mirror of
https://github.com/roc-lang/roc.git
synced 2025-09-27 22:09:09 +00:00
1842 lines
61 KiB
Rust
1842 lines
61 KiB
Rust
#![allow(clippy::too_many_arguments)]
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use crate::llvm::bitcode::{
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build_dec_wrapper, build_eq_wrapper, build_inc_wrapper, build_transform_caller,
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call_bitcode_fn, call_void_bitcode_fn,
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};
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use crate::llvm::build::{
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allocate_with_refcount_help, build_num_binop, cast_basic_basic, complex_bitcast, Env, InPlace,
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};
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use crate::llvm::convert::{basic_type_from_layout, collection, get_ptr_type};
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use crate::llvm::refcounting::{
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increment_refcount_layout, refcount_is_one_comparison, PointerToRefcount,
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};
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use inkwell::builder::Builder;
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use inkwell::context::Context;
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use inkwell::types::BasicType;
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use inkwell::types::{BasicTypeEnum, PointerType};
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use inkwell::values::{BasicValueEnum, FunctionValue, IntValue, PointerValue, StructValue};
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use inkwell::{AddressSpace, IntPredicate};
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use roc_builtins::bitcode;
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use roc_mono::layout::{Builtin, Layout, LayoutIds, MemoryMode};
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/// List.single : a -> List a
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pub fn list_single<'a, 'ctx, 'env>(
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env: &Env<'a, 'ctx, 'env>,
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inplace: InPlace,
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elem: BasicValueEnum<'ctx>,
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elem_layout: &Layout<'a>,
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) -> BasicValueEnum<'ctx> {
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let builder = env.builder;
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let ctx = env.context;
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// allocate a list of size 1 on the heap
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let size = ctx.i64_type().const_int(1, false);
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let ptr = allocate_list(env, inplace, elem_layout, size);
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// Put the element into the list
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let elem_ptr = unsafe {
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builder.build_in_bounds_gep(
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ptr,
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&[ctx.i64_type().const_int(
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// 0 as in 0 index of our new list
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0_u64, false,
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)],
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"index",
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)
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};
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builder.build_store(elem_ptr, elem);
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store_list(env, ptr, env.ptr_int().const_int(1, false))
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}
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/// List.repeat : Int, elem -> List elem
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pub fn list_repeat<'a, 'ctx, 'env>(
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env: &Env<'a, 'ctx, 'env>,
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layout_ids: &mut LayoutIds<'a>,
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list_len: IntValue<'ctx>,
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element: BasicValueEnum<'ctx>,
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element_layout: &Layout<'a>,
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) -> BasicValueEnum<'ctx> {
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let builder = env.builder;
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let u8_ptr = env.context.i8_type().ptr_type(AddressSpace::Generic);
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let element_ptr = builder.build_alloca(element.get_type(), "element_ptr");
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env.builder.build_store(element_ptr, element);
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let element_width = env
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.ptr_int()
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.const_int(element_layout.stack_size(env.ptr_bytes) as u64, false);
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let alignment = element_layout.alignment_bytes(env.ptr_bytes);
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let alignment_iv = env.ptr_int().const_int(alignment as u64, false);
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let inc_element_fn = build_inc_wrapper(env, layout_ids, element_layout);
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let output = call_bitcode_fn(
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env,
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&[
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list_len.into(),
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alignment_iv.into(),
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env.builder.build_bitcast(element_ptr, u8_ptr, "to_u8_ptr"),
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element_width.into(),
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inc_element_fn.as_global_value().as_pointer_value().into(),
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],
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bitcode::LIST_REPEAT,
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);
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complex_bitcast(
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env.builder,
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output,
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collection(env.context, env.ptr_bytes).into(),
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"from_i128",
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)
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}
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/// List.prepend : List elem, elem -> List elem
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pub fn list_prepend<'a, 'ctx, 'env>(
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env: &Env<'a, 'ctx, 'env>,
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inplace: InPlace,
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original_wrapper: StructValue<'ctx>,
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elem: BasicValueEnum<'ctx>,
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elem_layout: &Layout<'a>,
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) -> BasicValueEnum<'ctx> {
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let builder = env.builder;
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let ctx = env.context;
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// Load the usize length from the wrapper.
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let len = list_len(builder, original_wrapper);
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let elem_type = basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
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let ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
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let list_ptr = load_list_ptr(builder, original_wrapper, ptr_type);
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// The output list length, which is the old list length + 1
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let new_list_len = env.builder.build_int_add(
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ctx.i64_type().const_int(1_u64, false),
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len,
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"new_list_length",
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);
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// Allocate space for the new array that we'll copy into.
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let clone_ptr = allocate_list(env, inplace, elem_layout, new_list_len);
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builder.build_store(clone_ptr, elem);
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let index_1_ptr = unsafe {
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builder.build_in_bounds_gep(
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clone_ptr,
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&[ctx.i64_type().const_int(1_u64, false)],
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"load_index",
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)
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};
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// Calculate the number of bytes we'll need to allocate.
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let elem_bytes = env
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.ptr_int()
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.const_int(elem_layout.stack_size(env.ptr_bytes) as u64, false);
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// This is the size of the list coming in, before we have added an element
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// to the beginning.
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let list_size = env
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.builder
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.build_int_mul(elem_bytes, len, "mul_old_len_by_elem_bytes");
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let ptr_bytes = env.ptr_bytes;
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if elem_layout.safe_to_memcpy() {
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// Copy the bytes from the original array into the new
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// one we just malloc'd.
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//
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// TODO how do we decide when to do the small memcpy vs the normal one?
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builder
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.build_memcpy(index_1_ptr, ptr_bytes, list_ptr, ptr_bytes, list_size)
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.unwrap();
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} else {
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panic!("TODO Cranelift currently only knows how to clone list elements that are Copy.");
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}
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store_list(env, clone_ptr, new_list_len)
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}
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/// List.join : List (List elem) -> List elem
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pub fn list_join<'a, 'ctx, 'env>(
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env: &Env<'a, 'ctx, 'env>,
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inplace: InPlace,
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parent: FunctionValue<'ctx>,
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outer_list: BasicValueEnum<'ctx>,
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outer_list_layout: &Layout<'a>,
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) -> BasicValueEnum<'ctx> {
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// List.join is implemented as follows:
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// 1. loop over every list to sum the list lengths
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// 2. using the sum of all the list lengths, allocate an output list of
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// that size.
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// 3. loop over every list, for every list, loop over every element
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// putting it into the output list
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match outer_list_layout {
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// If the input list is empty, or if it is a list of empty lists
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// then simply return an empty list
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Layout::Builtin(Builtin::EmptyList)
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| Layout::Builtin(Builtin::List(_, Layout::Builtin(Builtin::EmptyList))) => empty_list(env),
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Layout::Builtin(Builtin::List(_, Layout::Builtin(Builtin::List(_, elem_layout)))) => {
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let inner_list_layout =
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Layout::Builtin(Builtin::List(MemoryMode::Refcounted, elem_layout));
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let builder = env.builder;
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let ctx = env.context;
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let elem_type = basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
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let elem_ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
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let inner_list_type =
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basic_type_from_layout(env.arena, ctx, &inner_list_layout, env.ptr_bytes);
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let outer_list_wrapper = outer_list.into_struct_value();
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let outer_list_len = list_len(builder, outer_list_wrapper);
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let outer_list_ptr = {
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let elem_ptr_type = get_ptr_type(&inner_list_type, AddressSpace::Generic);
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load_list_ptr(builder, outer_list_wrapper, elem_ptr_type)
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};
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// outer_list_len > 0
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// We do this check to avoid allocating memory. If the input
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// list is empty, then we can just return an empty list.
