split up mem_allocator examples
This commit is contained in:
+1
-1
@@ -74,7 +74,7 @@ roadmap and milestone history.
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### standard packages
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- `std/mem` allocator contract with a context pointer plus shared `AllocatorVTable`, raw byte operations `raw_alloc` / `raw_realloc` / `raw_free`, and fallible typed `alloc(T, allocator, count)`; failed nonzero raw reallocation preserves the original allocation, while zero size frees it
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- `std/mem` allocator contract with a context pointer plus shared `AllocatorVTable`, raw byte operations `raw_alloc` / `raw_realloc` / `raw_free`, fallible typed `alloc(T, allocator, count)`, and typed `free(T, allocator, memory)`; failed nonzero raw reallocation preserves the original allocation, while zero size frees it
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### compiler behavior
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@@ -732,7 +732,9 @@
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- deferred: build graph / steps / caching, multiple artifacts, computed paths
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(needs string building), struct field defaults to drop `&[]` on empty lists
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29. disallow arbitrary integer division
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29. basic `std/arraylist` implementation using the new `std/mem` typed allocation
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30. disallow arbitrary integer division
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- take inspiration from zig
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- see also below for a word on unchecked casts
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- the user should be explicit about what they mean with integer division (e.g. `div`, `rem`)
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@@ -1,376 +1,9 @@
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mem :: import "@std/mem"
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_probe_count func(context ?*mut anyopaque) void {
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if context |raw| {
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counts *mut usize :: ptr_cast(usize, raw)
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counts[0] += 1
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}
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}
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_probe_alloc func(context ?*mut anyopaque, _ usize, _ usize) ?*mut u8 {
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_probe_count(context)
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return none
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}
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_probe_realloc func(context ?*mut anyopaque, _ ?*mut u8, _ usize, _ usize, _ usize) ?*mut u8 {
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_probe_count(context)
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return none
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}
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_probe_free func(context ?*mut anyopaque, _ ?*mut u8, _ usize, _ usize) void {
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_probe_count(context)
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}
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_probe_vtable mem.AllocatorVTable :: mem.AllocatorVTable {
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alloc = _probe_alloc,
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realloc = _probe_realloc,
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free = _probe_free,
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}
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TaskList :: struct {
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ids ?[]mut i32
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priorities ?[]mut i32
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durations ?[]mut i32
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len usize
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capacity usize
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allocator mem.Allocator
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}
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task_list_init func(allocator mem.Allocator) TaskList {
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return TaskList {
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ids = none,
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priorities = none,
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durations = none,
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len = 0,
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capacity = 0,
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allocator = allocator,
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}
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}
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alloc_i32s func(allocator mem.Allocator, count usize) ?[]mut i32 {
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fallback [1]mut i32 = undefined
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failed bool = false
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values []mut i32 = mem.alloc(i32, allocator, count) catch |_| {
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failed = true
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yield (&fallback).ptr[..0]
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}
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if (failed) return none
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return values
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}
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free_i32s func(allocator mem.Allocator, values ?[]mut i32) void {
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if values |slice| {
