solar-codegen 0.2.0

Solidity MIR and EVM code generation
Documentation
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//! ABI encoding of external function return values.
//!
//! Driven by the sema [`Ty`] of each return (obtained via `gcx.type_of_hir_ty`),
//! this lays out the Solidity ABI tuple encoding (head slots + dynamic tail) for
//! a function's return values into a memory buffer and terminates the function
//! with [`crate::mir::Terminator::ReturnData`]. Internal-frame functions do NOT
//! use this — they return raw words/pointers through the internal frame.

use super::Lowerer;
use crate::mir::{FunctionBuilder, Value, ValueId};
use alloy_primitives::U256;
use solar_ast::ElementaryType;
use solar_sema::ty::{Ty, TyKind};

const STATIC_RETURN_BUFFER: u64 = 0x80;

#[derive(Clone, Copy)]
struct AbiScratch {
    base: Option<ValueId>,
    depth: u64,
}

#[derive(Clone, Copy)]
struct AbiValueDest {
    head_addr: ValueId,
    tuple_base: ValueId,
    tail: ValueId,
}

impl<'gcx> Lowerer<'gcx> {
    /// Whether `ty` is encoded dynamically (offset slot in the head + data in the
    /// tail): `bytes`/`string`, dynamic arrays, and any aggregate containing one.
    pub(super) fn abi_is_dynamic(&self, ty: Ty<'gcx>) -> bool {
        let ty = ty.peel_refs();
        match ty.kind {
            TyKind::Elementary(ElementaryType::Bytes | ElementaryType::String)
            | TyKind::DynArray(_)
            | TyKind::Slice(_) => true,
            TyKind::Struct(id) => {
                ty.is_recursive(self.gcx)
                    || self.gcx.struct_field_types(id).iter().any(|&f| self.abi_is_dynamic(f))
            }
            TyKind::Array(elem, _) => self.abi_is_dynamic(elem),
            TyKind::Tuple(fields) => fields.iter().any(|&f| self.abi_is_dynamic(f)),
            TyKind::Udvt(inner, _) => self.abi_is_dynamic(inner),
            _ => false,
        }
    }

    /// Static ABI head size, in bytes, of one top-level item: 32 for any dynamic
    /// type (an offset slot), the recursive sum for a static struct, `N *
    /// head(T)` for a static `T[N]`, and 32 for every value type.
    pub(super) fn abi_head_size(&self, ty: Ty<'gcx>) -> u64 {
        let ty = ty.peel_refs();
        if self.abi_is_dynamic(ty) {
            return 32;
        }
        match ty.kind {
            TyKind::Array(elem, n) => n.to::<u64>() * self.abi_head_size(elem),
            TyKind::Struct(id) => {
                self.gcx.struct_field_types(id).iter().map(|&f| self.abi_head_size(f)).sum()
            }
            _ => 32,
        }
    }

    /// `base + off` (or `base` when `off == 0`).
    pub(super) fn offset_ptr(
        &self,
        builder: &mut FunctionBuilder<'_>,
        base: ValueId,
        off: u64,
    ) -> ValueId {
        if off == 0 {
            base
        } else if matches!(
            builder.func().value(base),
            Value::Immediate(imm) if imm.as_u256().is_some_and(|v| v.is_zero())
        ) {
            builder.imm_u64(off)
        } else {
            let o = builder.imm_u64(off);
            builder.add(base, o)
        }
    }

    /// Encodes a tuple of `(value, type)` items at `dest` using ABI head/tail
    /// layout. Static items are written inline in the head; dynamic items write a
    /// relative tail offset in the head and append their body to the shared tail.
    fn abi_encode_tuple(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        items: &[(ValueId, Ty<'gcx>)],
        dest: ValueId,
        scratch: AbiScratch,
    ) -> ValueId {
        let head_size: u64 = items.iter().map(|&(_, t)| self.abi_head_size(t)).sum();
        let has_dynamic = items.iter().any(|&(_, ty)| self.abi_is_dynamic(ty));
        if !has_dynamic {
            let mut head_off = 0u64;
            for &(val, ty) in items {
                let head_addr = self.offset_ptr(builder, dest, head_off);
                self.abi_encode_static(builder, ty, val, head_addr);
                head_off += self.abi_head_size(ty);
            }
            return builder.imm_u64(head_size);
        }

        let head_size_val = builder.imm_u64(head_size);
        let mut tail = builder.add(dest, head_size_val);
        let mut head_off = 0u64;
        for &(val, ty) in items {
            let head_addr = self.offset_ptr(builder, dest, head_off);
            tail = self.abi_encode_value(
                builder,
                ty,
                val,
                AbiValueDest { head_addr, tuple_base: dest, tail },
                scratch,
            );
            head_off += self.abi_head_size(ty);
        }
        builder.sub(tail, dest)
    }

