find-boundaryheight" arm moving left to right::=/ rbth (find-boundaryheight loc n):: lbth is a face for our "right boundary tower height" computed using our:: "find-boundaryheight" arm moving (mirrored) right to left::=/ lbth (find-boundaryheight (sub (lent n) +(loc)) (flop n)):: If, right boundary tower height is less than left boundary tower height,::?: (lth rbth lbth):: then, return right boundary tower height::rbth:: else, return left boundary tower height::lbth:::: +find-boundaryheight: Computes the height of the highest tower to the right:: of the input location:::: Moves left to right starting at input location until the end of input:: list. Tracks height of each tower location with a height greater than:: height at corresponding input location.::++ find-boundaryheight|= [loc=@ud n=(list @ud)]^- @ud:: i is face used to iterate over input list starting one past input index::=/ i +(loc):: bheight is face used to measure boundary tower heights--i.e. any tower:: heights greater than height at input location. At start, bheight is set to:: input location height. If no greater heights are found, input location:: height is returned (indicating no higher boundary towers found).::=/ bheight (snag loc n)|-:: If, we are at the end of our input::?: (gte i (lent n)):: then, return boundary tower height::bheight:: else, if current tower height is greater than currently stored boundary:: tower height, replace boundary tower height. Incr iteration idx.::%= $bheight ?: (gth (snag i n) bheight)(snag i n)bheighti +(i)==--
Solution #2
By ~racfer-hattes. A short and elegant solution.
=>|%++ go|= [current=@ud previous=(list @ud) next=(list @ud)]=/ left-peak (roll previous max)=/ right-peak (roll next max)=/ min-peak (min left-peak right-peak)=/ water-level?: (lth min-peak current) 0(sub min-peak current)?~ next water-level(add water-level $(current i.next, next t.next, previous [current previous]))--|= xs=(list @ud)?~ xs 0%- go [i.xs ~ t.xs]
Solution #3
By ~dozreg-toplud. Another very literate and clean solution.
:: +water-towers: a solution to the HSL challenge #1:::: https://github.com/tamlut-modnys/template-hsl-water-towers:: Takes a (list @ud) of tower heights, returns the number of the units of:: water that can be held in the given structure.::|= towers=(list @ud)^- @ud=<:: x, y are horizontal and vertical axes::=| water-counter=@ud=/ x-last-tower=@ud (dec (lent towers))=/ y-highest-tower=@ud (roll towers max):: iterate along y axis from y=0::=/ y=@ud 0|-^- @ud:: if, y > max(towers)::?: (gth y y-highest-tower):: then, return water-counter::water-counter:: else, iterate along x axis from x=1::=/ x=@ud 1|-^- @ud:: if, x = x(last tower)::?: =(x x-last-tower):: then, go to the next y::^$(y +(y)):: else, increment water-counter if the point [x y] is not occupied by a tower:: and has towers to the left and right on the same y, after go to the next x::=? water-counter ?& (not-tower x y)(has-tower-left x y)(has-tower-right x y)==+(water-counter)$(x +(x)):::: Core with helping functions::|%:: ++not-tower: returns %.y if the coordinate [x y] is free from a tower,:: %.n if occupied.::++ not-tower|= [x=@ud y=@ud]^- ?(gth y (snag x towers)):: ++has-tower-left: returns %.y if there is a tower with height >= y to:: the left from x, %.n otherwise. Enabled computation caching to only test:: each point once.::++ has-tower-left|= [x=@ud y=@ud]~+^- ?:: no towers to the left from the 0th tower::?: =(x 0)%.n:: check recursively to the left::?| (gte (snag (dec x) towers) y)$(x (dec x))==:: ++has-tower-right: returns %.y if there is a tower with height >= y to:: the right from x, %.n otherwise. Enabled computation caching to only test:: each point once.::++ has-tower-right|= [x=@ud y=@ud]~+^- ?:: no towers to the right from the last tower::?: =(x (dec (lent towers)))%.n:: check recursively to the right::?| (gte (snag +(x) towers) y)$(x +(x))==::--