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bux-lang/lib/Iter.bux
T
dimgigov d517c62380
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feat: generic enums, fix is-operator, Type_Eq, hardcoded limit diagnostics
- feat: generic enum support (parser, lowering, codegen — both selfhost + bootstrap)
  - enum Result<T,E> { Ok(T), Err(E) } parsing + monomorphization
  - tag constant mangling in monomorphized function bodies
  - data field access (l-value + r-value) for generated enum instances
  - multiple concrete instances in same file
  - HIR walker for enum reference mangling (selfhost + bootstrap)

- feat: stdlib Result<T,E> and Option<T> made truly generic
  - breaking: explicit type args required (Result<int, String>)

- fix: 'is' operator — lowering to hBinary tag comparison + C backend fallback
- fix: Type_Eq structural comparison (inner types for pointer/slice/tuple)
- fix: hardcoded limit diagnostics (>8 params/variants/captures now emit errors)
- docs: Iter<T> safety warning for dangling pointer
- docs: IMPROVEMENTS.md — comprehensive plan and changelog
- test: generic_enum example added to EXAMPLES

All tests pass (0 FAIL). Selfhost loop deterministic.
2026-07-28 01:54:15 +03:00

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module Std::Iter {
import Std::Array::*;
// SAFETY: Iter<T> stores a raw *T pointer to the source array's element buffer.
// The iterator MUST NOT outlive the source Array<T>. Modifying the source array
// (e.g. Array_Push which may reallocate the buffer) while an iterator is active
// will result in a dangling pointer and undefined behavior.
struct Iter<T> {
data: *T,
len: uint,
pos: uint,
}
/* Create an iterator from an Array */
func Array_Iter<T>(arr: *Array<T>) -> Iter<T> {
return Iter<T> { data: arr.data, len: arr.len, pos: 0 };
}
/* Check if there are more elements */
func Iter_HasNext<T>(it: *Iter<T>) -> bool {
return it.pos < it.len;
}
/* Get the next element and advance (undefined if HasNext is false) */
func Iter_Next<T>(it: *Iter<T>) -> T {
let val: T = it.data[it.pos];
it.pos = it.pos + 1;
return val;
}
/* Peek current element without advancing (undefined if HasNext is false) */
func Iter_Peek<T>(it: *Iter<T>) -> T {
return it.data[it.pos];
}
/* Reset iterator to the beginning */
func Iter_Reset<T>(it: *Iter<T>) {
it.pos = 0;
}
/* Current position */
func Iter_Pos<T>(it: *Iter<T>) -> uint {
return it.pos;
}
/* Remaining length */
func Iter_Len<T>(it: *Iter<T>) -> uint {
return it.len;
}
/* Count remaining elements */
func Iter_Count<T>(it: *Iter<T>) -> uint {
return it.len - it.pos;
}
/* Skip N elements */
func Iter_Skip<T>(it: *Iter<T>, n: uint) {
it.pos = it.pos + n;
if it.pos > it.len {
it.pos = it.len;
}
}
/* Take first N elements (by limiting len) */
func Iter_Take<T>(it: *Iter<T>, n: uint) -> Iter<T> {
var endPos: uint = it.pos + n;
if endPos > it.len {
endPos = it.len;
}
return Iter<T> { data: it.data, len: endPos, pos: it.pos };
}
/* True if any remaining element equals value */
func Iter_AnyEq<T>(it: *Iter<T>, value: T) -> bool {
var i: uint = it.pos;
while i < it.len {
if it.data[i] == value {
return true;
}
i = i + 1;
}
return false;
}
/* True if every remaining element equals value (true if empty) */
func Iter_AllEq<T>(it: *Iter<T>, value: T) -> bool {
var i: uint = it.pos;
while i < it.len {
if it.data[i] != value {
return false;