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let comparison = list_is_not_empty(env, outer_list_len);
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let build_then = || {
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let list_len_sum_name = "#listslengthsum";
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let list_len_sum_alloca = builder.build_alloca(ctx.i64_type(), list_len_sum_name);
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builder.build_store(list_len_sum_alloca, ctx.i64_type().const_int(0, false));
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// List Sum Loop
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let sum_loop = |_, inner_list: BasicValueEnum<'ctx>| {
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let inner_list_len = list_len(builder, inner_list.into_struct_value());
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let next_list_sum = builder.build_int_add(
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builder
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.build_load(list_len_sum_alloca, list_len_sum_name)
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.into_int_value(),
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inner_list_len,
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"nextlistsum",
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);
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builder.build_store(list_len_sum_alloca, next_list_sum);
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};
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incrementing_elem_loop(
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builder,
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ctx,
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parent,
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outer_list_ptr,
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outer_list_len,
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"#sum_index",
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sum_loop,
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);
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let final_list_sum = builder
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.build_load(list_len_sum_alloca, list_len_sum_name)
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.into_int_value();
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let final_list_ptr = allocate_list(env, inplace, elem_layout, final_list_sum);
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let dest_elem_ptr_alloca = builder.build_alloca(elem_ptr_type, "dest_elem");
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builder.build_store(dest_elem_ptr_alloca, final_list_ptr);
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// Inner List Loop
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let inner_list_loop = |_, inner_list: BasicValueEnum<'ctx>| {
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let inner_list_wrapper = inner_list.into_struct_value();
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let inner_list_len = list_len(builder, inner_list_wrapper);
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// inner_list_len > 0
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let inner_list_comparison = list_is_not_empty(env, inner_list_len);
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let inner_list_non_empty_block =
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ctx.append_basic_block(parent, "inner_list_non_empty");
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let after_inner_list_non_empty_block =
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ctx.append_basic_block(parent, "branchcont");
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builder.build_conditional_branch(
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inner_list_comparison,
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inner_list_non_empty_block,
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after_inner_list_non_empty_block,
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);
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builder.position_at_end(inner_list_non_empty_block);
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let inner_list_ptr = load_list_ptr(builder, inner_list_wrapper, elem_ptr_type);
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// Element Inserting Loop
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let inner_elem_loop = |_, src_elem| {
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// TODO clone src_elem
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let curr_dest_elem_ptr = builder
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.build_load(dest_elem_ptr_alloca, "load_dest_elem_ptr")
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.into_pointer_value();
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builder.build_store(curr_dest_elem_ptr, src_elem);
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let inc_dest_elem_ptr = BasicValueEnum::PointerValue(unsafe {
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builder.build_in_bounds_gep(
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curr_dest_elem_ptr,
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&[env.ptr_int().const_int(1_u64, false)],
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"increment_dest_elem",
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)
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});
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builder.build_store(dest_elem_ptr_alloca, inc_dest_elem_ptr);
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};
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incrementing_elem_loop(
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builder,
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ctx,
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parent,
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inner_list_ptr,
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inner_list_len,
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"#inner_index",
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inner_elem_loop,
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);
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builder.build_unconditional_branch(after_inner_list_non_empty_block);
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builder.position_at_end(after_inner_list_non_empty_block);
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};
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incrementing_elem_loop(
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builder,
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ctx,
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parent,
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outer_list_ptr,
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outer_list_len,
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"#inner_list_index",
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inner_list_loop,
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);
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store_list(env, final_list_ptr, final_list_sum)
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};
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let build_else = || empty_list(env);
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let struct_type = collection(ctx, env.ptr_bytes);
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build_basic_phi2(
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env,
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parent,
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comparison,
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build_then,
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build_else,
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BasicTypeEnum::StructType(struct_type),
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)
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}
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_ => {
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unreachable!("Invalid List layout for List.join {:?}", outer_list_layout);
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}
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}
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}
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/// List.reverse : List elem -> List elem
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pub fn list_reverse_help<'a, 'ctx, 'env>(
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env: &Env<'a, 'ctx, 'env>,
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parent: FunctionValue<'ctx>,
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inplace: InPlace,
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length: IntValue<'ctx>,
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source_ptr: PointerValue<'ctx>,
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dest_ptr: PointerValue<'ctx>,
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) {
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let builder = env.builder;
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let ctx = env.context;
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// constant 1i64
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let one = ctx.i64_type().const_int(1, false);
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let low_alloca = builder.build_alloca(ctx.i64_type(), "low");
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let high_alloca = builder.build_alloca(ctx.i64_type(), "high");
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let high_val = builder.build_int_sub(length, one, "subtract 1");
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builder.build_store(low_alloca, ctx.i64_type().const_zero());
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builder.build_store(high_alloca, high_val);
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// while (high > low)
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let condition_bb = ctx.append_basic_block(parent, "condition");
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builder.build_unconditional_branch(condition_bb);
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builder.position_at_end(condition_bb);
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let high = builder.build_load(high_alloca, "high").into_int_value();
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let low = builder.build_load(low_alloca, "low").into_int_value();
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// if updating in-place, then the "middle element" can be left untouched
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// otherwise, the middle element needs to be copied over from the source to the target
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let predicate = match inplace {
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InPlace::InPlace => IntPredicate::SGT,
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InPlace::Clone => IntPredicate::SGE,
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};
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let condition = builder.build_int_compare(predicate, high, low, "loopcond");
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let body_bb = ctx.append_basic_block(parent, "body");
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let cont_bb = ctx.append_basic_block(parent, "cont");
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builder.build_conditional_branch(condition, body_bb, cont_bb);
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// loop body
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builder.position_at_end(body_bb);
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// assumption: calculating pointer offsets for both the source and target is
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let mut low_ptr = unsafe { builder.build_in_bounds_gep(source_ptr, &[low], "low_ptr") };
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let mut high_ptr = unsafe { builder.build_in_bounds_gep(source_ptr, &[high], "high_ptr") };
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// TODO use memmove?
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let low_value = builder.build_load(low_ptr, "load_low");
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let high_value = builder.build_load(high_ptr, "load_high");
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// swap the two values
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if let InPlace::Clone = inplace {
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low_ptr = unsafe { builder.build_in_bounds_gep(dest_ptr, &[low], "low_ptr") };