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mem.raw_free(allocator, ptr_cast(u8, slice.ptr), slice.len * size_of(i32), align_of(i32))
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}
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}
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task_list_reserve func(list @mut TaskList, capacity usize) bool {
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if capacity <= list.capacity {
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return true
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}
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new_ids ?[]mut i32 = alloc_i32s(list.allocator, capacity)
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new_priorities ?[]mut i32 = alloc_i32s(list.allocator, capacity)
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new_durations ?[]mut i32 = alloc_i32s(list.allocator, capacity)
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if (new_ids and new_priorities and new_durations) |ids, priorities, durations| {
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if list.len > 0 {
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if (list.ids and list.priorities and list.durations) |old_ids, old_priorities, old_durations| {
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i usize = 0
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while i < list.len : i += 1 {
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ids[i] = old_ids[i]
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priorities[i] = old_priorities[i]
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durations[i] = old_durations[i]
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}
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} else {
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free_i32s(list.allocator, new_ids)
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free_i32s(list.allocator, new_priorities)
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free_i32s(list.allocator, new_durations)
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return false
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}
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}
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free_i32s(list.allocator, list.ids)
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free_i32s(list.allocator, list.priorities)
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free_i32s(list.allocator, list.durations)
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list.ids = new_ids
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list.priorities = new_priorities
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list.durations = new_durations
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list.capacity = capacity
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return true
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}
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free_i32s(list.allocator, new_ids)
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free_i32s(list.allocator, new_priorities)
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free_i32s(list.allocator, new_durations)
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return false
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}
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task_list_push func(list @mut TaskList, id i32, priority i32, duration i32) bool {
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if list.len == list.capacity {
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new_capacity usize = 2
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if list.capacity != 0 {
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new_capacity = list.capacity * 2
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}
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if task_list_reserve(list, new_capacity) == false {
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return false
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}
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}
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if (list.ids and list.priorities and list.durations) |ids, priorities, durations| {
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index usize = list.len
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ids[index] = id
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priorities[index] = priority
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durations[index] = duration
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list.len += 1
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return true
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}
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return false
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}
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task_score func(priority i32, duration i32) i32 {
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return priority * 10 - duration
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}
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task_list_best_id func(list @mut TaskList) i32 {
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if list.len == 0 {
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return -1
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}
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if (list.ids and list.priorities and list.durations) |ids, priorities, durations| {
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best_index usize = 0
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best_score i32 = task_score(priorities[0], durations[0])
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i usize = 1
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while i < list.len : i += 1 {
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score i32 = task_score(priorities[i], durations[i])
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if score > best_score {
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best_score = score
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best_index = i
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}
