alef 0.66.0

Opinionated polyglot binding generator for Rust libraries
Documentation
//! Regression coverage for the Swift e2e generator's enum-field classification.
//!
//! `render_test_method` used to decide whether a result field is enum-typed purely from the
//! hand-maintained `fields_enum` / `[e2e.call.overrides.swift] enum_fields` config
//! (`assertions.rs`'s `field_is_enum`, and the wildcard mirrors at `render_wildcard_assertion`'s
//! `elem_is_enum` and `accessors.rs::swift_traversal_contains_assert`'s `elem_is_enum`). A
//! consumer whose `alef.toml` never declared that entry got no `.rawValue` on a first-class
//! Codable struct's enum property — `XCTAssertEqual(result.kind, "keyValue")` compares a
//! `DataNodeKind` against a `String`, which does not compile.
//!
//! `test_method.rs` now wires the same IR-derived classification the rust/csharp/gleam e2e
//! generators use (`FieldResolver::ir_enum_fields` + `with_ir_enum_map`, anchored at the call's
//! declared Rust return type via `resolve_declared_result_type`). These tests drive the real
//! entry point, `render_test_method`, with no `fields_enum`/`enum_fields` config at all — the
//! classification must come from the IR alone. ~keep

use crate::core::config::ResolvedCrateConfig;
use crate::core::ir::{EnumDef, EnumVariant, FieldDef, FunctionDef, TypeDef, TypeRef};
use crate::e2e::config::{CallConfig, CallOverride, E2eConfig};
use crate::e2e::field_access::SwiftFirstClassMap;
use crate::e2e::fixture::{Assertion, Fixture};
use std::collections::{HashMap, HashSet};

/// A `DataNodeKind`-shaped enum: two unit variants, no serde rename overrides.
fn data_node_kind_enum() -> EnumDef {
    EnumDef {
        name: "DataNodeKind".to_string(),
        variants: vec![
            EnumVariant {
                name: "KeyValue".to_string(),
                ..EnumVariant::default()
            },
            EnumVariant {
                name: "Sequence".to_string(),
                ..EnumVariant::default()
            },
        ],
        ..EnumDef::default()
    }
}

fn kind_field(ty: TypeRef, optional: bool) -> FieldDef {
    FieldDef {
        name: "kind".to_string(),
        ty,
        optional,
        ..FieldDef::default()
    }
}

fn fixture_calling(call: &str) -> Fixture {
    Fixture {
        id: "kind_smoke".to_string(),
        description: "Kind field smoke".to_string(),
        call: Some(call.to_string()),
        assertions: vec![Assertion {
            assertion_type: "equals".to_string(),
            field: Some("kind".to_string()),
            value: Some(serde_json::Value::String("key_value".to_string())),
            ..Assertion::default()
        }],
        ..Fixture::default()
    }
}

/// `process` returns `ProcessResult { kind: DataNodeKind }`, `other` returns
/// `OtherResult { kind: String }` (same leaf name, unrelated non-enum type — proves the
/// classification is anchored per-call rather than matching on the leaf name alone), and
/// `process_optional` returns `OptionalResult { kind: Option<DataNodeKind> }`.
fn table_ir() -> (Vec<TypeDef>, Vec<EnumDef>, Vec<FunctionDef>) {
    let type_defs = vec![
        TypeDef {
            name: "ProcessResult".to_string(),
            fields: vec![kind_field(TypeRef::Named("DataNodeKind".to_string()), false)],
            ..TypeDef::default()
        },
        TypeDef {
            name: "OtherResult".to_string(),
            fields: vec![kind_field(TypeRef::String, false)],
            ..TypeDef::default()
        },
        TypeDef {
            name: "OptionalResult".to_string(),
            fields: vec![kind_field(
                TypeRef::Optional(Box::new(TypeRef::Named("DataNodeKind".to_string()))),
                true,
            )],
            ..TypeDef::default()
        },
    ];
    let enums = vec![data_node_kind_enum()];
    let functions = vec![
        FunctionDef {
            name: "process".to_string(),
            return_type: TypeRef::Named("ProcessResult".to_string()),
            ..FunctionDef::default()
        },
        FunctionDef {
            name: "other".to_string(),
            return_type: TypeRef::Named("OtherResult".to_string()),
            ..FunctionDef::default()
        },
        FunctionDef {
            name: "process_optional".to_string(),
            return_type: TypeRef::Named("OptionalResult".to_string()),
            ..FunctionDef::default()
        },
    ];
    (type_defs, enums, functions)
}

