API / Belt / SetDict

SetDict

This module separates identity from data. It is a bit more verbose but slightly more efficient due to the fact that there is no need to pack identity and data back after each operation.

t

RES
type t<'value, 'identity>

'value is the element type

'identity the identity of the collection

cmp

RES
type cmp<'value, 'id> = Belt.Id.cmp<'value, 'id>

Type of compare function.

empty

RES
let empty: t<'value, 'id>
RES
let s0 = Belt.Set.Dict.empty

fromArray

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let fromArray: (array<'value>, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Creates new set from array of elements.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([1, 3, 2, 4], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.toArray /* [1, 2, 3, 4] */

fromSortedArrayUnsafe

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let fromSortedArrayUnsafe: array<'value> => t<'value, 'id>

The same as [fromArray][#fromarray] except it is after assuming the input array is already sorted.

isEmpty

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let isEmpty: t<'a, 'b> => bool

Checks if set is empty.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let empty = Belt.Set.Dict.fromArray([], ~cmp=IntCmp.cmp) let notEmpty = Belt.Set.Dict.fromArray([1], ~cmp=IntCmp.cmp) Belt.Set.Dict.isEmpty(empty) /* true */ Belt.Set.Dict.isEmpty(notEmpty) /* false */

has

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let has: (t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>) => bool

Checks if an element exists in the set.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let set = Belt.Set.Dict.fromArray([1, 4, 2, 5], ~cmp=IntCmp.cmp) set->Belt.Set.Dict.has(3, ~cmp=IntCmp.cmp) /* false */ set->Belt.Set.Dict.has(1, ~cmp=IntCmp.cmp) /* true */

add

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let add: (t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Adds element to set. If element existed in set, value is unchanged.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.empty let s1 = s0->Belt.Set.Dict.add(1, ~cmp=IntCmp.cmp) let s2 = s1->Belt.Set.Dict.add(2, ~cmp=IntCmp.cmp) let s3 = s2->Belt.Set.Dict.add(2, ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.toArray /* [] */ s1->Belt.Set.Dict.toArray /* [1] */ s2->Belt.Set.Dict.toArray /* [1, 2] */ s3->Belt.Set.Dict.toArray /* [1,2 ] */ s2 == s3 /* true */

mergeMany

RES
let mergeMany: (t<'value, 'id>, array<'value>, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Adds each element of array to set. Unlike add, the reference of return value might be changed even if all values in array already exist in set

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let set = Belt.Set.Dict.empty let newSet = set->Belt.Set.Dict.mergeMany([5, 4, 3, 2, 1], ~cmp=IntCmp.cmp) newSet->Belt.Set.Dict.toArray /* [1, 2, 3, 4, 5] */

remove

RES
let remove: (t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Removes element from set. If element wasn't existed in set, value is unchanged.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([2, 3, 1, 4, 5], ~cmp=IntCmp.cmp) let s1 = s0->Belt.Set.Dict.remove(1, ~cmp=IntCmp.cmp) let s2 = s1->Belt.Set.Dict.remove(3, ~cmp=IntCmp.cmp) let s3 = s2->Belt.Set.Dict.remove(3, ~cmp=IntCmp.cmp) s1->Belt.Set.Dict.toArray /* [2,3,4,5] */ s2->Belt.Set.Dict.toArray /* [2,4,5] */ s2 == s3 /* true */

removeMany

RES
let removeMany: (t<'value, 'id>, array<'value>, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Removes each element of array from set. Unlike remove, the reference of return value might be changed even if any values in array not existed in set.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let set = Belt.Set.Dict.fromArray([1, 2, 3, 4], ~cmp=IntCmp.cmp) let newSet = set->Belt.Set.Dict.removeMany([5, 4, 3, 2, 1], ~cmp=IntCmp.cmp) newSet->Belt.Set.Dict.toArray /* [] */

union

RES
let union: (t<'value, 'id>, t<'value, 'id>, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Returns union of two sets.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3, 5, 6], ~cmp=IntCmp.cmp) let s1 = Belt.Set.Dict.fromArray([5, 2, 3, 1, 5, 4], ~cmp=IntCmp.cmp) let union = Belt.Set.Dict.union(s0, s1, ~cmp=IntCmp.cmp) union->Belt.Set.Dict.toArray /* [1,2,3,4,5,6] */

intersect

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let intersect: (t<'value, 'id>, t<'value, 'id>, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Returns intersection of two sets.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3, 5, 6], ~cmp=IntCmp.cmp) let s1 = Belt.Set.Dict.fromArray([5, 2, 3, 1, 5, 4], ~cmp=IntCmp.cmp) let intersect = Belt.Set.Dict.intersect(s0, s1, ~cmp=IntCmp.cmp) intersect->Belt.Set.Dict.toArray /* [2,3,5] */

diff

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let diff: (t<'value, 'id>, t<'value, 'id>, ~cmp: cmp<'value, 'id>) => t<'value, 'id>