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high_ptr = unsafe { builder.build_in_bounds_gep(dest_ptr, &[high], "high_ptr") };
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}
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builder.build_store(high_ptr, low_value);
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builder.build_store(low_ptr, high_value);
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builder.build_store(low_alloca, builder.build_int_add(low, one, "increment"));
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builder.build_store(high_alloca, builder.build_int_sub(high, one, "decrement"));
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builder.build_unconditional_branch(condition_bb);
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// continuation
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builder.position_at_end(cont_bb);
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}
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/// List.reverse : List elem -> List elem
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pub fn list_reverse<'a, 'ctx, 'env>(
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env: &Env<'a, 'ctx, 'env>,
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parent: FunctionValue<'ctx>,
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output_inplace: InPlace,
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list: BasicValueEnum<'ctx>,
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list_layout: &Layout<'a>,
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) -> BasicValueEnum<'ctx> {
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let builder = env.builder;
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let ctx = env.context;
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let wrapper_struct = list.into_struct_value();
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let (input_inplace, element_layout) = match list_layout.clone() {
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Layout::Builtin(Builtin::EmptyList) => (
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InPlace::InPlace,
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// this pointer will never actually be dereferenced
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Layout::Builtin(Builtin::Int64),
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),
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Layout::Builtin(Builtin::List(memory_mode, elem_layout)) => (
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match memory_mode {
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MemoryMode::Unique => InPlace::InPlace,
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MemoryMode::Refcounted => InPlace::Clone,
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},
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elem_layout.clone(),
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),
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_ => unreachable!("Invalid layout {:?} in List.reverse", list_layout),
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};
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let list_type = basic_type_from_layout(env.arena, env.context, &element_layout, env.ptr_bytes);
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let ptr_type = list_type.ptr_type(AddressSpace::Generic);
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let list_ptr = load_list_ptr(builder, wrapper_struct, ptr_type);
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let length = list_len(builder, list.into_struct_value());
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match input_inplace {
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InPlace::InPlace => {
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list_reverse_help(env, parent, input_inplace, length, list_ptr, list_ptr);
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list
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}
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InPlace::Clone => {
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let len_0_block = ctx.append_basic_block(parent, "len_0_block");
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let len_1_block = ctx.append_basic_block(parent, "len_1_block");
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let len_n_block = ctx.append_basic_block(parent, "len_n_block");
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let cont_block = ctx.append_basic_block(parent, "cont_block");
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let one = ctx.i64_type().const_int(1, false);
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let zero = ctx.i64_type().const_zero();
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let result = builder.build_alloca(ptr_type, "result");
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builder.build_switch(
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length,
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len_n_block,
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&[(zero, len_0_block), (one, len_1_block)],
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);
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// build block for length 0
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{
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builder.position_at_end(len_0_block);
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// store NULL pointer there
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builder.build_store(result, ptr_type.const_zero());
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builder.build_unconditional_branch(cont_block);
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}
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// build block for length 1
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{
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builder.position_at_end(len_1_block);
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|
|
let new_list_ptr = clone_list(env, output_inplace, &element_layout, one, list_ptr);
|
|
|
|
builder.build_store(result, new_list_ptr);
|
|
builder.build_unconditional_branch(cont_block);
|
|
}
|
|
|
|
// build block for length > 1
|
|
{
|
|
builder.position_at_end(len_n_block);
|
|
|
|
let new_list_ptr = allocate_list(env, output_inplace, &element_layout, length);
|
|
|
|
list_reverse_help(env, parent, InPlace::Clone, length, list_ptr, new_list_ptr);
|
|
|
|
// store new list pointer there
|
|
builder.build_store(result, new_list_ptr);
|
|
builder.build_unconditional_branch(cont_block);
|
|
}
|
|
|
|
builder.position_at_end(cont_block);
|
|
let new_list_ptr = builder.build_load(result, "result").into_pointer_value();
|
|
|
|
store_list(env, new_list_ptr, length)
|
|
}
|
|
}
|
|
}
|
|
|
|
pub fn list_get_unsafe<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
parent: FunctionValue<'ctx>,
|
|
list_layout: &Layout<'a>,
|
|
elem_index: IntValue<'ctx>,
|
|
wrapper_struct: StructValue<'ctx>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
match list_layout {
|
|
Layout::Builtin(Builtin::List(_, elem_layout)) => {
|
|
let ctx = env.context;
|
|
let elem_type = basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
|
|
let ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
|
|
// Load the pointer to the array data
|
|
let array_data_ptr = load_list_ptr(builder, wrapper_struct, ptr_type);
|
|
|
|
// Assume the bounds have already been checked earlier
|
|
// (e.g. by List.get or List.first, which wrap List.#getUnsafe)
|
|
let elem_ptr =
|
|
unsafe { builder.build_in_bounds_gep(array_data_ptr, &[elem_index], "elem") };
|
|
|
|
let result = builder.build_load(elem_ptr, "List.get");
|
|
|
|
increment_refcount_layout(env, parent, layout_ids, 1, result, elem_layout);
|
|
|
|
result
|
|
}
|
|
_ => {
|
|
unreachable!(
|
|
"Invalid List layout for ListGetUnsafe operation: {:?}",
|
|
list_layout
|
|
);
|
|
}
|
|
}
|
|
}
|
|
|
|
/// List.append : List elem, elem -> List elem
|
|
pub fn list_append<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
inplace: InPlace,
|
|
original_wrapper: StructValue<'ctx>,
|
|
elem: BasicValueEnum<'ctx>,
|
|
elem_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
let ctx = env.context;
|
|
|
|
// Load the usize length from the wrapper.
|
|
let list_len = list_len(builder, original_wrapper);
|
|
let elem_type = basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
|
|
let ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
|
|
|
|
let list_ptr = load_list_ptr(builder, original_wrapper, ptr_type);
|
|
|
|
// The output list length, which is the old list length + 1
|
|
let new_list_len = env.builder.build_int_add(
|
|
ctx.i64_type().const_int(1_u64, false),
|
|
list_len,
|
|
"new_list_length",
|
|
);
|
|
|
|
let ptr_bytes = env.ptr_bytes;
|
|
|
|
// Calculate the number of bytes we'll need to allocate.
|
|
let elem_bytes = env
|
|
.ptr_int()
|
|
.const_int(elem_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
// This is the size of the list coming in, before we have added an element
|
|
// to the end.
|
|
let list_size = env
|
|
.builder
|
|
.build_int_mul(elem_bytes, list_len, "mul_old_len_by_elem_bytes");
|
|
|
|
// Allocate space for the new array that we'll copy into.
|
|
let clone_ptr = allocate_list(env, inplace, elem_layout, new_list_len);
|
|
|
|
// TODO check if malloc returned null; if so, runtime error for OOM!
|
|
|
|
if elem_layout.safe_to_memcpy() {
|
|
// Copy the bytes from the original array into the new
|
|
// one we just malloc'd.
|
|
//
|
|
// TODO how do we decide when to do the small memcpy vs the normal one?
|
|
builder
|
|
.build_memcpy(clone_ptr, ptr_bytes, list_ptr, ptr_bytes, list_size)
|
|
.unwrap();
|
|
} else {
|
|
panic!("TODO Cranelift currently only knows how to clone list elements that are Copy.");
|
|
}
|
|
|
|
let elem_ptr = unsafe { builder.build_in_bounds_gep(clone_ptr, &[list_len], "load_index") };
|
|
|
|
builder.build_store(elem_ptr, elem);
|
|
|
|
store_list(env, clone_ptr, new_list_len)
|
|
}
|
|
|
|
/// List.set : List elem, Int, elem -> List elem
|
|
pub fn list_set<'a, 'ctx, 'env>(
|
|
parent: FunctionValue<'ctx>,
|
|
args: &[(BasicValueEnum<'ctx>, &'a Layout<'a>)],
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
input_inplace: InPlace,
|
|
output_inplace: InPlace,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
debug_assert_eq!(args.len(), 3);
|
|
|
|
let original_wrapper = args[0].0.into_struct_value();
|
|
let elem_index = args[1].0.into_int_value();
|
|
|
|
// Load the usize length from the wrapper. We need it for bounds checking.
|
|
let list_len = list_len(builder, original_wrapper);
|
|
|
|
// Bounds check: only proceed if index < length.
|
|
// Otherwise, return the list unaltered.
|
|
let comparison = bounds_check_comparison(builder, elem_index, list_len);
|
|
|
|
// If the index is in bounds, clone and mutate in place.
|
|
let build_then = || {
|
|
let (elem, elem_layout) = args[2];
|
|
let ctx = env.context;
|
|
let elem_type = basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
|
|
let ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
|
|
|
|
let (new_wrapper, array_data_ptr) = match input_inplace {
|
|
InPlace::InPlace => (
|
|
original_wrapper,
|
|
load_list_ptr(builder, original_wrapper, ptr_type),
|
|
),
|
|
InPlace::Clone => {
|
|
let list_ptr = load_list_ptr(builder, original_wrapper, ptr_type);
|
|
|
|
let refcount_ptr = PointerToRefcount::from_ptr_to_data(env, list_ptr);
|
|
let refcount = refcount_ptr.get_refcount(env);
|
|
|
|
let rc_is_one = refcount_is_one_comparison(env, refcount);
|
|
|
|
let source_block = env.builder.get_insert_block().unwrap();
|
|
let clone_block = ctx.append_basic_block(parent, "clone");
|
|
let done_block = ctx.append_basic_block(parent, "done");
|
|
|
|
env.builder
|
|
.build_conditional_branch(rc_is_one, done_block, clone_block);
|
|
|
|
env.builder.position_at_end(clone_block);
|
|
|
|
let cloned =
|
|
clone_nonempty_list(env, output_inplace, list_len, list_ptr, elem_layout).0;
|
|
|
|
env.builder.build_unconditional_branch(done_block);
|
|
|
|
env.builder.position_at_end(done_block);
|
|
|
|
let list_type = original_wrapper.get_type();
|
|
let merged = env.builder.build_phi(list_type, "writable_list");
|
|
merged.add_incoming(&[(&original_wrapper, source_block), (&cloned, clone_block)]);
|
|
|
|
let result = merged.as_basic_value().into_struct_value();
|
|
|
|
(result, load_list_ptr(builder, result, ptr_type))
|
|
}
|
|
};
|
|
|
|
// If we got here, we passed the bounds check, so this is an in-bounds GEP
|
|
let elem_ptr =
|
|
unsafe { builder.build_in_bounds_gep(array_data_ptr, &[elem_index], "load_index") };
|
|
|
|
// Mutate the new array in-place to change the element.
|
|
builder.build_store(elem_ptr, elem);
|
|
|
|
BasicValueEnum::StructValue(new_wrapper)
|
|
};
|
|
|
|
// If the index was out of bounds, return the original list unaltered.