    /// Emits ABI-encoded custom error data and terminates with `REVERT`.
    pub(super) fn emit_abi_error_revert(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        selector: [u8; 4],
        items: &[(ValueId, Ty<'gcx>)],
    ) {
        let head_size: u64 = items.iter().map(|&(_, ty)| self.abi_head_size(ty)).sum();
        let scratch_words = self.abi_scratch_words(items);
        let scratch_base =
            (scratch_words > 0).then(|| self.allocate_memory(builder, scratch_words * 32));

        let buf = self.allocate_memory(builder, 4 + head_size);
        let selector = U256::from(u32::from_be_bytes(selector)) << 224;
        let selector = builder.imm_u256(selector);
        builder.mstore(buf, selector);

        let args_base = self.offset_ptr(builder, buf, 4);
        let args_size = if items.is_empty() {
            builder.imm_u64(0)
        } else {
            self.abi_encode_tuple(
                builder,
                items,
                args_base,
                AbiScratch { base: scratch_base, depth: 0 },
            )
        };
        let selector_size = builder.imm_u64(4);
        let size = builder.add(args_size, selector_size);
        builder.revert(buf, size);
    }

    /// Encodes one ABI tuple element. Dynamic values write their tail offset into
    /// `head_addr` and append the dynamic body at `tail`; static values are
    /// encoded directly into the head.
    fn abi_encode_value(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        ty: Ty<'gcx>,
        value: ValueId,
        dest: AbiValueDest,
        scratch: AbiScratch,
    ) -> ValueId {
        if self.abi_is_dynamic(ty) {
            let rel_off = builder.sub(dest.tail, dest.tuple_base);
            builder.mstore(dest.head_addr, rel_off);
            self.abi_encode_dynamic_body(builder, ty, value, dest.tail, scratch)
        } else {
            self.abi_encode_static(builder, ty, value, dest.head_addr);
            dest.tail
        }
    }

    /// Encodes a statically-encoded value into the head region at `head_addr`.
    /// Value types write one word; a static struct/array recurses field/element
    /// wise (each field/element word read from the value's memory pointer).
    fn abi_encode_static(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        ty: Ty<'gcx>,
        value: ValueId,
        head_addr: ValueId,
    ) {
        let ty = ty.peel_refs();
        match ty.kind {
            TyKind::Struct(id) => {
                let fields = self.gcx.struct_field_types(id);
                let mut field_head = head_addr;
                for (i, &fty) in fields.iter().enumerate() {
                    let slot = self.offset_ptr(builder, value, (i as u64) * 32);
                    let fval = builder.mload(slot);
                    self.abi_encode_static(builder, fty, fval, field_head);
                    let fhs = self.abi_head_size(fty);
                    field_head = self.offset_ptr(builder, field_head, fhs);
                }
            }
            TyKind::Array(elem, n) => {
                let mut elem_head = head_addr;
                let ehs = self.abi_head_size(elem);
                for i in 0..n.to::<u64>() {
                    let slot = self.offset_ptr(builder, value, i * 32);
                    let ev = builder.mload(slot);
                    self.abi_encode_static(builder, elem, ev, elem_head);
                    elem_head = self.offset_ptr(builder, elem_head, ehs);
                }
            }
            _ => {
                builder.mstore(head_addr, value);
            }
        }
    }

    /// Encodes a dynamic value body at `dst` and returns the advanced tail
    /// cursor.
    fn abi_encode_dynamic_body(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        ty: Ty<'gcx>,
        value: ValueId,
        dst: ValueId,
        scratch: AbiScratch,
    ) -> ValueId {
        match ty.peel_refs().kind {
            TyKind::Elementary(ElementaryType::Bytes | ElementaryType::String) => {
                self.abi_encode_bytes_or_string_body(builder, value, dst)
            }
            TyKind::DynArray(elem) if self.abi_is_word_element(elem) => {
                let len = builder.mload(value);
                builder.mstore(dst, len);

