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204 lines
4.7 KiB
Markdown
204 lines
4.7 KiB
Markdown
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# Unique number allocator for JavaScript.
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Version 1.0.14 [![number-allocator CI](https://github.com/redboltz/number-allocator/workflows/number-allocator%20CI/badge.svg)](https://github.com/redboltz/number-allocator/actions) [![codecov](https://codecov.io/gh/redboltz/number-allocator/branch/main/graph/badge.svg)](https://codecov.io/gh/redboltz/number-allocator)
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## How to use
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```js
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const NumberAllocator = require('number-allocator').NumberAllocator
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// Construct a NumerAllocator that has [0-10] numbers.
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// All numbers are vacant.
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const a = new NumberAllocator(0, 10)
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// Allocate the least vacant number.
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const num0 = a.alloc()
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console.log(num0) // 0
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// Allocate the least vacant number.
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const num1 = a.alloc()
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console.log(num1) // 1
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// Use any vacant number.
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const ret1 = a.use(5) // 5 is marked as used(occupied) in the NumberAllocator.
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console.log(ret1) // true
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// If use the used number, then return false.
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const ret2 = a.use(1) // 1 has already been used, then return false
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console.log(ret2) // false
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// Free the used number.
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a.free(1)
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// Now 1 becomes vacant again.
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const ret3 = a.use(1)
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console.log(ret3) // true
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// Get the lowest vacant number without marking used.
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const num2 = a.firstVacant()
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console.log(num2) // 2
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// Clear all used mark. Now [0-10] are allocatable again.
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a.clear()
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```
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## Reference
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### NumberAllocator(min, max)
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Constructor
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- min: Number
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- The maximum number of allocatable. The number must be integer.
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- max: Number
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- The minimum number of allocatable. The number must be integer.
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The all numbers are set to vacant status.
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Time Complexity O(1)
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### firstVacant()
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Get the first vacant number. The status of the number is not updated.
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Time Complexity O(1)
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- return: Number
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- The first vacant number. If all numbers are occupied, return null.
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When alloc() is called then the same value will be allocated.
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### alloc()
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Allocate the first vacant number. The number become occupied status.
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Time Complexity O(1)
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- return: Number
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- The first vacant number. If all numbers are occupied, return null.
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### use(num)
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Use the number. The number become occupied status.
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If the number has already been occupied, then return false.
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Time Complexity O(logN) : N is the number of intervals (not numbers)
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- num: Number
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- The number to request use.
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- return: Boolean
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- If `num` was not occupied, then return true, otherwise return false.
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### free(num)
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Deallocate the number. The number become vacant status.
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Time Complexity O(logN) : N is the number of intervals (not numbers)
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- num: Number
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- The number to deallocate. The number must be occupied status.
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In other words, the number must be allocated by alloc() or occupied be use().
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### clear()
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Clear all occupied numbers.
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The all numbers are set to vacant status.
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Time Complexity O(1)
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### intervalCount()
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Get the number of intervals. Interval is internal structure of this library.
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This function is for debugging.
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Time Complexity O(1)
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- return: Number
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- The number of intervals.
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### dump()
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Dump the internal structor of the library.
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This function is for debugging.
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Time Complexity O(N) : N is the number of intervals (not numbers)
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## Internal structure
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NumberAllocator has a sorted-set of Interval.
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Interval has `low` and `high` property.
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I use `[low-high]` notation to describe Interval.
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When NumberAllocator is constructed, it has only one Interval(min, max).
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Let's say `new NumberAllocator(1, 9)` then the internal structure become as follows:
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```
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[1-------9]
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```
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When `alloc()` is called, the first Interval.low is returned.
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And then the interval is shrinked.
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```
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alloc()
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return 1
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[2------9]
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```
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When `use(5)` is called, the interval is separated to the two intervals.
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```
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use(5)
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[2-4] [6--9]
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```
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When `alloc()` is called again, the first Interval.low is returned.
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And then the interval is shrinked.
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```
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alloc()
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return 2
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[3-4] [6--9]
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```
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When `free(1)` is called. the interval is inseted.
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```
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free(1)
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[1] [3-4] [6--9]
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```
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When `free(2)` is called. the interval is inseted.
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And check the left and right intervals. If they are continuours, then concatinate to them.
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```
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free(1)
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[1][2][3-4] [6--9]
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[1-------4] [6--9]
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```
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When `clear()` is called, then reset the interval as follows:
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```
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[1-------9]
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```
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When `intervalCount()` is called, then the number of intervals is retuned.
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In the following case, return 3.
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```
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intervalCount()
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return 3
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[1] [3-4] [6--9]
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```
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Interval management (insertion/concatination/shrinking) is using efficient way.
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Insert/Delete operation to sorted-set is minimized.
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Some of operations requires O(logN) time complexity. N is number of intervals.
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If the maximum count of allocatable values is M, N is at most floor((M + 1) / 2),
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In this example, M is 9 so N is at most 5 as follows:
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```
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[1] [3] [5] [7] [9]
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```
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