|
|
let build_else = || BasicValueEnum::StructValue(original_wrapper);
|
|
let ret_type = original_wrapper.get_type();
|
|
|
|
build_basic_phi2(
|
|
env,
|
|
parent,
|
|
comparison,
|
|
build_then,
|
|
build_else,
|
|
ret_type.into(),
|
|
)
|
|
}
|
|
|
|
fn bounds_check_comparison<'ctx>(
|
|
builder: &Builder<'ctx>,
|
|
elem_index: IntValue<'ctx>,
|
|
len: IntValue<'ctx>,
|
|
) -> IntValue<'ctx> {
|
|
// Note: Check for index < length as the "true" condition,
|
|
// to avoid misprediction. (In practice this should usually pass,
|
|
// and CPUs generally default to predicting that a forward jump
|
|
// shouldn't be taken; that is, they predict "else" won't be taken.)
|
|
builder.build_int_compare(IntPredicate::ULT, elem_index, len, "bounds_check")
|
|
}
|
|
|
|
/// List.len : List elem -> Int
|
|
pub fn list_len<'ctx>(
|
|
builder: &Builder<'ctx>,
|
|
wrapper_struct: StructValue<'ctx>,
|
|
) -> IntValue<'ctx> {
|
|
builder
|
|
.build_extract_value(wrapper_struct, Builtin::WRAPPER_LEN, "list_len")
|
|
.unwrap()
|
|
.into_int_value()
|
|
}
|
|
|
|
/// List.sum : List (Num a) -> Num a
|
|
pub fn list_sum<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
parent: FunctionValue<'ctx>,
|
|
list: BasicValueEnum<'ctx>,
|
|
default_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let ctx = env.context;
|
|
let builder = env.builder;
|
|
|
|
let list_wrapper = list.into_struct_value();
|
|
let len = list_len(env.builder, list_wrapper);
|
|
|
|
let accum_type = basic_type_from_layout(env.arena, ctx, default_layout, env.ptr_bytes);
|
|
let accum_alloca = builder.build_alloca(accum_type, "alloca_walk_right_accum");
|
|
|
|
let default: BasicValueEnum = match accum_type {
|
|
BasicTypeEnum::IntType(int_type) => int_type.const_zero().into(),
|
|
BasicTypeEnum::FloatType(float_type) => float_type.const_zero().into(),
|
|
_ => unreachable!(""),
|
|
};
|
|
|
|
builder.build_store(accum_alloca, default);
|
|
|
|
let then_block = ctx.append_basic_block(parent, "then");
|
|
let cont_block = ctx.append_basic_block(parent, "branchcont");
|
|
|
|
let condition = builder.build_int_compare(
|
|
IntPredicate::UGT,
|
|
len,
|
|
ctx.i64_type().const_zero(),
|
|
"list_non_empty",
|
|
);
|
|
|
|
builder.build_conditional_branch(condition, then_block, cont_block);
|
|
|
|
builder.position_at_end(then_block);
|
|
|
|
let elem_ptr_type = get_ptr_type(&accum_type, AddressSpace::Generic);
|
|
let list_ptr = load_list_ptr(builder, list_wrapper, elem_ptr_type);
|
|
|
|
let walk_right_loop = |_, elem: BasicValueEnum<'ctx>| {
|
|
// load current accumulator
|
|
let current = builder.build_load(accum_alloca, "retrieve_accum");
|
|
|
|
let new_current = build_num_binop(
|
|
env,
|
|
parent,
|
|
current,
|
|
default_layout,
|
|
elem,
|
|
default_layout,
|
|
roc_module::low_level::LowLevel::NumAdd,
|
|
);
|
|
|
|
builder.build_store(accum_alloca, new_current);
|
|
};
|
|
|
|
incrementing_elem_loop(
|
|
builder,
|
|
ctx,
|
|
parent,
|
|
list_ptr,
|
|
len,
|
|
"#index",
|
|
walk_right_loop,
|
|
);
|
|
|
|
builder.build_unconditional_branch(cont_block);
|
|
|
|
builder.position_at_end(cont_block);
|
|
|
|
builder.build_load(accum_alloca, "load_final_acum")
|
|
}
|
|
|
|
/// List.walk : List elem, (elem -> accum -> accum), accum -> accum
|
|
pub fn list_walk<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
parent: FunctionValue<'ctx>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
func: BasicValueEnum<'ctx>,
|
|
func_layout: &Layout<'a>,
|
|
default: BasicValueEnum<'ctx>,
|
|
default_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
list_walk_generic(
|
|
env,
|
|
layout_ids,
|
|
parent,
|
|
list,
|
|
element_layout,
|
|
func,
|
|
func_layout,
|
|
default,
|
|
default_layout,
|
|
&bitcode::LIST_WALK,
|
|
)
|
|
}
|
|
|
|
/// List.walkBackwards : List elem, (elem -> accum -> accum), accum -> accum
|
|
pub fn list_walk_backwards<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
parent: FunctionValue<'ctx>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
func: BasicValueEnum<'ctx>,
|
|
func_layout: &Layout<'a>,
|
|
default: BasicValueEnum<'ctx>,
|
|
default_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
list_walk_generic(
|
|
env,
|
|
layout_ids,
|
|
parent,
|
|
list,
|
|
element_layout,
|
|
func,
|
|
func_layout,
|
|
default,
|
|
default_layout,
|
|
&bitcode::LIST_WALK_BACKWARDS,
|
|
)
|
|
}
|
|
|
|
fn list_walk_generic<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
_parent: FunctionValue<'ctx>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
func: BasicValueEnum<'ctx>,
|
|
func_layout: &Layout<'a>,
|
|
default: BasicValueEnum<'ctx>,
|
|
default_layout: &Layout<'a>,
|
|
zig_function: &str,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
let u8_ptr = env.context.i8_type().ptr_type(AddressSpace::Generic);
|
|
|
|
let list_i128 = complex_bitcast(env.builder, list, env.context.i128_type().into(), "to_i128");
|
|
|
|
let transform_ptr = builder.build_alloca(func.get_type(), "transform_ptr");
|
|
env.builder.build_store(transform_ptr, func);
|
|
|
|
let default_ptr = builder.build_alloca(default.get_type(), "default_ptr");
|
|
env.builder.build_store(default_ptr, default);
|
|
|
|
let stepper_caller = build_transform_caller(
|
|
env,
|
|
layout_ids,
|
|
func_layout,
|
|
&[element_layout.clone(), default_layout.clone()],
|
|
)
|
|
.as_global_value()
|
|
.as_pointer_value();
|
|
|
|
let element_width = env
|
|
.ptr_int()
|
|
.const_int(element_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let default_width = env
|
|
.ptr_int()
|
|
.const_int(default_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let alignment = element_layout.alignment_bytes(env.ptr_bytes);
|
|
let alignment_iv = env.ptr_int().const_int(alignment as u64, false);
|
|
|
|
let result_ptr = env.builder.build_alloca(default.get_type(), "result");
|
|
|
|
call_void_bitcode_fn(
|
|
env,
|
|
&[
|
|
list_i128,
|
|
env.builder
|
|
.build_bitcast(transform_ptr, u8_ptr, "to_opaque"),
|
|
stepper_caller.into(),
|
|
env.builder.build_bitcast(default_ptr, u8_ptr, "to_u8_ptr"),
|
|
alignment_iv.into(),
|
|
element_width.into(),
|
|
default_width.into(),
|
|
env.builder.build_bitcast(result_ptr, u8_ptr, "to_opaque"),
|
|
],
|
|
zig_function,
|
|
);
|
|
|
|
env.builder.build_load(result_ptr, "load_result")
|
|
}
|
|
|
|
/// List.contains : List elem, elem -> Bool
|
|
pub fn list_contains<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