                let word = builder.imm_u64(32);
                let bytes = builder.mul(len, word);
                let data_dst = builder.add(dst, word);
                let data_src = builder.add(value, word);
                let new_tail = builder.add(data_dst, bytes);
                self.mcopy(builder, data_dst, data_src, bytes, None);
                new_tail
            }
            TyKind::DynArray(elem) => self.abi_encode_dynamic_array_body(
                builder,
                elem,
                value,
                dst,
                scratch.base.expect("dynamic ABI array encoding requires scratch memory"),
                scratch.depth,
            ),
            TyKind::Array(elem, n) => {
                let mut items = Vec::new();
                for i in 0..n.to::<u64>() {
                    let slot = self.offset_ptr(builder, value, i * 32);
                    items.push((builder.mload(slot), elem));
                }
                let size = self.abi_encode_tuple(builder, &items, dst, scratch);
                builder.add(dst, size)
            }
            TyKind::Struct(id) => {
                let fields: Vec<_> = self.gcx.struct_field_types(id).to_vec();
                let mut items = Vec::with_capacity(fields.len());
                for (i, &fty) in fields.iter().enumerate() {
                    let slot = self.offset_ptr(builder, value, (i as u64) * 32);
                    items.push((builder.mload(slot), fty));
                }
                let size = self.abi_encode_tuple(builder, &items, dst, scratch);
                builder.add(dst, size)
            }
            TyKind::Tuple(fields) => {
                let fields: Vec<_> = fields.to_vec();
                let mut items = Vec::with_capacity(fields.len());
                for (i, &fty) in fields.iter().enumerate() {
                    let slot = self.offset_ptr(builder, value, (i as u64) * 32);
                    items.push((builder.mload(slot), fty));
                }
                let size = self.abi_encode_tuple(builder, &items, dst, scratch);
                builder.add(dst, size)
            }
            _ => unreachable!("unsupported dynamic ABI return type: {:?}", ty.peel_refs()),
        }
    }

    fn abi_encode_dynamic_array_body(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        elem: Ty<'gcx>,
        value: ValueId,
        dst: ValueId,
        scratch_base: ValueId,
        scratch_depth: u64,
    ) -> ValueId {
        let len = builder.mload(value);
        builder.mstore(dst, len);

        let word = builder.imm_u64(32);
        let elem_area = builder.add(dst, word);
        let elem_head_size = self.abi_head_size(elem);
        let elem_head_size_val = builder.imm_u64(elem_head_size);
        let head_bytes = builder.mul(len, elem_head_size_val);
        let initial_tail = builder.add(elem_area, head_bytes);
        let source_cursor = builder.add(value, word);

        let remaining_slot = self.abi_scratch_slot(builder, scratch_base, scratch_depth, 0);
        let tail_slot = self.abi_scratch_slot(builder, scratch_base, scratch_depth, 1);
        let head_slot = self.abi_scratch_slot(builder, scratch_base, scratch_depth, 2);
        let source_slot = self.abi_scratch_slot(builder, scratch_base, scratch_depth, 3);
        let tuple_base_slot = self.abi_scratch_slot(builder, scratch_base, scratch_depth, 4);
        builder.mstore(remaining_slot, len);
        builder.mstore(tail_slot, initial_tail);
        builder.mstore(head_slot, elem_area);
        builder.mstore(source_slot, source_cursor);
        builder.mstore(tuple_base_slot, elem_area);

        let cond_block = builder.create_block();
        let body_block = builder.create_block();
        let done_block = builder.create_block();
        builder.jump(cond_block);

        builder.switch_to_block(cond_block);
        let remaining = builder.mload(remaining_slot);
        let zero = builder.imm_u64(0);
        let has_next = builder.gt(remaining, zero);
        builder.branch(has_next, body_block, done_block);

        builder.switch_to_block(body_block);
        let source = builder.mload(source_slot);
        let elem_value = builder.mload(source);
        let elem_head = builder.mload(head_slot);
        let current_tail = builder.mload(tail_slot);
        let tuple_base = builder.mload(tuple_base_slot);
        let new_tail = self.abi_encode_value(
            builder,
            elem,
            elem_value,
            AbiValueDest { head_addr: elem_head, tuple_base, tail: current_tail },
            AbiScratch { base: Some(scratch_base), depth: scratch_depth + 1 },
        );
        builder.mstore(tail_slot, new_tail);

        let remaining = builder.mload(remaining_slot);
        let one = builder.imm_u64(1);
        let next_remaining = builder.sub(remaining, one);
        builder.mstore(remaining_slot, next_remaining);
        let source = builder.mload(source_slot);
        let next_source = builder.add(source, word);
        builder.mstore(source_slot, next_source);
        let elem_head = builder.mload(head_slot);
        let next_head = builder.add(elem_head, elem_head_size_val);
        builder.mstore(head_slot, next_head);
        builder.jump(cond_block);