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}
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return ids[best_index]
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}
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return -1
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}
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task_list_total_duration func(list @mut TaskList) i32 {
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total i32 = 0
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if list.durations |durations| {
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i usize = 0
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while i < list.len : i += 1 {
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total += durations[i]
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}
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}
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return total
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}
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task_list_deinit func(list @mut TaskList) void {
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free_i32s(list.allocator, list.ids)
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free_i32s(list.allocator, list.priorities)
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free_i32s(list.allocator, list.durations)
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list.ids = none
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list.priorities = none
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list.durations = none
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list.len = 0
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list.capacity = 0
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}
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main func() i32 {
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if (size_of(mem.Allocator) != 16) return 31
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typed_result i32 :: typed_allocator_test()
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if (typed_result != 0) return typed_result
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first_calls [1]mut usize = [0]
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second_calls [1]mut usize = [0]
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first_allocator mem.Allocator :: mem.Allocator {
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context = (&first_calls).ptr,
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vtable = &_probe_vtable,
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}
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second_allocator mem.Allocator :: mem.Allocator {
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context = (&second_calls).ptr,
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vtable = &_probe_vtable,
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}
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raw_result i32 :: raw_allocator_test()
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if (raw_result != 0) return raw_result
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_ = mem.raw_alloc(first_allocator, 1, 1)
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_ = mem.raw_realloc(first_allocator, none, 0, 1, 1)
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mem.raw_free(first_allocator, none, 0, 1)
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_ = mem.raw_alloc(second_allocator, 1, 1)
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if (first_calls[0] != 3 or second_calls[0] != 1) return 32
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i32_fallback [1]mut i32 = undefined
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empty_failed bool = false
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empty []mut i32 = mem.alloc(i32, first_allocator, 0) catch |_| {
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empty_failed = true
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yield (&i32_fallback).ptr[..0]
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}
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if (empty_failed or empty.len != 0 or first_calls[0] != 3) return 34
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zero_sized_fallback [1]mut [0]u8 = undefined
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zero_sized_failed bool = false
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zero_sized []mut [0]u8 = mem.alloc([0]u8, first_allocator, 3) catch |_| {
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zero_sized_failed = true
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yield (&zero_sized_fallback).ptr[..0]
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}
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if (zero_sized_failed or zero_sized.len != 3 or first_calls[0] != 3) return 36
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_ = zero_sized[2]
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u64_fallback [1]mut u64 = undefined
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overflow_fallback_failed bool = false
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overflow_fallback []mut u64 = mem.alloc(u64, first_allocator, 0) catch |_| {
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overflow_fallback_failed = true
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yield (&u64_fallback).ptr[..0]
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}
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if (overflow_fallback_failed) return 37
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overflow_failed bool = false
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_ = mem.alloc(u64, first_allocator, max_value(usize)) catch |_| {
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overflow_failed = true
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yield overflow_fallback
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}
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if (overflow_failed == false or first_calls[0] != 3) return 40