element: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
let u8_ptr = env.context.i8_type().ptr_type(AddressSpace::Generic);
|
|
|
|
let list_i128 = complex_bitcast(env.builder, list, env.context.i128_type().into(), "to_i128");
|
|
|
|
let key_ptr = builder.build_alloca(element.get_type(), "key_ptr");
|
|
env.builder.build_store(key_ptr, element);
|
|
|
|
let element_width = env
|
|
.ptr_int()
|
|
.const_int(element_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let eq_fn = build_eq_wrapper(env, layout_ids, element_layout);
|
|
|
|
call_bitcode_fn(
|
|
env,
|
|
&[
|
|
list_i128,
|
|
env.builder.build_bitcast(key_ptr, u8_ptr, "to_u8_ptr"),
|
|
element_width.into(),
|
|
eq_fn.as_global_value().as_pointer_value().into(),
|
|
],
|
|
bitcode::LIST_CONTAINS,
|
|
)
|
|
}
|
|
|
|
/// List.keepIf : List elem, (elem -> Bool) -> List elem
|
|
pub fn list_keep_if<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
let u8_ptr = env.context.i8_type().ptr_type(AddressSpace::Generic);
|
|
|
|
let list_i128 = complex_bitcast(env.builder, list, env.context.i128_type().into(), "to_i128");
|
|
|
|
let transform_ptr = builder.build_alloca(transform.get_type(), "transform_ptr");
|
|
env.builder.build_store(transform_ptr, transform);
|
|
|
|
let stepper_caller =
|
|
build_transform_caller(env, layout_ids, transform_layout, &[element_layout.clone()])
|
|
.as_global_value()
|
|
.as_pointer_value();
|
|
|
|
let element_width = env
|
|
.ptr_int()
|
|
.const_int(element_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let alignment = element_layout.alignment_bytes(env.ptr_bytes);
|
|
let alignment_iv = env.ptr_int().const_int(alignment as u64, false);
|
|
|
|
let inc_element_fn = build_inc_wrapper(env, layout_ids, element_layout);
|
|
let dec_element_fn = build_dec_wrapper(env, layout_ids, element_layout);
|
|
|
|
let output = call_bitcode_fn(
|
|
env,
|
|
&[
|
|
list_i128,
|
|
env.builder
|
|
.build_bitcast(transform_ptr, u8_ptr, "to_opaque"),
|
|
stepper_caller.into(),
|
|
alignment_iv.into(),
|
|
element_width.into(),
|
|
inc_element_fn.as_global_value().as_pointer_value().into(),
|
|
dec_element_fn.as_global_value().as_pointer_value().into(),
|
|
],
|
|
&bitcode::LIST_KEEP_IF,
|
|
);
|
|
|
|
complex_bitcast(
|
|
env.builder,
|
|
output,
|
|
collection(env.context, env.ptr_bytes).into(),
|
|
"from_i128",
|
|
)
|
|
}
|
|
|
|
/// List.keepOks : List before, (before -> Result after *) -> List after
|
|
pub fn list_keep_oks<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
before_layout: &Layout<'a>,
|
|
after_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
list_keep_result(
|
|
env,
|
|
layout_ids,
|
|
transform,
|
|
transform_layout,
|
|
list,
|
|
before_layout,
|
|
after_layout,
|
|
bitcode::LIST_KEEP_OKS,
|
|
)
|
|
}
|
|
|
|
/// List.keepErrs : List before, (before -> Result * after) -> List after
|
|
pub fn list_keep_errs<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
before_layout: &Layout<'a>,
|
|
after_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
list_keep_result(
|
|
env,
|
|
layout_ids,
|
|
transform,
|
|
transform_layout,
|
|
list,
|
|
before_layout,
|
|
after_layout,
|
|
bitcode::LIST_KEEP_ERRS,
|
|
)
|
|
}
|
|
|
|
pub fn list_keep_result<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
before_layout: &Layout<'a>,
|
|
after_layout: &Layout<'a>,
|
|
op: &str,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
let u8_ptr = env.context.i8_type().ptr_type(AddressSpace::Generic);
|
|
|
|
let result_layout = match transform_layout {
|
|
Layout::FunctionPointer(_, ret) => ret,
|
|
Layout::Closure(_, _, ret) => ret,
|
|
_ => unreachable!("not a callable layout"),
|
|
};
|
|
|
|
let list_i128 = complex_bitcast(env.builder, list, env.context.i128_type().into(), "to_i128");
|
|
|
|
let transform_ptr = builder.build_alloca(transform.get_type(), "transform_ptr");
|
|
env.builder.build_store(transform_ptr, transform);
|
|
|
|
let stepper_caller =
|
|
build_transform_caller(env, layout_ids, transform_layout, &[before_layout.clone()])
|
|
.as_global_value()
|
|
.as_pointer_value();
|
|
|
|
let before_width = env
|
|
.ptr_int()
|
|
.const_int(before_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let after_width = env
|
|
.ptr_int()
|
|
.const_int(after_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let result_width = env
|
|
.ptr_int()
|
|
.const_int(result_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let alignment = before_layout.alignment_bytes(env.ptr_bytes);
|
|
let alignment_iv = env.ptr_int().const_int(alignment as u64, false);
|
|
|
|
let inc_closure = build_inc_wrapper(env, layout_ids, transform_layout);
|
|
let dec_result_fn = build_dec_wrapper(env, layout_ids, result_layout);
|
|
|
|
let output = call_bitcode_fn(
|
|
env,
|
|
&[
|
|
list_i128,
|
|
env.builder
|
|
.build_bitcast(transform_ptr, u8_ptr, "to_opaque"),
|
|
stepper_caller.into(),
|
|
alignment_iv.into(),
|
|
before_width.into(),
|
|
result_width.into(),
|
|
after_width.into(),
|
|
inc_closure.as_global_value().as_pointer_value().into(),
|
|
dec_result_fn.as_global_value().as_pointer_value().into(),
|
|
],
|
|
op,
|
|
);
|
|
|
|
complex_bitcast(
|
|
env.builder,
|
|
output,
|
|
collection(env.context, env.ptr_bytes).into(),
|
|
"from_i128",
|
|
)
|
|
}
|
|
|
|
/// List.map : List before, (before -> after) -> List after
|
|
pub fn list_map<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
list_map_generic(
|
|
env,
|
|
layout_ids,
|
|
transform,
|
|
transform_layout,
|
|
list,
|
|
element_layout,
|
|
bitcode::LIST_MAP,
|
|
&[element_layout.clone()],
|
|
)
|
|
}
|
|
|
|
/// List.mapWithIndex : List before, (Nat, before -> after) -> List after
|
|
pub fn list_map_with_index<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
list_map_generic(
|
|
env,
|
|
layout_ids,
|
|
transform,
|
|
transform_layout,
|
|
list,
|
|
element_layout,
|
|
bitcode::LIST_MAP_WITH_INDEX,
|
|
&[Layout::Builtin(Builtin::Usize), element_layout.clone()],
|
|
)
|
|
}
|
|
|
|
fn list_map_generic<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
layout_ids: &mut LayoutIds<'a>,
|
|
transform: BasicValueEnum<'ctx>,
|
|
transform_layout: &Layout<'a>,
|
|
list: BasicValueEnum<'ctx>,
|
|
element_layout: &Layout<'a>,
|
|
op: &str,
|
|
argument_layouts: &[Layout<'a>],
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
|
|
let return_layout = match transform_layout {
|