        builder.switch_to_block(done_block);
        builder.mload(tail_slot)
    }

    fn abi_encode_bytes_or_string_body(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        value: ValueId,
        dst: ValueId,
    ) -> ValueId {
        let len = builder.mload(value);
        builder.mstore(dst, len);

        let word = builder.imm_u64(32);
        let thirty_one = builder.imm_u64(31);
        let padded_mask = builder.not(thirty_one);
        let len_plus_rounding = builder.add(len, thirty_one);
        let padded = builder.and(len_plus_rounding, padded_mask);
        let data_dst = builder.add(dst, word);

        let zero_block = builder.create_block();
        let copy_block = builder.create_block();
        let is_empty = builder.iszero(padded);
        builder.branch(is_empty, copy_block, zero_block);

        builder.switch_to_block(zero_block);
        let last_word_off = builder.sub(padded, word);
        let last_word = builder.add(data_dst, last_word_off);
        let zero = builder.imm_u64(0);
        builder.mstore(last_word, zero);
        builder.jump(copy_block);

        builder.switch_to_block(copy_block);
        let data_src = builder.add(value, word);
        let new_tail = builder.add(data_dst, padded);
        self.mcopy(builder, data_dst, data_src, len, None);
        new_tail
    }

    /// Allocates a return buffer, ABI-encodes `items` into it, and terminates the
    /// function with `ReturnData`.
    pub(super) fn emit_abi_return(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        items: &[(ValueId, Ty<'gcx>)],
    ) {
        if items.is_empty() {
            builder.stop();
            return;
        }
        let head_size: u64 = items.iter().map(|&(_, t)| self.abi_head_size(t)).sum();
        let has_dynamic = items.iter().any(|&(_, ty)| self.abi_is_dynamic(ty));
        if !has_dynamic {
            let buf = builder.imm_u64(STATIC_RETURN_BUFFER);
            let size =
                self.abi_encode_tuple(builder, items, buf, AbiScratch { base: None, depth: 0 });
            builder.ret_data(buf, size);
            return;
        }

        let scratch_words = self.abi_scratch_words(items);
        let scratch_base =
            (scratch_words > 0).then(|| self.allocate_memory(builder, scratch_words * 32));
        let buf = self.allocate_memory(builder, head_size);
        let size =
            self.abi_encode_tuple(builder, items, buf, AbiScratch { base: scratch_base, depth: 0 });
        builder.ret_data(buf, size);
    }

    fn abi_scratch_words(&self, items: &[(ValueId, Ty<'gcx>)]) -> u64 {
        items.iter().map(|&(_, ty)| self.abi_loop_depth(ty)).max().unwrap_or(0) * 5
    }

    fn abi_loop_depth(&self, ty: Ty<'gcx>) -> u64 {
        match ty.peel_refs().kind {
            TyKind::DynArray(elem) if self.abi_is_word_element(elem) => 0,
            TyKind::DynArray(elem) => 1 + self.abi_loop_depth(elem),
            TyKind::Array(elem, _) => self.abi_loop_depth(elem),
            TyKind::Struct(id) => self
                .gcx
                .struct_field_types(id)
                .iter()
                .map(|&f| self.abi_loop_depth(f))
                .max()
                .unwrap_or(0),
            TyKind::Tuple(fields) => {
                fields.iter().map(|&f| self.abi_loop_depth(f)).max().unwrap_or(0)
            }
            TyKind::Udvt(inner, _) => self.abi_loop_depth(inner),
            _ => 0,
        }
    }

    fn abi_scratch_slot(
        &self,
        builder: &mut FunctionBuilder<'_>,
        scratch_base: ValueId,
        scratch_depth: u64,
        slot: u64,
    ) -> ValueId {
        self.offset_ptr(builder, scratch_base, scratch_depth * 160 + slot * 32)
    }

    pub(super) fn abi_is_word_element(&self, ty: Ty<'gcx>) -> bool {
        match ty.peel_refs().kind {
            TyKind::Elementary(ElementaryType::Bytes | ElementaryType::String) => false,
            TyKind::Elementary(_) | TyKind::Enum(_) | TyKind::Contract(_) => true,
            TyKind::Udvt(inner, _) => self.abi_is_word_element(inner),
            _ => false,
        }
    }

    pub(super) fn allocate_memory_dynamic(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        size: ValueId,
    ) -> ValueId {
        let free_ptr_addr = builder.imm_u64(0x40);
        let ptr = builder.mload(free_ptr_addr);
        let new_free_ptr = builder.add(ptr, size);
        let free_ptr_addr = builder.imm_u64(0x40);
        builder.mstore(free_ptr_addr, new_free_ptr);
        ptr
    }