}
i = i + 1;
}
return true;
}
/* Collect remaining elements into a new Array */
func Iter_Collect<T>(it: *Iter<T>) -> Array<T> {
let remaining: uint = it.len - it.pos;
var cap: uint = remaining;
if cap == 0 {
cap = 1;
}
var arr: Array<T> = Array_New<T>(cap);
var i: uint = it.pos;
while i < it.len {
Array_Push<T>(&arr, it.data[i]);
i = i + 1;
}
return arr;
}
// ---------------------------------------------------------------------------
// Higher-order helpers (generic; fat func pointers / closures)
// ---------------------------------------------------------------------------
/* Map each remaining element through f: T → U, collect into Array<U> */
func Iter_Map<T, U>(it: *Iter<T>, f: func(T) -> U) -> Array<U> {
let remaining: uint = it.len - it.pos;
var cap: uint = remaining;
if cap == 0 {
cap = 1;
}
var out: Array<U> = Array_New<U>(cap);
var i: uint = it.pos;
while i < it.len {
let mapped: U = f(it.data[i]);
Array_Push<U>(&out, mapped);
i = i + 1;
}
return out;
}
/* Keep remaining elements for which pred returns true */
func Iter_Filter<T>(it: *Iter<T>, pred: func(T) -> bool) -> Array<T> {
let remaining: uint = it.len - it.pos;
var cap: uint = remaining;
if cap == 0 {
cap = 1;
}
var out: Array<T> = Array_New<T>(cap);
var i: uint = it.pos;
while i < it.len {
let v: T = it.data[i];
if pred(v) {
Array_Push<T>(&out, v);
}
i = i + 1;
}
return out;
}
/* Left-fold: f(f(...f(init, x0), x1), ...) */
func Iter_Fold<T, Acc>(it: *Iter<T>, init: Acc, f: func(Acc, T) -> Acc) -> Acc {
var acc: Acc = init;
var i: uint = it.pos;
while i < it.len {
acc = f(acc, it.data[i]);
i = i + 1;
}
return acc;
}
/* Call f for each remaining element (return value of f is ignored) */
func Iter_ForEach<T>(it: *Iter<T>, f: func(T) -> int) {
var i: uint = it.pos;
while i < it.len {
let _ignored: int = f(it.data[i]);
i = i + 1;
}
}
/* True if any remaining element satisfies pred */
func Iter_Any<T>(it: *Iter<T>, pred: func(T) -> bool) -> bool {
var i: uint = it.pos;
while i < it.len {
if pred(it.data[i]) {
return true;
}
i = i + 1;
}
return false;
}
/* True if all remaining elements satisfy pred (true if empty) */
func Iter_All<T>(it: *Iter<T>, pred: func(T) -> bool) -> bool {
var i: uint = it.pos;
while i < it.len {
if !pred(it.data[i]) {
return false;
}
i = i + 1;
}
return true;
}
/* Sum remaining ints (specialized fold) */
func Iter_SumInt(it: *Iter<int>) -> int {
var total: int = 0;
var i: uint = it.pos;
while i < it.len {
total = total + it.data[i];
i = i + 1;
}
return total;
}
// ---------------------------------------------------------------------------
// Int-specialized aliases (backward compatible with earlier examples)
// ---------------------------------------------------------------------------
func Iter_MapInt(it: *Iter<int>, f: func(int) -> int) -> Array<int> {
return Iter_Map<int, int>(it, f);
}
func Iter_FilterInt(it: *Iter<int>, pred: func(int) -> bool) -> Array<int> {
return Iter_Filter<int>(it, pred);
}
func Iter_FoldInt(it: *Iter<int>, init: int, f: func(int, int) -> int) -> int {
return Iter_Fold<int, int>(it, init, f);
}
func Iter_ForEachInt(it: *Iter<int>, f: func(int) -> int) {
Iter_ForEach<int>(it, f);
}
func Iter_AnyInt(it: *Iter<int>, pred: func(int) -> bool) -> bool {
return Iter_Any<int>(it, pred);
}
func Iter_AllInt(it: *Iter<int>, pred: func(int) -> bool) -> bool {
return Iter_All<int>(it, pred);
}
}