Returns elements from first set, not existing in second set.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3, 5, 6], ~cmp=IntCmp.cmp) let s1 = Belt.Set.Dict.fromArray([5, 2, 3, 1, 5, 4], ~cmp=IntCmp.cmp) let diff1 = Belt.Set.Dict.diff(s0, s1, ~cmp=IntCmp.cmp) let diff2 = Belt.Set.Dict.diff(s1, s0, ~cmp=IntCmp.cmp) diff1->Belt.Set.Dict.toArray /* [6] */ diff2->Belt.Set.Dict.toArray /* [1,4] */

subset

RES
let subset: (t<'value, 'id>, t<'value, 'id>, ~cmp: cmp<'value, 'id>) => bool

Checks if second set is subset of first set.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3, 5, 6], ~cmp=IntCmp.cmp) let s1 = Belt.Set.Dict.fromArray([5, 2, 3, 1, 5, 4], ~cmp=IntCmp.cmp) let s2 = Belt.Set.Dict.intersect(s0, s1, ~cmp=IntCmp.cmp) Belt.Set.Dict.subset(s2, s0, ~cmp=IntCmp.cmp) /* true */ Belt.Set.Dict.subset(s2, s1, ~cmp=IntCmp.cmp) /* true */ Belt.Set.Dict.subset(s1, s0, ~cmp=IntCmp.cmp) /* false */

cmp

RES
let cmp: (t<'value, 'id>, t<'value, 'id>, ~cmp: cmp<'value, 'id>) => int

Total ordering between sets. Can be used as the ordering function for doing sets of sets. It compares size first and then iterates over each element following the order of elements.

eq

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let eq: (t<'value, 'id>, t<'value, 'id>, ~cmp: cmp<'value, 'id>) => bool

Checks if two sets are equal.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3], ~cmp=IntCmp.cmp) let s1 = Belt.Set.Dict.fromArray([3, 2, 5], ~cmp=IntCmp.cmp) Belt.Set.Dict.eq(s0, s1, ~cmp=IntCmp.cmp) /* true */

forEachU

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let forEachU: (t<'value, 'id>, (. 'value) => unit) => unit

Same as forEach but takes uncurried functon.

forEach

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let forEach: (t<'value, 'id>, 'value => unit) => unit

Applies function f in turn to all elements of set in increasing order.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3, 5, 6], ~cmp=IntCmp.cmp) let acc = ref(list{}) s0->Belt.Set.Dict.forEach(x => acc := Belt.List.add(acc.contents, x)) acc /* [6,5,3,2] */

reduceU

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let reduceU: (t<'value, 'id>, 'a, (. 'a, 'value) => 'a) => 'a

reduce

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let reduce: (t<'value, 'id>, 'a, ('a, 'value) => 'a) => 'a

Applies function f to each element of set in increasing order. Function f has two parameters: the item from the set and an “accumulator”, which starts with a value of initialValue. reduce returns the final value of the accumulator.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([5, 2, 3, 5, 6], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.reduce(list{}, (acc, element) => acc->Belt.List.add(element)) /* [6,5,3,2] */

everyU

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let everyU: (t<'value, 'id>, (. 'value) => bool) => bool

every

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let every: (t<'value, 'id>, 'value => bool) => bool

Checks if all elements of the set satisfy the predicate. Order unspecified.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let isEven = x => mod(x, 2) == 0 let s0 = Belt.Set.Dict.fromArray([2, 4, 6, 8], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.every(isEven) /* true */

someU

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let someU: (t<'value, 'id>, (. 'value) => bool) => bool

some

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let some: (t<'value, 'id>, 'value => bool) => bool

Checks if at least one element of the set satisfies the predicate.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let isOdd = x => mod(x, 2) != 0 let s0 = Belt.Set.Dict.fromArray([1, 2, 4, 6, 8], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.some(isOdd) /* true */

keepU

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let keepU: (t<'value, 'id>, (. 'value) => bool) => t<'value, 'id>

keep

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let keep: (t<'value, 'id>, 'value => bool) => t<'value, 'id>