    /// Resolves each argument's ABI type and lowers it to a `(value, type)`
    /// item for the tuple encoder. Returns `None` when an argument's type
    /// cannot be determined. Arguments are evaluated before any output buffer
    /// is reserved: lowering an argument can allocate memory of its own.
    fn lower_abi_encode_items(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        arg_exprs: &[&solar_sema::hir::Expr<'_>],
    ) -> Option<Vec<(ValueId, Ty<'gcx>)>> {
        let mut tys = Vec::with_capacity(arg_exprs.len());
        for arg in arg_exprs {
            let ty = self.get_expr_type(arg)?;
            // String literals encode as `string memory` values.
            let ty = match ty.peel_refs().kind {
                TyKind::StringLiteral(..) => self.gcx.types.string_ref.memory,
                _ => ty,
            };
            tys.push(ty);
        }
        Some(
            arg_exprs
                .iter()
                .zip(tys)
                .map(|(arg, ty)| (self.lower_return_value_for_ty(builder, arg, ty), ty))
                .collect(),
        )
    }

    /// Lowers `abi.encode(...)` to a fresh `bytes memory` allocation
    /// (`[length][ABI tuple encoding]`) from the free memory pointer and
    /// returns the pointer. Returns `None` when an argument's type cannot be
    /// determined.
    pub(super) fn lower_abi_encode_to_bytes(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        arg_exprs: &[&solar_sema::hir::Expr<'_>],
    ) -> Option<ValueId> {
        let items = self.lower_abi_encode_items(builder, arg_exprs)?;
        let scratch_words = self.abi_scratch_words(&items);
        let scratch_base =
            (scratch_words > 0).then(|| self.allocate_memory(builder, scratch_words * 32));

        let free_ptr_addr = builder.imm_u64(0x40);
        let ptr = builder.mload(free_ptr_addr);
        let word = builder.imm_u64(32);
        let dest = builder.add(ptr, word);
        let size = if items.is_empty() {
            builder.imm_u64(0)
        } else {
            self.abi_encode_tuple(
                builder,
                &items,
                dest,
                AbiScratch { base: scratch_base, depth: 0 },
            )
        };
        builder.mstore(ptr, size);

        // Finalize the allocation: length word + encoded data. The tuple
        // encoder itself never allocates (its scratch is reserved above), so
        // nothing else writes into the buffer region before this bump. The
        // encoded size is always a multiple of 32, keeping the free memory
        // pointer word-aligned.
        let total = builder.add(size, word);
        let new_free_ptr = builder.add(ptr, total);
        let free_ptr_addr = builder.imm_u64(0x40);
        builder.mstore(free_ptr_addr, new_free_ptr);
        Some(ptr)
    }

    /// Lowers `keccak256(abi.encode(...))` without materializing a `bytes`
    /// object: the tuple encoding is staged at the unbumped free memory
    /// pointer and hashed in place, like solc. Returns `None` when an
    /// argument's type cannot be determined.
    pub(super) fn lower_keccak_abi_encode(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        arg_exprs: &[&solar_sema::hir::Expr<'_>],
    ) -> Option<ValueId> {
        let items = self.lower_abi_encode_items(builder, arg_exprs)?;
        // Loop scratch must be a real allocation so it sits below the staging
        // area read by the hash.
        let scratch_words = self.abi_scratch_words(&items);
        let scratch_base =
            (scratch_words > 0).then(|| self.allocate_memory(builder, scratch_words * 32));

        let free_ptr_addr = builder.imm_u64(0x40);
        let data = builder.mload(free_ptr_addr);
        let size = if items.is_empty() {
            builder.imm_u64(0)
        } else {
            self.abi_encode_tuple(
                builder,
                &items,
                data,
                AbiScratch { base: scratch_base, depth: 0 },
            )
        };
        Some(builder.keccak256(data, size))
    }