/// A `SwiftFirstClassMap` that treats every table type as a first-class Codable struct, so
/// `kind` renders via property access (`result.kind`) rather than a swift-bridge method call
/// (`result.kind()`). The compile-breaking half of this defect only shows up on the property
/// path: swift-bridge already bridges every enum getter to a `RustString`, so method-call
/// `.toString()` is emitted for both an enum and a plain-string leaf — but a first-class
/// Codable enum property needs `.rawValue` to compare against the fixture's wire-format string,
/// and a plain `String` property must NOT get `.rawValue` (it has none). ~keep
fn first_class_map() -> SwiftFirstClassMap {
    SwiftFirstClassMap {
        first_class_types: ["ProcessResult", "OtherResult", "OptionalResult"]
            .into_iter()
            .map(str::to_string)
            .collect(),
        field_types: HashMap::new(),
        vec_field_names: HashSet::new(),
        root_type: None,
        stringy_fields_by_type: HashMap::new(),
    }
}

/// `render_test_method` (`swift/test_method.rs`) resolves the per-fixture Swift first-class
/// root type from the call's `result_type` override on ANY of `c`/`csharp`/`java`/`kotlin`/`go`/
/// `php` (`values::swift_call_result_type`) — Swift has no override axis of its own for this,
/// so it reuses whichever backend's config already names the IR type. This is a different
/// config axis from `enum_fields`/`fields_enum`, so setting it does not smuggle in the
/// classification under test.
fn e2e_config_for(call: &str, result_type: &str, extra: impl FnOnce(&mut CallConfig)) -> E2eConfig {
    let mut call_config = CallConfig {
        function: call.to_string(),
        ..CallConfig::default()
    };
    call_config.overrides.insert(
        "csharp".to_string(),
        CallOverride {
            result_type: Some(result_type.to_string()),
            ..CallOverride::default()
        },
    );
    extra(&mut call_config);
    let mut e2e_config = E2eConfig::default();
    e2e_config.calls.insert(call.to_string(), call_config);
    e2e_config
}

fn render(
    fixture: &Fixture,
    e2e_config: &E2eConfig,
    swift_first_class_map: &SwiftFirstClassMap,
    type_defs: &[TypeDef],
    enums: &[EnumDef],
    functions: &[FunctionDef],
) -> String {
    let config = ResolvedCrateConfig {
        name: "sample".to_string(),
        ..ResolvedCrateConfig::default()
    };
    let mut out = String::new();
    super::test_method::render_test_method(
        &mut out,
        fixture,
        e2e_config,
        "",
        "",
        &[],
        false,
        None,
        swift_first_class_map,
        "Sample",
        &config,
        type_defs,
        enums,
        functions,
        &[],
    );
    out
}

struct Case {
    name: &'static str,
    call: &'static str,
    result_type: &'static str,
    expect_raw_value: bool,
}

const CASES: &[Case] = &[
    Case {
        name: "an enum-typed field with no fields_enum config gets .rawValue via the IR",
        call: "process",
        result_type: "ProcessResult",
        expect_raw_value: true,
    },
    Case {
        name: "a same-named non-enum field on an unrelated type is not misclassified as enum",
        call: "other",
        result_type: "OtherResult",
        expect_raw_value: false,
    },
    Case {
        name: "an Option<Enum> field is classified as enum via the IR",
        call: "process_optional",
        result_type: "OptionalResult",
        expect_raw_value: true,
    },
];

#[test]
fn enum_field_classification_table() {
    let (type_defs, enums, functions) = table_ir();
    let map = first_class_map();
    for case in CASES {
        let e2e_config = e2e_config_for(case.call, case.result_type, |_| {});
        let fixture = fixture_calling(case.call);
        let out = render(&fixture, &e2e_config, &map, &type_defs, &enums, &functions);
        let has_raw_value = out.contains(".rawValue");
        assert_eq!(
            has_raw_value, case.expect_raw_value,
            "{}: expected .rawValue = {}, got:\n{out}",
            case.name, case.expect_raw_value
        );
    }
}

/// An explicit per-call `enum_fields` entry keeps working unchanged (config wins) — the IR only
/// rescues fields the config never mentioned. `other.kind` is `String` in the IR, so only the
/// config entry can make this classify as enum.
#[test]
fn an_explicit_enum_fields_config_entry_still_classifies_as_enum() {
    let (type_defs, enums, functions) = table_ir();
    let map = first_class_map();
    let e2e_config = e2e_config_for("other", "OtherResult", |call| {
        call.overrides.insert(
            "swift".to_string(),
            CallOverride {
                enum_fields: [("kind".to_string(), "DataNodeKind".to_string())].into_iter().collect(),
                ..CallOverride::default()
            },
        );
    });
    let fixture = fixture_calling("other");
    let out = render(&fixture, &e2e_config, &map, &type_defs, &enums, &functions);
    assert!(
        out.contains(".rawValue"),
        "explicit enum_fields config must still classify the field as enum, got:\n{out}"
    );
}