Returns the set of all elements that satisfy the predicate.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let isEven = x => mod(x, 2) == 0 let s0 = Belt.Set.Dict.fromArray([1, 2, 3, 4, 5], ~cmp=IntCmp.cmp) let s1 = s0->Belt.Set.Dict.keep(isEven) s1->Belt.Set.Dict.toArray /* [2,4] */

partitionU

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let partitionU: (t<'value, 'id>, (. 'value) => bool) => (t<'value, 'id>, t<'value, 'id>)

partition

RES
let partition: (t<'value, 'id>, 'value => bool) => (t<'value, 'id>, t<'value, 'id>)

Returns a pair of sets, where first is the set of all the elements of set that satisfy the predicate, and second is the set of all the elements of set that do not satisfy the predicate.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let isOdd = x => mod(x, 2) != 0 let s0 = Belt.Set.Dict.fromArray([1, 2, 3, 4, 5], ~cmp=IntCmp.cmp) let (s1, s2) = s0->Belt.Set.Dict.partition(isOdd) s1->Belt.Set.Dict.toArray /* [1,3,5] */ s2->Belt.Set.Dict.toArray /* [2,4] */

size

RES
let size: t<'value, 'id> => int

Returns size of the set.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([1, 2, 3, 4], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.size /* 4 */

toList

RES
let toList: t<'value, 'id> => list<'value>

Returns list of ordered set elements.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([3, 2, 1, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.toList /* [1,2,3,5] */

toArray

RES
let toArray: t<'value, 'id> => array<'value>

Returns array of ordered set elements.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([3, 2, 1, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.toArray /* [1,2,3,5] */

minimum

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let minimum: t<'value, 'id> => option<'value>

Returns minimum value of the collection. None if collection is empty.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.empty let s1 = Belt.Set.Dict.fromArray([3, 2, 1, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.minimum /* None */ s1->Belt.Set.Dict.minimum /* Some(1) */

minUndefined

RES
let minUndefined: t<'value, 'id> => Js.undefined<'value>

Returns minimum value of the collection. undefined if collection is empty.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.empty let s1 = Belt.Set.Dict.fromArray([3, 2, 1, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.minUndefined /* undefined */ s1->Belt.Set.Dict.minUndefined /* 1 */

maximum

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let maximum: t<'value, 'id> => option<'value>

Returns maximum value of the collection. None if collection is empty.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.empty let s1 = Belt.Set.Dict.fromArray([3, 2, 1, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.maximum /* None */ s1->Belt.Set.Dict.maximum /* Some(5) */

maxUndefined

RES
let maxUndefined: t<'value, 'id> => Js.undefined<'value>

Returns maximum value of the collection. undefined if collection is empty.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.empty let s1 = Belt.Set.Dict.fromArray([3, 2, 1, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.maxUndefined /* undefined */ s1->Belt.Set.Dict.maxUndefined /* 5 */

get

RES
let get: (t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>) => option<'value>

Returns the reference of the value which is equivalent to value using the comparator specifiecd by this collection. Returns None if element does not exist.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([1, 2, 3, 4, 5], ~cmp=IntCmp.cmp) s0->Belt.Set.Dict.get(3, ~cmp=IntCmp.cmp) /* Some(3) */ s0->Belt.Set.Dict.get(20, ~cmp=IntCmp.cmp) /* None */

getUndefined

RES
let getUndefined: (t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>) => Js.undefined<'value>

Same as get but returns undefined when element does not exist.

getExn

RES
let getExn: (t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>) => 'value

Same as get but raise when element does not exist.

split

RES
let split: ( t<'value, 'id>, 'value, ~cmp: cmp<'value, 'id>, ) => ((t<'value, 'id>, t<'value, 'id>), bool)

Returns a tuple ((smaller, larger), present), present is true when element exist in set.

RES
module IntCmp = Belt.Id.MakeComparable({ type t = int let cmp = Pervasives.compare }) let s0 = Belt.Set.Dict.fromArray([1, 2, 3, 4, 5], ~cmp=IntCmp.cmp) let ((smaller, larger), present) = s0->Belt.Set.Dict.split(3, ~cmp=IntCmp.cmp) present /* true */ smaller->Belt.Set.Dict.toArray /* [1,2] */ larger->Belt.Set.Dict.toArray /* [4,5] */

checkInvariantInternal

RES
let checkInvariantInternal: t<'a, 'b> => unit

raise when invariant is not held