    /// ABI-encodes already-lowered tuple items into a fresh allocation from
    /// the free memory pointer and returns `(offset, size)`.
    pub(super) fn abi_encode_items_to_memory(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        items: &[(ValueId, Ty<'gcx>)],
    ) -> (ValueId, ValueId) {
        let zero = builder.imm_u64(0);
        if items.is_empty() {
            return (zero, zero);
        }

        let scratch_words = self.abi_scratch_words(items);
        let scratch_base =
            (scratch_words > 0).then(|| self.allocate_memory(builder, scratch_words * 32));

        let free_ptr_addr = builder.imm_u64(0x40);
        let data = builder.mload(free_ptr_addr);
        let size = self.abi_encode_tuple(
            builder,
            items,
            data,
            AbiScratch { base: scratch_base, depth: 0 },
        );

        let thirty_one = builder.imm_u64(31);
        let rounded = builder.add(size, thirty_one);
        let mask = builder.not(thirty_one);
        let aligned = builder.and(rounded, mask);
        let new_free_ptr = builder.add(data, aligned);
        let free_ptr_addr = builder.imm_u64(0x40);
        builder.mstore(free_ptr_addr, new_free_ptr);

        (data, size)
    }

    /// ABI-encodes call arguments (optionally prefixed by a left-aligned
    /// 4-byte selector word) into a fresh allocation from the free memory
    /// pointer. Returns `(offset, size)` of the encoded payload, or `None`
    /// when an argument's type cannot be determined.
    pub(super) fn abi_encode_call_payload(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        selector: Option<ValueId>,
        arg_exprs: &[&solar_sema::hir::Expr<'_>],
    ) -> Option<(ValueId, ValueId)> {
        let items = self.lower_abi_encode_items(builder, arg_exprs)?;
        let scratch_words = self.abi_scratch_words(&items);
        let scratch_base =
            (scratch_words > 0).then(|| self.allocate_memory(builder, scratch_words * 32));

        let sel_size = if selector.is_some() { 4u64 } else { 0 };
        let free_ptr_addr = builder.imm_u64(0x40);
        let buf = builder.mload(free_ptr_addr);
        if let Some(sel) = selector {
            builder.mstore(buf, sel);
        }
        let dest = self.offset_ptr(builder, buf, sel_size);
        let size = self.abi_encode_tuple(
            builder,
            &items,
            dest,
            AbiScratch { base: scratch_base, depth: 0 },
        );
        let sel_size_val = builder.imm_u64(sel_size);
        let total = builder.add(size, sel_size_val);

        // Finalize the allocation, keeping the free memory pointer
        // word-aligned. The tuple encoder itself never allocates (its scratch
        // is reserved above), so nothing else writes into the buffer region
        // before this bump.
        let thirty_one = builder.imm_u64(31);
        let rounded = builder.add(total, thirty_one);
        let mask = builder.not(thirty_one);
        let aligned = builder.and(rounded, mask);
        let new_free_ptr = builder.add(buf, aligned);
        let free_ptr_addr = builder.imm_u64(0x40);
        builder.mstore(free_ptr_addr, new_free_ptr);

        Some((buf, total))
    }

    pub(super) fn lower_return_value_for_ty(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        expr: &solar_sema::hir::Expr<'_>,
        ty: Ty<'gcx>,
    ) -> ValueId {
        if matches!(
            ty.peel_refs().kind,
            TyKind::Elementary(ElementaryType::Bytes | ElementaryType::String)
        ) && let solar_sema::hir::ExprKind::Lit(lit) = &expr.kind
            && let Some(ptr) = self.lower_string_literal_to_memory(builder, lit)
        {
            return ptr;
        }
        self.lower_expr(builder, expr)
    }

    /// Decodes a storage `bytes`/`string` slot into the memory layout the ABI
    /// encoder expects: `[length][data...]`.
    pub(super) fn materialize_storage_bytes(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        slot: ValueId,
    ) -> ValueId {
        let word = builder.sload(slot);
        let one = builder.imm_u64(1);
        let long_bit = builder.and(word, one);
        let is_long = builder.eq(long_bit, one);

        let low_byte_mask = builder.imm_u64(0xff);
        let len_low = builder.and(word, low_byte_mask);
        let shift = builder.imm_u64(1);
        let short_len = builder.shr(shift, len_low);
        let long_len = builder.shr(shift, word);
        let len = builder.select(is_long, long_len, short_len);

        let word_size = builder.imm_u64(32);
        let thirty_one = builder.imm_u64(31);
        let padded_mask = builder.not(thirty_one);
        let len_plus_rounding = builder.add(len, thirty_one);
        let padded = builder.and(len_plus_rounding, padded_mask);
        let is_empty = builder.iszero(padded);
        let data_size = builder.select(is_empty, word_size, padded);
        let total_size = builder.add(word_size, data_size);