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typed_failed bool = false
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typed []mut i32 = mem.alloc(i32, mem.c_allocator, 4) catch |_| {
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typed_failed = true
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yield (&i32_fallback).ptr[..0]
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}
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if (typed_failed) return 38
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defer mem.raw_free(mem.c_allocator, ptr_cast(u8, typed.ptr), typed.len * size_of(i32), align_of(i32))
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typed[0] = 10
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typed[3] = 20
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if (typed[0] + typed[3] != 30) return 39
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resized ?*mut u8 = mem.raw_realloc(mem.c_allocator, none, 0, 4, 1)
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if resized |bytes| {
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bytes[0] = 10
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bytes[1] = 20
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bytes[2] = 30
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bytes[3] = 40
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} else {
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return 20
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}
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grown ?*mut u8 = mem.raw_realloc(mem.c_allocator, resized, 4, 8, 1)
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if grown |bytes| {
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resized = grown
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if bytes[0] != 10 or bytes[1] != 20 or bytes[2] != 30 or bytes[3] != 40 {
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mem.raw_free(mem.c_allocator, grown, 8, 1)
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return 21
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}
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} else {
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mem.raw_free(mem.c_allocator, resized, 4, 1)
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return 22
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}
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shrunk ?*mut u8 = mem.raw_realloc(mem.c_allocator, resized, 8, 2, 1)
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if shrunk |bytes| {
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resized = shrunk
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if bytes[0] != 10 or bytes[1] != 20 {
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mem.raw_free(mem.c_allocator, shrunk, 2, 1)
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return 23
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}
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} else {
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mem.raw_free(mem.c_allocator, resized, 8, 1)
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return 24
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}
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invalid ?*mut u8 = mem.raw_realloc(mem.c_allocator, resized, 2, 4, 24)
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if invalid |memory| {
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mem.raw_free(mem.c_allocator, memory, 4, 24)
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mem.raw_free(mem.c_allocator, resized, 2, 1)
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return 25
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}
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if resized |bytes| {
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if bytes[0] != 10 or bytes[1] != 20 {
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mem.raw_free(mem.c_allocator, resized, 2, 1)
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return 26
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}
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}
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resized = mem.raw_realloc(mem.c_allocator, resized, 2, 0, 1)
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if resized |memory| {
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mem.raw_free(mem.c_allocator, memory, 0, 1)
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return 27
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}
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over_aligned ?*mut u8 = mem.raw_alloc(mem.c_allocator, 4, 32)
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if over_aligned |bytes| {
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bytes[0] = 11
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bytes[1] = 22
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} else {
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return 28
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}
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over_aligned_grown ?*mut u8 = mem.raw_realloc(mem.c_allocator, over_aligned, 4, 8, 32)
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if over_aligned_grown |bytes| {
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if bytes[0] != 11 or bytes[1] != 22 {
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mem.raw_free(mem.c_allocator, over_aligned_grown, 8, 32)
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return 29
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}
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mem.raw_free(mem.c_allocator, over_aligned_grown, 8, 32)
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} else {
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mem.raw_free(mem.c_allocator, over_aligned, 4, 32)
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return 30
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}
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zero_alignment ?*mut u8 = mem.raw_alloc(mem.c_allocator, 8, 0)