|
Layout::FunctionPointer(_, ret) => ret,
|
|
Layout::Closure(_, _, ret) => ret,
|
|
_ => unreachable!("not a callable layout"),
|
|
};
|
|
|
|
let u8_ptr = env.context.i8_type().ptr_type(AddressSpace::Generic);
|
|
|
|
let list_i128 = complex_bitcast(env.builder, list, env.context.i128_type().into(), "to_i128");
|
|
|
|
let transform_ptr = builder.build_alloca(transform.get_type(), "transform_ptr");
|
|
env.builder.build_store(transform_ptr, transform);
|
|
|
|
let stepper_caller =
|
|
build_transform_caller(env, layout_ids, transform_layout, argument_layouts)
|
|
.as_global_value()
|
|
.as_pointer_value();
|
|
|
|
let old_element_width = env
|
|
.ptr_int()
|
|
.const_int(element_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let new_element_width = env
|
|
.ptr_int()
|
|
.const_int(return_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
|
|
let alignment = element_layout.alignment_bytes(env.ptr_bytes);
|
|
let alignment_iv = env.ptr_int().const_int(alignment as u64, false);
|
|
|
|
let output = call_bitcode_fn(
|
|
env,
|
|
&[
|
|
list_i128,
|
|
env.builder
|
|
.build_bitcast(transform_ptr, u8_ptr, "to_opaque"),
|
|
stepper_caller.into(),
|
|
alignment_iv.into(),
|
|
old_element_width.into(),
|
|
new_element_width.into(),
|
|
],
|
|
op,
|
|
);
|
|
|
|
complex_bitcast(
|
|
env.builder,
|
|
output,
|
|
collection(env.context, env.ptr_bytes).into(),
|
|
"from_i128",
|
|
)
|
|
}
|
|
|
|
/// List.concat : List elem, List elem -> List elem
|
|
pub fn list_concat<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
inplace: InPlace,
|
|
parent: FunctionValue<'ctx>,
|
|
first_list: BasicValueEnum<'ctx>,
|
|
second_list: BasicValueEnum<'ctx>,
|
|
list_layout: &Layout<'a>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let builder = env.builder;
|
|
let ctx = env.context;
|
|
|
|
let second_list_wrapper = second_list.into_struct_value();
|
|
|
|
let second_list_len = list_len(builder, second_list_wrapper);
|
|
|
|
// We only match on the first lists layout
|
|
// because the first and second input lists
|
|
// necessarily have the same layout
|
|
match list_layout {
|
|
Layout::Builtin(Builtin::EmptyList) => empty_list(env),
|
|
Layout::Builtin(Builtin::List(_, elem_layout)) => {
|
|
let first_list_wrapper = first_list.into_struct_value();
|
|
|
|
let first_list_len = list_len(builder, first_list_wrapper);
|
|
|
|
// first_list_len > 0
|
|
// We do this check to avoid allocating memory. If the first input
|
|
// list is empty, then we can just return the second list cloned
|
|
let first_list_length_comparison = list_is_not_empty(env, first_list_len);
|
|
|
|
let if_first_list_is_empty = || {
|
|
// second_list_len > 0
|
|
// We do this check to avoid allocating memory. If the second input
|
|
// list is empty, then we can just return an empty list
|
|
let second_list_length_comparison = list_is_not_empty(env, second_list_len);
|
|
|
|
let build_second_list_then = || {
|
|
let elem_type =
|
|
basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
|
|
let ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
|
|
|
|
let (new_wrapper, _) = clone_nonempty_list(
|
|
env,
|
|
inplace,
|
|
second_list_len,
|
|
load_list_ptr(builder, second_list_wrapper, ptr_type),
|
|
elem_layout,
|
|
);
|
|
|
|
BasicValueEnum::StructValue(new_wrapper)
|
|
};
|
|
|
|
let build_second_list_else = || empty_list(env);
|
|
|
|
build_basic_phi2(
|
|
env,
|
|
parent,
|
|
second_list_length_comparison,
|
|
build_second_list_then,
|
|
build_second_list_else,
|
|
BasicTypeEnum::StructType(collection(ctx, env.ptr_bytes)),
|
|
)
|
|
};
|
|
|
|
let if_first_list_is_not_empty = || {
|
|
let elem_type = basic_type_from_layout(env.arena, ctx, elem_layout, env.ptr_bytes);
|
|
let ptr_type = get_ptr_type(&elem_type, AddressSpace::Generic);
|
|
|
|
let if_second_list_is_empty = || {
|
|
let (new_wrapper, _) = clone_nonempty_list(
|
|
env,
|
|
inplace,
|
|
first_list_len,
|
|
load_list_ptr(builder, first_list_wrapper, ptr_type),
|
|
elem_layout,
|
|
);
|
|
|
|
BasicValueEnum::StructValue(new_wrapper)
|
|
};
|
|
|
|
// second_list_len > 0
|
|
// We do this check to avoid allocating memory. If the second input
|
|
// list is empty, then we can just return the first list cloned
|
|
let second_list_length_comparison = list_is_not_empty(env, second_list_len);
|
|
|
|
let if_second_list_is_not_empty = || {
|
|
let combined_list_len =
|
|
builder.build_int_add(first_list_len, second_list_len, "add_list_lengths");
|
|
|
|
let combined_list_ptr =
|
|
allocate_list(env, inplace, elem_layout, combined_list_len);
|
|
|
|
let first_list_ptr = load_list_ptr(builder, first_list_wrapper, ptr_type);
|
|
|
|
// FIRST LOOP
|
|
// TODO when the element type supports it, replace FIRST_LOOP with a memcpy!
|
|
let first_loop = |first_index, first_list_elem| {
|
|
// The pointer to the element in the combined list
|
|
let combined_list_elem_ptr = unsafe {
|
|
builder.build_in_bounds_gep(
|
|
combined_list_ptr,
|
|
&[first_index],
|
|
"load_index_combined_list",
|
|
)
|
|
};
|
|
|
|
// Mutate the new array in-place to change the element.
|
|
builder.build_store(combined_list_elem_ptr, first_list_elem);
|
|
};
|
|
|
|
let index_name = "#index";
|
|
|
|
let index_alloca = incrementing_elem_loop(
|
|
builder,
|
|
ctx,
|
|
parent,
|
|
first_list_ptr,
|
|
first_list_len,
|
|
index_name,
|
|
first_loop,
|
|
);
|
|
|
|
// Reset the index variable to 0
|
|
builder.build_store(index_alloca, ctx.i64_type().const_int(0, false));
|
|
|
|
let second_list_ptr = load_list_ptr(builder, second_list_wrapper, ptr_type);
|
|
|
|
// SECOND LOOP
|
|
// TODO when the element type supports it, replace SECOND_LOOP with a memcpy!
|
|
let second_loop = |second_index, second_list_elem| {
|
|
// The pointer to the element in the combined list.
|
|
// Note that the pointer does not start at the index
|
|
// 0, it starts at the index of first_list_len. In that
|
|
// sense it is "offset".
|
|
let offset_combined_list_elem_ptr = unsafe {
|
|
builder.build_in_bounds_gep(
|
|
combined_list_ptr,
|
|
&[first_list_len],
|
|
"elem",
|
|
)
|
|
};
|
|
|
|
// The pointer to the element from the second list
|
|
// in the combined list
|
|
let combined_list_elem_ptr = unsafe {
|
|
builder.build_in_bounds_gep(
|
|
offset_combined_list_elem_ptr,
|
|
&[second_index],
|
|
"load_index_combined_list",
|
|
)
|
|
};
|
|
|
|
// Mutate the new array in-place to change the element.