        let scratch_base = self.allocate_memory(builder, 96);
        let ptr = self.allocate_memory_dynamic(builder, total_size);
        builder.mstore(ptr, len);
        let data_ptr = builder.add(ptr, word_size);

        let short_block = builder.create_block();
        let long_block = builder.create_block();
        let done_block = builder.create_block();
        builder.branch(is_long, long_block, short_block);

        builder.switch_to_block(short_block);
        let data_mask = builder.imm_u256(U256::MAX - U256::from(0xffu64));
        let data = builder.and(word, data_mask);
        builder.mstore(data_ptr, data);
        builder.jump(done_block);

        builder.switch_to_block(long_block);
        builder.mstore(scratch_base, slot);
        let data_slot = builder.keccak256(scratch_base, word_size);
        let remaining = builder.div(padded, word_size);
        let remaining_slot = self.offset_ptr(builder, scratch_base, 32);
        let storage_slot_slot = self.offset_ptr(builder, scratch_base, 64);
        builder.mstore(scratch_base, data_ptr);
        builder.mstore(remaining_slot, remaining);
        builder.mstore(storage_slot_slot, data_slot);

        let cond_block = builder.create_block();
        let body_block = builder.create_block();
        builder.jump(cond_block);

        builder.switch_to_block(cond_block);
        let remaining = builder.mload(remaining_slot);
        let zero = builder.imm_u64(0);
        let has_remaining = builder.gt(remaining, zero);
        builder.branch(has_remaining, body_block, done_block);

        builder.switch_to_block(body_block);
        let current_storage_slot = builder.mload(storage_slot_slot);
        let data_word = builder.sload(current_storage_slot);
        let current_dst = builder.mload(scratch_base);
        builder.mstore(current_dst, data_word);
        let next_storage_slot = builder.add(current_storage_slot, one);
        builder.mstore(storage_slot_slot, next_storage_slot);
        let word_size = builder.imm_u64(32);
        let next_dst = builder.add(current_dst, word_size);
        builder.mstore(scratch_base, next_dst);
        let remaining = builder.mload(remaining_slot);
        let next_remaining = builder.sub(remaining, one);
        builder.mstore(remaining_slot, next_remaining);
        builder.jump(cond_block);

        builder.switch_to_block(done_block);
        ptr
    }

    /// Encodes a memory `bytes`/`string` value (`[length][data...]` at `ptr`)
    /// into a storage `bytes`/`string` at `slot` using Solidity's short/long
    /// storage forms, then clears any leftover data slots from a previous
    /// longer value.
    pub(super) fn copy_memory_bytes_to_storage(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        slot: ValueId,
        ptr: ValueId,
    ) {
        let len = builder.mload(ptr);
        let word_size = builder.imm_u64(32);
        let data = builder.add(ptr, word_size);

        // Decode the previous value's data-word count so stale slots are cleared.
        let old_word = builder.sload(slot);
        let one = builder.imm_u64(1);
        let old_long_bit = builder.and(old_word, one);
        let old_is_long = builder.eq(old_long_bit, one);
        let low_byte_mask = builder.imm_u64(0xff);
        let old_len_low = builder.and(old_word, low_byte_mask);
        let shift_one = builder.imm_u64(1);
        let old_short_len = builder.shr(shift_one, old_len_low);
        let old_long_len = builder.shr(shift_one, old_word);
        let old_len = builder.select(old_is_long, old_long_len, old_short_len);
        let thirty_one = builder.imm_u64(31);
        let not_31 = builder.not(thirty_one);
        let old_len_round = builder.add(old_len, thirty_one);
        let old_padded = builder.and(old_len_round, not_31);
        let old_words_long = builder.div(old_padded, word_size);
        let zero = builder.imm_u64(0);
        let old_words = builder.select(old_is_long, old_words_long, zero);

        let new_len_round = builder.add(len, thirty_one);
        let new_padded = builder.and(new_len_round, not_31);
        let new_words_long = builder.div(new_padded, word_size);
        let is_long = builder.gt(len, thirty_one);
        let new_words = builder.select(is_long, new_words_long, zero);

        // Loop counter scratch; its first word also stages `slot` for the
        // data-slot keccak.
        let scratch = self.allocate_memory(builder, 32);
        builder.mstore(scratch, slot);
        let data_slot = builder.keccak256(scratch, word_size);

        let short_block = builder.create_block();
        let long_block = builder.create_block();
        let copy_cond = builder.create_block();
        let copy_body = builder.create_block();
        let clear_init = builder.create_block();
        let clear_cond = builder.create_block();
        let clear_body = builder.create_block();
        let done_block = builder.create_block();

        builder.branch(is_long, long_block, short_block);