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if zero_alignment |memory| {
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mem.raw_free(mem.c_allocator, memory, 8, 0)
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return 1
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}
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bad_alignment ?*mut u8 = mem.raw_alloc(mem.c_allocator, 8, 24)
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if bad_alignment |memory| {
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mem.raw_free(mem.c_allocator, memory, 8, 24)
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return 2
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}
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aligned ?*mut u8 = mem.raw_alloc(mem.c_allocator, 64, 32)
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defer mem.raw_free(mem.c_allocator, aligned, 64, 32)
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if aligned |bytes| {
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bytes[0] = 1
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bytes[63] = 2
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if bytes[0] + bytes[63] != 3 {
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return 4
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}
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} else {
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return 3
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}
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tasks TaskList = task_list_init(mem.c_allocator)
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defer task_list_deinit(&tasks)
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if task_list_push(&tasks, 101, 3, 5) == false {
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return 5
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}
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if tasks.capacity != 2 {
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return 6
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}
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if task_list_push(&tasks, 202, 1, 4) == false {
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return 7
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}
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if tasks.capacity != 2 {
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return 8
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}
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if task_list_push(&tasks, 303, 4, 8) == false {
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return 9
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}
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if tasks.capacity != 4 {
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return 10
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}
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if tasks.len != 3 {
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return 11
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}
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if task_list_best_id(&tasks) != 303 {
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return 12
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}
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if task_list_total_duration(&tasks) != 17 {
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return 13
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}
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return 0
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return task_list_test()
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}
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@@ -0,0 +1,101 @@
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mem :: import "@std/mem"
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raw_allocator_test func() i32 {
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resized ?*mut u8 = mem.raw_realloc(mem.c_allocator, none, 0, 4, 1)
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if resized |bytes| {
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bytes[0] = 10
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bytes[1] = 20
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bytes[2] = 30
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bytes[3] = 40
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} else {
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return 20
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}
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grown ?*mut u8 = mem.raw_realloc(mem.c_allocator, resized, 4, 8, 1)
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if grown |bytes| {
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resized = grown
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if bytes[0] != 10 or bytes[1] != 20 or bytes[2] != 30 or bytes[3] != 40 {
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mem.raw_free(mem.c_allocator, grown, 8, 1)
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return 21
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}
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} else {
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mem.raw_free(mem.c_allocator, resized, 4, 1)
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return 22
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}
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shrunk ?*mut u8 = mem.raw_realloc(mem.c_allocator, resized, 8, 2, 1)
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if shrunk |bytes| {
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resized = shrunk
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if bytes[0] != 10 or bytes[1] != 20 {
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mem.raw_free(mem.c_allocator, shrunk, 2, 1)
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return 23
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}
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} else {
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mem.raw_free(mem.c_allocator, resized, 8, 1)