|
|
builder.build_store(combined_list_elem_ptr, second_list_elem);
|
|
};
|
|
|
|
incrementing_elem_loop(
|
|
builder,
|
|
ctx,
|
|
parent,
|
|
second_list_ptr,
|
|
second_list_len,
|
|
index_name,
|
|
second_loop,
|
|
);
|
|
|
|
store_list(env, combined_list_ptr, combined_list_len)
|
|
};
|
|
|
|
build_basic_phi2(
|
|
env,
|
|
parent,
|
|
second_list_length_comparison,
|
|
if_second_list_is_not_empty,
|
|
if_second_list_is_empty,
|
|
BasicTypeEnum::StructType(collection(ctx, env.ptr_bytes)),
|
|
)
|
|
};
|
|
|
|
build_basic_phi2(
|
|
env,
|
|
parent,
|
|
first_list_length_comparison,
|
|
if_first_list_is_not_empty,
|
|
if_first_list_is_empty,
|
|
BasicTypeEnum::StructType(collection(ctx, env.ptr_bytes)),
|
|
)
|
|
}
|
|
_ => {
|
|
unreachable!(
|
|
"Invalid List layout for first list in List.concat : {:?}",
|
|
list_layout
|
|
);
|
|
}
|
|
}
|
|
}
|
|
|
|
pub fn decrementing_elem_loop<'ctx, LoopFn>(
|
|
builder: &Builder<'ctx>,
|
|
ctx: &'ctx Context,
|
|
parent: FunctionValue<'ctx>,
|
|
ptr: PointerValue<'ctx>,
|
|
len: IntValue<'ctx>,
|
|
index_name: &str,
|
|
mut loop_fn: LoopFn,
|
|
) -> PointerValue<'ctx>
|
|
where
|
|
LoopFn: FnMut(IntValue<'ctx>, BasicValueEnum<'ctx>),
|
|
{
|
|
decrementing_index_loop(builder, ctx, parent, len, index_name, |index| {
|
|
// The pointer to the element in the list
|
|
let elem_ptr = unsafe { builder.build_in_bounds_gep(ptr, &[index], "load_index") };
|
|
|
|
let elem = builder.build_load(elem_ptr, "get_elem");
|
|
|
|
loop_fn(index, elem);
|
|
})
|
|
}
|
|
|
|
// a for-loop from the back to the front
|
|
fn decrementing_index_loop<'ctx, LoopFn>(
|
|
builder: &Builder<'ctx>,
|
|
ctx: &'ctx Context,
|
|
parent: FunctionValue<'ctx>,
|
|
end: IntValue<'ctx>,
|
|
index_name: &str,
|
|
mut loop_fn: LoopFn,
|
|
) -> PointerValue<'ctx>
|
|
where
|
|
LoopFn: FnMut(IntValue<'ctx>),
|
|
{
|
|
// constant 1i64
|
|
let one = ctx.i64_type().const_int(1, false);
|
|
|
|
// allocate a stack slot for the current index
|
|
let index_alloca = builder.build_alloca(ctx.i64_type(), index_name);
|
|
|
|
// we assume `end` is the length of the list
|
|
// the final index is therefore `end - 1`
|
|
let end_index = builder.build_int_sub(end, one, "end_index");
|
|
builder.build_store(index_alloca, end_index);
|
|
|
|
let loop_bb = ctx.append_basic_block(parent, "loop");
|
|
builder.build_unconditional_branch(loop_bb);
|
|
builder.position_at_end(loop_bb);
|
|
|
|
let current_index = builder
|
|
.build_load(index_alloca, index_name)
|
|
.into_int_value();
|
|
|
|
let next_index = builder.build_int_sub(current_index, one, "nextindex");
|
|
|
|
builder.build_store(index_alloca, next_index);
|
|
|
|
// The body of the loop
|
|
loop_fn(current_index);
|
|
|
|
// #index >= 0
|
|
let condition = builder.build_int_compare(
|
|
IntPredicate::SGE,
|
|
next_index,
|
|
ctx.i64_type().const_zero(),
|
|
"bounds_check",
|
|
);
|
|
|
|
let after_loop_bb = ctx.append_basic_block(parent, "after_outer_loop_1");
|
|
|
|
builder.build_conditional_branch(condition, loop_bb, after_loop_bb);
|
|
builder.position_at_end(after_loop_bb);
|
|
|
|
index_alloca
|
|
}
|
|
|
|
pub fn incrementing_elem_loop<'ctx, LoopFn>(
|
|
builder: &Builder<'ctx>,
|
|
ctx: &'ctx Context,
|
|
parent: FunctionValue<'ctx>,
|
|
ptr: PointerValue<'ctx>,
|
|
len: IntValue<'ctx>,
|
|
index_name: &str,
|
|
mut loop_fn: LoopFn,
|
|
) -> PointerValue<'ctx>
|
|
where
|
|
LoopFn: FnMut(IntValue<'ctx>, BasicValueEnum<'ctx>),
|
|
{
|
|
incrementing_index_loop(builder, ctx, parent, len, index_name, |index| {
|
|
// The pointer to the element in the list
|
|
let elem_ptr = unsafe { builder.build_in_bounds_gep(ptr, &[index], "load_index") };
|
|
|
|
let elem = builder.build_load(elem_ptr, "get_elem");
|
|
|
|
loop_fn(index, elem);
|
|
})
|
|
}
|
|
|
|
// This helper simulates a basic for loop, where
|
|
// and index increments up from 0 to some end value
|
|
pub fn incrementing_index_loop<'ctx, LoopFn>(
|
|
builder: &Builder<'ctx>,
|
|
ctx: &'ctx Context,
|
|
parent: FunctionValue<'ctx>,
|
|
end: IntValue<'ctx>,
|
|
index_name: &str,
|
|
mut loop_fn: LoopFn,
|
|
) -> PointerValue<'ctx>
|
|
where
|
|
LoopFn: FnMut(IntValue<'ctx>),
|
|
{
|
|
// constant 1i64
|
|
let one = ctx.i64_type().const_int(1, false);
|
|
|
|
// allocate a stack slot for the current index
|
|
let index_alloca = builder.build_alloca(ctx.i64_type(), index_name);
|
|
builder.build_store(index_alloca, ctx.i64_type().const_zero());
|
|
|
|
let loop_bb = ctx.append_basic_block(parent, "loop");
|
|
builder.build_unconditional_branch(loop_bb);
|
|
builder.position_at_end(loop_bb);
|
|
|
|
let curr_index = builder
|
|
.build_load(index_alloca, index_name)
|
|
.into_int_value();
|
|
let next_index = builder.build_int_add(curr_index, one, "nextindex");
|
|
|
|
builder.build_store(index_alloca, next_index);
|
|
|
|
// The body of the loop
|
|
loop_fn(curr_index);
|
|
|
|
// #index < end
|
|
let loop_end_cond = bounds_check_comparison(builder, next_index, end);
|
|
|
|
let after_loop_bb = ctx.append_basic_block(parent, "after_outer_loop_2");
|
|
|
|
builder.build_conditional_branch(loop_end_cond, loop_bb, after_loop_bb);
|
|
builder.position_at_end(after_loop_bb);
|
|
|
|
index_alloca
|
|
}
|
|
|
|
pub fn build_basic_phi2<'a, 'ctx, 'env, PassFn, FailFn>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
parent: FunctionValue<'ctx>,
|
|
comparison: IntValue<'ctx>,
|
|
mut build_pass: PassFn,
|
|
mut build_fail: FailFn,
|
|
ret_type: BasicTypeEnum<'ctx>,
|
|
) -> BasicValueEnum<'ctx>
|
|
where
|
|
PassFn: FnMut() -> BasicValueEnum<'ctx>,
|
|
FailFn: FnMut() -> BasicValueEnum<'ctx>,
|
|
{
|
|
let builder = env.builder;
|
|
let context = env.context;
|
|
|
|
// build blocks
|
|
let then_block = context.append_basic_block(parent, "then");
|
|
let else_block = context.append_basic_block(parent, "else");
|
|
let cont_block = context.append_basic_block(parent, "branchcont");
|
|
|
|
builder.build_conditional_branch(comparison, then_block, else_block);
|
|
|
|
// build then block
|
|
builder.position_at_end(then_block);
|
|
let then_val = build_pass();
|
|
builder.build_unconditional_branch(cont_block);
|
|
|
|
let then_block = builder.get_insert_block().unwrap();
|
|
|
|
// build else block
|
|
builder.position_at_end(else_block);
|
|
let else_val = build_fail();
|
|
builder.build_unconditional_branch(cont_block);
|
|
|
|
let else_block = builder.get_insert_block().unwrap();
|
|
|
|
// emit merge block
|
|
builder.position_at_end(cont_block);
|
|
|
|
let phi = builder.build_phi(ret_type, "branch");
|
|
|
|
phi.add_incoming(&[(&then_val, then_block), (&else_val, else_block)]);
|
|
|
|
phi.as_basic_value()
|
|
}
|
|
|
|
pub fn empty_polymorphic_list<'a, 'ctx, 'env>(env: &Env<'a, 'ctx, 'env>) -> BasicValueEnum<'ctx> {
|
|
let ctx = env.context;
|
|
|
|
let struct_type = collection(ctx, env.ptr_bytes);
|
|
|
|
// The pointer should be null (aka zero) and the length should be zero,
|
|
// so the whole struct should be a const_zero
|
|
BasicValueEnum::StructValue(struct_type.const_zero())
|
|
}
|
|
|
|
// TODO investigate: does this cause problems when the layout is known? this value is now not refcounted!