        // Short form: `data bytes | (len * 2)` packed into the main slot.
        // Mask the loaded word to exactly `len` bytes: memory past the value
        // is not guaranteed to be zero.
        builder.switch_to_block(short_block);
        let word = builder.mload(data);
        let eight = builder.imm_u64(8);
        let len_bits = builder.mul(len, eight);
        let all_ones = builder.imm_u256(U256::MAX);
        let low_mask = builder.shr(len_bits, all_ones);
        let keep_mask = builder.not(low_mask);
        let masked = builder.and(word, keep_mask);
        let len_twice_short = builder.shl(shift_one, len);
        let stored = builder.or(masked, len_twice_short);
        builder.sstore(slot, stored);
        builder.jump(clear_init);

        // Long form: `len * 2 + 1` in the main slot, data words at
        // `keccak256(slot) + i`.
        builder.switch_to_block(long_block);
        let len_twice_long = builder.shl(shift_one, len);
        let main_word = builder.or(len_twice_long, one);
        builder.sstore(slot, main_word);
        builder.mstore(scratch, zero);
        builder.jump(copy_cond);

        builder.switch_to_block(copy_cond);
        let i = builder.mload(scratch);
        let more = builder.lt(i, new_words);
        builder.branch(more, copy_body, clear_init);

        builder.switch_to_block(copy_body);
        let i = builder.mload(scratch);
        let dst = builder.add(data_slot, i);
        let src_off = builder.mul(i, word_size);
        let src = builder.add(data, src_off);
        let data_word = builder.mload(src);
        builder.sstore(dst, data_word);
        let next_i = builder.add(i, one);
        builder.mstore(scratch, next_i);
        builder.jump(copy_cond);

        // Clear data slots `[new_words, old_words)` left over from a longer
        // previous value.
        builder.switch_to_block(clear_init);
        builder.mstore(scratch, new_words);
        builder.jump(clear_cond);

        builder.switch_to_block(clear_cond);
        let j = builder.mload(scratch);
        let more_clear = builder.lt(j, old_words);
        builder.branch(more_clear, clear_body, done_block);

        builder.switch_to_block(clear_body);
        let j = builder.mload(scratch);
        let clear_dst = builder.add(data_slot, j);
        builder.sstore(clear_dst, zero);
        let next_j = builder.add(j, one);
        builder.mstore(scratch, next_j);
        builder.jump(clear_cond);

        builder.switch_to_block(done_block);
    }

    /// Terminates the current function for the implicit-return epilogue's gathered
    /// `items` (one per declared return). External entries go through the ABI
    /// encoder; internal-frame functions return raw words/pointers.
    pub(super) fn finish_external_or_internal_return(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        items: Vec<(ValueId, Ty<'gcx>)>,
        external: bool,
    ) {
        if external {
            self.emit_abi_return(builder, &items);
            return;
        }
        let vals: Vec<ValueId> = items.into_iter().map(|(v, _)| v).collect();
        builder.ret(vals);
    }

    /// Gathers `(value, type)` for each declared return of an explicit `return`
    /// expression (tuple / ternary-tuple / single / multi-value call), pairing
    /// values with the function's declared return types.
    pub(super) fn gather_return_items(
        &mut self,
        builder: &mut FunctionBuilder<'_>,
        value: Option<&solar_sema::hir::Expr<'_>>,
    ) -> Vec<(ValueId, Ty<'gcx>)> {
        use solar_sema::hir::ExprKind;
        let tys = self.current_return_tys.clone();
        let Some(expr) = value else {
            return Vec::new();
        };
        if let ExprKind::Tuple(elements) = &expr.kind {
            return elements
                .iter()
                .flatten()
                .enumerate()
                .map(|(i, e)| (self.lower_return_value_for_ty(builder, e, tys[i]), tys[i]))
                .collect();
        }
        if let Some(arity) = self.get_ternary_tuple_arity(expr) {
            let _ = self.lower_expr(builder, expr);
            return (0..arity)
                .map(|i| {
                    let off = builder.imm_u64((i * 32) as u64);
                    (builder.mload(off), tys[i])
                })
                .collect();
        }
        let first = self.lower_return_value_for_ty(builder, expr, tys[0]);
        let mut items = vec![(first, tys[0])];
        for (i, &ty) in tys.iter().enumerate().skip(1) {
            let off = builder.imm_u64((i * 32) as u64);
            items.push((builder.mload(off), ty));
        }
        items
    }
}