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return 24
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}
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invalid ?*mut u8 = mem.raw_realloc(mem.c_allocator, resized, 2, 4, 24)
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if invalid |memory| {
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mem.raw_free(mem.c_allocator, memory, 4, 24)
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mem.raw_free(mem.c_allocator, resized, 2, 1)
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return 25
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}
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if resized |bytes| {
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if bytes[0] != 10 or bytes[1] != 20 {
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mem.raw_free(mem.c_allocator, resized, 2, 1)
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return 26
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}
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}
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||||
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resized = mem.raw_realloc(mem.c_allocator, resized, 2, 0, 1)
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if resized |memory| {
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mem.raw_free(mem.c_allocator, memory, 0, 1)
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return 27
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}
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over_aligned ?*mut u8 = mem.raw_alloc(mem.c_allocator, 4, 32)
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if over_aligned |bytes| {
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bytes[0] = 11
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bytes[1] = 22
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} else {
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return 28
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}
|
||||
over_aligned_grown ?*mut u8 = mem.raw_realloc(mem.c_allocator, over_aligned, 4, 8, 32)
|
||||
if over_aligned_grown |bytes| {
|
||||
if bytes[0] != 11 or bytes[1] != 22 {
|
||||
mem.raw_free(mem.c_allocator, over_aligned_grown, 8, 32)
|
||||
return 29
|
||||
}
|
||||
mem.raw_free(mem.c_allocator, over_aligned_grown, 8, 32)
|
||||
} else {
|
||||
mem.raw_free(mem.c_allocator, over_aligned, 4, 32)
|
||||
return 30
|
||||
}
|
||||
|
||||
zero_alignment ?*mut u8 = mem.raw_alloc(mem.c_allocator, 8, 0)
|
||||
if zero_alignment |memory| {
|
||||
mem.raw_free(mem.c_allocator, memory, 8, 0)
|
||||
return 1
|
||||
}
|
||||
|
||||
bad_alignment ?*mut u8 = mem.raw_alloc(mem.c_allocator, 8, 24)
|
||||
if bad_alignment |memory| {
|
||||
mem.raw_free(mem.c_allocator, memory, 8, 24)
|
||||
return 2
|
||||
}
|
||||
|
||||
aligned ?*mut u8 = mem.raw_alloc(mem.c_allocator, 64, 32)
|
||||
defer mem.raw_free(mem.c_allocator, aligned, 64, 32)
|
||||
if aligned |bytes| {
|
||||
bytes[0] = 1
|
||||
bytes[63] = 2
|
||||
if bytes[0] + bytes[63] != 3 {
|
||||
return 4
|
||||
}
|
||||
} else {
|
||||
return 3
|
||||
}
|
||||
|
||||
return 0
|
||||
}
|
||||
@@ -0,0 +1,192 @@
|
||||
mem :: import "@std/mem"
|
||||
|
||||
TaskList :: struct {
|
||||
ids ?[]mut i32
|
||||
priorities ?[]mut i32
|
||||
durations ?[]mut i32
|
||||
len usize
|
||||
capacity usize
|
||||
allocator mem.Allocator
|
||||
}
|
||||
|
||||
task_list_init func(allocator mem.Allocator) TaskList {
|
||||
return TaskList {
|
||||
ids = none,
|
||||
priorities = none,
|
||||
durations = none,
|
||||
len = 0,
|
||||
capacity = 0,
|
||||
allocator = allocator,
|
||||
}
|
||||
}
|
||||
|
||||
alloc_i32s func(allocator mem.Allocator, count usize) ?[]mut i32 {
|
||||
fallback [1]mut i32 = undefined
|
||||
failed bool = false
|
||||
values []mut i32 = mem.alloc(i32, allocator, count) catch |_| {
|
||||
failed = true
|
||||
yield (&fallback).ptr[..0]
|
||||
}
|
||||
if (failed) return none
|
||||
return values
|
||||
}
|
||||
|
||||
free_i32s func(allocator mem.Allocator, values ?[]mut i32) void {
|
||||
if values |slice| {
|
||||
mem.free(i32, allocator, slice)
|
||||
}
|
||||
}
|
||||
|
||||
task_list_reserve func(list @mut TaskList, capacity usize) bool {
|
||||
if capacity <= list.capacity {
|
||||
return true
|
||||
}
|
||||
|
||||
new_ids ?[]mut i32 = alloc_i32s(list.allocator, capacity)
|
||||
new_priorities ?[]mut i32 = alloc_i32s(list.allocator, capacity)
|
||||
new_durations ?[]mut i32 = alloc_i32s(list.allocator, capacity)
|
||||
|
||||
if (new_ids and new_priorities and new_durations) |ids, priorities, durations| {
|
||||
if list.len > 0 {
|
||||
if (list.ids and list.priorities and list.durations) |old_ids, old_priorities, old_durations| {
|
||||
i usize = 0
|
||||
while i < list.len : i += 1 {
|
||||
ids[i] = old_ids[i]
|
||||
priorities[i] = old_priorities[i]
|
||||
durations[i] = old_durations[i]
|
||||
}
|
||||
} else {
|
||||
free_i32s(list.allocator, new_ids)
|
||||
free_i32s(list.allocator, new_priorities)
|
||||
free_i32s(list.allocator, new_durations)
|
||||
return false
|
||||
}
|
||||
}
|
||||
|
||||
free_i32s(list.allocator, list.ids)
|
||||
free_i32s(list.allocator, list.priorities)
|
||||
free_i32s(list.allocator, list.durations)
|
||||
|
||||
list.ids = new_ids
|
||||
list.priorities = new_priorities
|
||||
list.durations = new_durations
|
||||
list.capacity = capacity
|
||||
return true
|
||||
}
|
||||
|
||||
free_i32s(list.allocator, new_ids)
|
||||
free_i32s(list.allocator, new_priorities)
|
||||
free_i32s(list.allocator, new_durations)
|
||||
return false
|
||||
}
|
||||
|
||||
task_list_push func(list @mut TaskList, id i32, priority i32, duration i32) bool {
|
||||
if list.len == list.capacity {
|
||||
new_capacity usize = 2
|
||||
if list.capacity != 0 {
|
||||
new_capacity = list.capacity * 2
|
||||
}
|
||||
if task_list_reserve(list, new_capacity) == false {
|
||||
return false
|
||||
}
|
||||
}
|
||||
|
||||
if (list.ids and list.priorities and list.durations) |ids, priorities, durations| {
|
||||
index usize = list.len
|
||||
ids[index] = id
|
||||
priorities[index] = priority
|
||||
durations[index] = duration