|
|
pub fn empty_list<'a, 'ctx, 'env>(env: &Env<'a, 'ctx, 'env>) -> BasicValueEnum<'ctx> {
|
|
let ctx = env.context;
|
|
|
|
let struct_type = collection(ctx, env.ptr_bytes);
|
|
|
|
// The pointer should be null (aka zero) and the length should be zero,
|
|
// so the whole struct should be a const_zero
|
|
BasicValueEnum::StructValue(struct_type.const_zero())
|
|
}
|
|
|
|
pub fn list_is_not_empty<'ctx>(env: &Env<'_, 'ctx, '_>, len: IntValue<'ctx>) -> IntValue<'ctx> {
|
|
env.builder.build_int_compare(
|
|
IntPredicate::UGT,
|
|
len,
|
|
env.ptr_int().const_zero(),
|
|
"list_len_is_nonzero",
|
|
)
|
|
}
|
|
|
|
pub fn load_list<'ctx>(
|
|
builder: &Builder<'ctx>,
|
|
wrapper_struct: StructValue<'ctx>,
|
|
ptr_type: PointerType<'ctx>,
|
|
) -> (IntValue<'ctx>, PointerValue<'ctx>) {
|
|
let ptr = load_list_ptr(builder, wrapper_struct, ptr_type);
|
|
|
|
let length = builder
|
|
.build_extract_value(wrapper_struct, Builtin::WRAPPER_LEN, "list_len")
|
|
.unwrap()
|
|
.into_int_value();
|
|
|
|
(length, ptr)
|
|
}
|
|
|
|
pub fn load_list_ptr<'ctx>(
|
|
builder: &Builder<'ctx>,
|
|
wrapper_struct: StructValue<'ctx>,
|
|
ptr_type: PointerType<'ctx>,
|
|
) -> PointerValue<'ctx> {
|
|
// a `*mut u8` pointer
|
|
let generic_ptr = builder
|
|
.build_extract_value(wrapper_struct, Builtin::WRAPPER_PTR, "read_list_ptr")
|
|
.unwrap()
|
|
.into_pointer_value();
|
|
|
|
// cast to the expected pointer type
|
|
cast_basic_basic(builder, generic_ptr.into(), ptr_type.into()).into_pointer_value()
|
|
}
|
|
|
|
pub fn clone_nonempty_list<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
inplace: InPlace,
|
|
list_len: IntValue<'ctx>,
|
|
elems_ptr: PointerValue<'ctx>,
|
|
elem_layout: &Layout<'_>,
|
|
) -> (StructValue<'ctx>, PointerValue<'ctx>) {
|
|
let builder = env.builder;
|
|
let ctx = env.context;
|
|
let ptr_bytes = env.ptr_bytes;
|
|
|
|
// Calculate the number of bytes we'll need to allocate.
|
|
let elem_bytes = env
|
|
.ptr_int()
|
|
.const_int(elem_layout.stack_size(env.ptr_bytes) as u64, false);
|
|
let size = env
|
|
.builder
|
|
.build_int_mul(elem_bytes, list_len, "clone_mul_len_by_elem_bytes");
|
|
|
|
// Allocate space for the new array that we'll copy into.
|
|
let clone_ptr = allocate_list(env, inplace, elem_layout, list_len);
|
|
|
|
// TODO check if malloc returned null; if so, runtime error for OOM!
|
|
|
|
// Either memcpy or deep clone the array elements
|
|
if elem_layout.safe_to_memcpy() {
|
|
// Copy the bytes from the original array into the new
|
|
// one we just malloc'd.
|
|
//
|
|
// TODO how do we decide when to do the small memcpy vs the normal one?
|
|
builder
|
|
.build_memcpy(clone_ptr, ptr_bytes, elems_ptr, ptr_bytes, size)
|
|
.unwrap();
|
|
} else {
|
|
panic!("TODO Cranelift currently only knows how to clone list elements that are Copy.");
|
|
}
|
|
|
|
// Create a fresh wrapper struct for the newly populated array
|
|
let u8_ptr_type = ctx.i8_type().ptr_type(AddressSpace::Generic);
|
|
let generic_ptr = cast_basic_basic(builder, clone_ptr.into(), u8_ptr_type.into());
|
|
|
|
let struct_type = collection(ctx, env.ptr_bytes);
|
|
let mut struct_val;
|
|
|
|
// Store the pointer
|
|
struct_val = builder
|
|
.build_insert_value(
|
|
struct_type.get_undef(),
|
|
generic_ptr,
|
|
Builtin::WRAPPER_PTR,
|
|
"insert_ptr_clone_nonempty_list",
|
|
)
|
|
.unwrap();
|
|
|
|
// Store the length
|
|
struct_val = builder
|
|
.build_insert_value(struct_val, list_len, Builtin::WRAPPER_LEN, "insert_len")
|
|
.unwrap();
|
|
|
|
let answer = builder
|
|
.build_bitcast(
|
|
struct_val.into_struct_value(),
|
|
collection(ctx, ptr_bytes),
|
|
"cast_collection",
|
|
)
|
|
.into_struct_value();
|
|
|
|
(answer, clone_ptr)
|
|
}
|
|
|
|
pub fn clone_list<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
output_inplace: InPlace,
|
|
elem_layout: &Layout<'a>,
|
|
length: IntValue<'ctx>,
|
|
old_ptr: PointerValue<'ctx>,
|
|
) -> PointerValue<'ctx> {
|
|
let builder = env.builder;
|
|
let ptr_bytes = env.ptr_bytes;
|
|
|
|
// allocate new empty list (with refcount 1)
|
|
let new_ptr = allocate_list(env, output_inplace, elem_layout, length);
|
|
|
|
let stack_size = elem_layout.stack_size(env.ptr_bytes);
|
|
let bytes = builder.build_int_mul(
|
|
length,
|
|
env.context.i64_type().const_int(stack_size as u64, false),
|
|
"size_in_bytes",
|
|
);
|
|
|
|
// copy old elements in
|
|
builder
|
|
.build_memcpy(new_ptr, ptr_bytes, old_ptr, ptr_bytes, bytes)
|
|
.unwrap();
|
|
|
|
new_ptr
|
|
}
|
|
|
|
pub fn allocate_list<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
inplace: InPlace,
|
|
elem_layout: &Layout<'a>,
|
|
number_of_elements: IntValue<'ctx>,
|
|
) -> PointerValue<'ctx> {
|
|
let builder = env.builder;
|
|
let ctx = env.context;
|
|
|
|
let len_type = env.ptr_int();
|
|
let elem_bytes = elem_layout.stack_size(env.ptr_bytes) as u64;
|
|
let bytes_per_element = len_type.const_int(elem_bytes, false);
|
|
let number_of_data_bytes =
|
|
builder.build_int_mul(bytes_per_element, number_of_elements, "data_length");
|
|
|
|
let rc1 = match inplace {
|
|
InPlace::InPlace => number_of_elements,
|
|
InPlace::Clone => {
|
|
// the refcount of a new list is initially 1
|
|
// we assume that the list is indeed used (dead variables are eliminated)
|
|
crate::llvm::refcounting::refcount_1(ctx, env.ptr_bytes)
|
|
}
|
|
};
|
|
|
|
allocate_with_refcount_help(env, elem_layout, number_of_data_bytes, rc1)
|
|
}
|
|
|
|
pub fn store_list<'a, 'ctx, 'env>(
|
|
env: &Env<'a, 'ctx, 'env>,
|
|
pointer_to_first_element: PointerValue<'ctx>,
|
|
len: IntValue<'ctx>,
|
|
) -> BasicValueEnum<'ctx> {
|
|
let ctx = env.context;
|
|
let builder = env.builder;
|
|
|
|
let ptr_bytes = env.ptr_bytes;
|
|
let struct_type = collection(ctx, ptr_bytes);
|
|
|
|
let u8_ptr_type = ctx.i8_type().ptr_type(AddressSpace::Generic);
|
|
let generic_ptr =
|
|
cast_basic_basic(builder, pointer_to_first_element.into(), u8_ptr_type.into());
|
|
|
|
let mut struct_val;
|
|
|
|
// Store the pointer
|
|
struct_val = builder
|
|
.build_insert_value(
|
|
struct_type.get_undef(),
|
|
generic_ptr,
|
|
Builtin::WRAPPER_PTR,
|
|
"insert_ptr_store_list",
|
|
)
|
|
.unwrap();
|
|
|
|
// Store the length
|
|
struct_val = builder
|
|
.build_insert_value(struct_val, len, Builtin::WRAPPER_LEN, "insert_len")
|
|
.unwrap();
|
|
|
|
builder.build_bitcast(
|
|
struct_val.into_struct_value(),
|
|
collection(ctx, ptr_bytes),
|
|
"cast_collection",
|
|
)
|
|
}
|