|
||||
list.len += 1
|
||||
return true
|
||||
}
|
||||
|
||||
return false
|
||||
}
|
||||
|
||||
task_score func(priority i32, duration i32) i32 {
|
||||
return priority * 10 - duration
|
||||
}
|
||||
|
||||
task_list_best_id func(list @mut TaskList) i32 {
|
||||
if list.len == 0 {
|
||||
return -1
|
||||
}
|
||||
|
||||
if (list.ids and list.priorities and list.durations) |ids, priorities, durations| {
|
||||
best_index usize = 0
|
||||
best_score i32 = task_score(priorities[0], durations[0])
|
||||
i usize = 1
|
||||
while i < list.len : i += 1 {
|
||||
score i32 = task_score(priorities[i], durations[i])
|
||||
if score > best_score {
|
||||
best_score = score
|
||||
best_index = i
|
||||
}
|
||||
}
|
||||
return ids[best_index]
|
||||
}
|
||||
|
||||
return -1
|
||||
}
|
||||
|
||||
task_list_total_duration func(list @mut TaskList) i32 {
|
||||
total i32 = 0
|
||||
if list.durations |durations| {
|
||||
i usize = 0
|
||||
while i < list.len : i += 1 {
|
||||
total += durations[i]
|
||||
}
|
||||
}
|
||||
return total
|
||||
}
|
||||
|
||||
task_list_deinit func(list @mut TaskList) void {
|
||||
free_i32s(list.allocator, list.ids)
|
||||
free_i32s(list.allocator, list.priorities)
|
||||
free_i32s(list.allocator, list.durations)
|
||||
list.ids = none
|
||||
list.priorities = none
|
||||
list.durations = none
|
||||
list.len = 0
|
||||
list.capacity = 0
|
||||
}
|
||||
|
||||
task_list_test func() i32 {
|
||||
tasks TaskList = task_list_init(mem.c_allocator)
|
||||
defer task_list_deinit(&tasks)
|
||||
|
||||
if task_list_push(&tasks, 101, 3, 5) == false {
|
||||
return 5
|
||||
}
|
||||
if tasks.capacity != 2 {
|
||||
return 6
|
||||
}
|
||||
|
||||
if task_list_push(&tasks, 202, 1, 4) == false {
|
||||
return 7
|
||||
}
|
||||
if tasks.capacity != 2 {
|
||||
return 8
|
||||
}
|
||||
|
||||
if task_list_push(&tasks, 303, 4, 8) == false {
|
||||
return 9
|
||||
}
|
||||
if tasks.capacity != 4 {
|
||||
return 10
|
||||
}
|
||||
|
||||
if tasks.len != 3 {
|
||||
return 11
|
||||
}
|
||||
|
||||
if task_list_best_id(&tasks) != 303 {
|
||||
return 12
|
||||
}
|
||||
|
||||
if task_list_total_duration(&tasks) != 17 {
|
||||
return 13
|
||||
}
|
||||
|
||||
return 0
|
||||
}
|
||||
@@ -0,0 +1,97 @@
|
||||
mem :: import "@std/mem"
|
||||
|
||||
_probe_count func(context ?*mut anyopaque) void {
|
||||
if context |raw| {
|
||||
counts *mut usize :: ptr_cast(usize, raw)
|
||||
counts[0] += 1
|
||||
}
|
||||
}
|
||||
|
||||
_probe_alloc func(context ?*mut anyopaque, _ usize, _ usize) ?*mut u8 {
|
||||
_probe_count(context)
|
||||
return none
|
||||
}
|
||||
|
||||
_probe_realloc func(context ?*mut anyopaque, _ ?*mut u8, _ usize, _ usize, _ usize) ?*mut u8 {
|
||||
_probe_count(context)
|
||||
return none
|
||||
}
|
||||
|
||||
_probe_free func(context ?*mut anyopaque, _ ?*mut u8, _ usize, _ usize) void {
|
||||
_probe_count(context)
|
||||
}
|
||||
|
||||
_probe_vtable mem.AllocatorVTable :: mem.AllocatorVTable {
|
||||
alloc = _probe_alloc,
|
||||
realloc = _probe_realloc,
|
||||
free = _probe_free,
|
||||
}
|
||||
|
||||
typed_allocator_test func() i32 {
|
||||
if (size_of(mem.Allocator) != 16) return 31
|
||||
|
||||
first_calls [1]mut usize = [0]
|
||||
second_calls [1]mut usize = [0]
|
||||
first_allocator mem.Allocator :: mem.Allocator {
|
||||
context = (&first_calls).ptr,
|
||||
vtable = &_probe_vtable,
|
||||
}
|
||||
second_allocator mem.Allocator :: mem.Allocator {
|
||||
context = (&second_calls).ptr,
|
||||
vtable = &_probe_vtable,
|
||||
}
|
||||
|
||||
_ = mem.raw_alloc(first_allocator, 1, 1)
|
||||
_ = mem.raw_realloc(first_allocator, none, 0, 1, 1)
|
||||
mem.raw_free(first_allocator, none, 0, 1)
|
||||
_ = mem.raw_alloc(second_allocator, 1, 1)
|
||||
if (first_calls[0] != 3 or second_calls[0] != 1) return 32
|
||||
|
||||
i32_fallback [1]mut i32 = undefined
|
||||
empty_failed bool = false
|
||||
empty []mut i32 = mem.alloc(i32, first_allocator, 0) catch |_| {
|
||||
empty_failed = true
|
||||
yield (&i32_fallback).ptr[..0]
|
||||
}
|
||||
if (empty_failed or empty.len != 0 or first_calls[0] != 3) return 34
|
||||
mem.free(i32, first_allocator, empty)
|
||||
if (first_calls[0] != 3) return 33
|
||||
|
||||
zero_sized_fallback [1]mut [0]u8 = undefined
|
||||
zero_sized_failed bool = false
|
||||
zero_sized []mut [0]u8 = mem.alloc([0]u8, first_allocator, 3) catch |_| {
|
||||
zero_sized_failed = true
|
||||
yield (&zero_sized_fallback).ptr[..0]
|
||||
}
|
||||
if (zero_sized_failed or zero_sized.len != 3 or first_calls[0] != 3) return 36
|
||||
_ = zero_sized[2]
|
||||
mem.free([0]u8, first_allocator, zero_sized)
|
||||
if (first_calls[0] != 3) return 35
|
||||
|
||||
u64_fallback [1]mut u64 = undefined
|
||||
overflow_fallback_failed bool = false
|
||||
overflow_fallback []mut u64 = mem.alloc(u64, first_allocator, 0) catch |_| {
|
||||
overflow_fallback_failed = true
|
||||
yield (&u64_fallback).ptr[..0]
|
||||
}
|
||||
if (overflow_fallback_failed) return 37
|
||||
overflow_failed bool = false
|
||||
_ = mem.alloc(u64, first_allocator, max_value(usize)) catch |_| {
|
||||
overflow_failed = true
|
||||
yield overflow_fallback
|
||||
}
|
||||
if (overflow_failed == false or first_calls[0] != 3) return 40
|
||||
|
||||
typed_failed bool = false
|
||||
typed []mut i32 = mem.alloc(i32, mem.c_allocator, 4) catch |_| {
|
||||
typed_failed = true
|
||||
yield (&i32_fallback).ptr[..0]
|
||||
}
|
||||
if (typed_failed) return 38
|
||||
defer mem.free(i32, mem.c_allocator, typed)
|
||||
typed[0] = 10
|
||||
typed[3] = 20
|
||||
if (typed[0] + typed[3] != 30) return 39
|
||||
|
||||
return 0
|
||||
}
|
||||
@@ -55,6 +55,12 @@ alloc func($T type, allocator Allocator, count usize) []mut T ! AllocError {
|
||||
return .out_of_memory
|
||||
}
|
||||
|
||||
free func($T type, allocator Allocator, memory []mut T) void {
|
||||
if memory.len != 0 and size_of(T) != 0 {
|
||||
raw_free(allocator, ptr_cast(u8, memory.ptr), memory.len * size_of(T), align_of(T))
|
||||
}
|
||||
}
|
||||
|
||||
_malloc_alignment usize :: 16 # ponytail: aarch64-macos libc malloc alignment assumption.
|
||||
|
||||
_power_of_two func(value usize) bool {
|
||||
|
||||
Reference in New Issue
Block a user