mirror of
https://github.com/logos-messaging/nim-ffi.git
synced 2026-06-21 00:40:16 +00:00
533 lines
22 KiB
Nim
533 lines
22 KiB
Nim
## C++ binding generator for the nim-ffi framework.
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## Generates a header-only C++ binding and CMakeLists.txt. Requests/responses
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## travel as CBOR (encoded with vendored TinyCBOR on the C++ side, matching
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## the Nim-side cbor_serial codec on the wire — both ends speak RFC 8949).
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import std/[os, strutils]
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import ./meta, ./string_helpers
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## Wire-format C++ type used for any Nim `ptr T` / `pointer`. Fixed 64-bit so
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## the CBOR payload size is stable regardless of host architecture.
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const CppPtrType* = "uint64_t"
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## Static template blocks live as real C++ / CMake files under templates/cpp/
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## and are slurped into the binary at compile time. Edits to those files are
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## reflected in the generated bindings without touching this codegen.
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const
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HeaderPreludeTpl = staticRead("templates/cpp/header_prelude.hpp.tpl")
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CborHelpersTpl = staticRead("templates/cpp/cbor_helpers.hpp.tpl")
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SyncCallHelperTpl = staticRead("templates/cpp/sync_call_helper.hpp.tpl")
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ContextRuleOf5Tpl = staticRead("templates/cpp/context_rule_of_5.hpp.tpl")
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CMakeListsTpl = staticRead("templates/cpp/CMakeLists.txt.tpl")
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proc genericInnerType(typeName, prefix: string): string =
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if typeName.startsWith(prefix) and typeName.endsWith("]"):
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let start = prefix.len
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let lastIndex = typeName.len - 2
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return typeName[start .. lastIndex]
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return ""
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proc nimTypeToCpp*(typeName: string): string =
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let trimmed = typeName.strip()
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if trimmed.startsWith("ptr "):
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return CppPtrType
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else:
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let seqInner = genericInnerType(trimmed, "seq[")
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if seqInner.len > 0:
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return "std::vector<" & nimTypeToCpp(seqInner) & ">"
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let optionInner = genericInnerType(trimmed, "Option[")
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if optionInner.len > 0:
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return "std::optional<" & nimTypeToCpp(optionInner) & ">"
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let maybeInner = genericInnerType(trimmed, "Maybe[")
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if maybeInner.len > 0:
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return "std::optional<" & nimTypeToCpp(maybeInner) & ">"
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case trimmed
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of "string", "cstring": "std::string"
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of "int", "int64": "int64_t"
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of "int32": "int32_t"
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of "bool": "bool"
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of "float": "float"
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of "float64": "double"
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of "pointer": CppPtrType
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else: trimmed
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proc stripLibPrefixCpp(procName, libName: string): string =
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let prefix = libName & "_"
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if procName.startsWith(prefix):
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return procName[prefix.len .. ^1]
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return procName
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proc reqStructName(p: FFIProcMeta): string =
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let camel = snakeToPascalCase(p.procName)
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if p.kind == FFIKind.CTOR:
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camel & "CtorReq"
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else:
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camel & "Req"
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proc emitStructCborCodec(
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lines: var seq[string], structName: string, fields: seq[(string, string)]
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) =
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## Appends per-struct TinyCBOR encode_cbor + decode_cbor free functions for
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## `structName`. `fields` is a sequence of (field-name, ignored C++ type)
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## pairs — the type is unused at the codec layer because the generic
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## encode_cbor / decode_cbor overloads in cbor_helpers.hpp.tpl dispatch on
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## the struct member's type. We emit a CBOR map with text-string keys to
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## match the wire format produced by Nim's cbor_serialization.
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let n = fields.len
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# ── encode ────────────────────────────────────────────────────────────────
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if n == 0:
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lines.add(
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"inline CborError encode_cbor(CborEncoder& e, const $1&) {" % [structName]
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)
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else:
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lines.add(
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"inline CborError encode_cbor(CborEncoder& e, const $1& v) {" % [structName]
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)
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lines.add(" CborEncoder m;")
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lines.add(" CborError err = cbor_encoder_create_map(&e, &m, $1);" % [$n])
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lines.add(" if (err) return err;")
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for (name, _) in fields:
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lines.add(
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" err = cbor_encode_text_stringz(&m, \"$1\"); if (err) return err;" % [name]
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)
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lines.add(
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" err = encode_cbor(m, v.$1); if (err) return err;" % [name]
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)
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lines.add(" return cbor_encoder_close_container(&e, &m);")
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lines.add("}")
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# ── decode ────────────────────────────────────────────────────────────────
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if n == 0:
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lines.add("inline CborError decode_cbor(CborValue& it, $1&) {" % [structName])
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lines.add(" if (!cbor_value_is_map(&it)) return CborErrorImproperValue;")
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lines.add(" return cbor_value_advance(&it);")
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lines.add("}")
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return
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lines.add("inline CborError decode_cbor(CborValue& it, $1& v) {" % [structName])
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lines.add(" if (!cbor_value_is_map(&it)) return CborErrorImproperValue;")
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lines.add(" CborValue field;")
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lines.add(" CborError err;")
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for (name, _) in fields:
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lines.add(
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" err = cbor_value_map_find_value(&it, \"$1\", &field); if (err) return err;" %
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[name]
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)
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lines.add(" if (!cbor_value_is_valid(&field)) return CborErrorImproperValue;")
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lines.add(" err = decode_cbor(field, v.$1); if (err) return err;" % [name])
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lines.add(" return cbor_value_advance(&it);")
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lines.add("}")
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proc cppBracedInit(structName: string, fieldNames: seq[string]): string =
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## Produces a C++ braced-init expression for a per-proc Req struct.
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## Used to construct the request value before CBOR-encoding it for the wire,
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## as in `const auto req = TimerEchoReq{message, count};` in the generated
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## header. The field order must match the struct's declaration order, which
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## in turn mirrors the user's Nim FFI signature.
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##
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## Examples:
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## cppBracedInit("TimerEchoReq", @["message", "count"])
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## → "TimerEchoReq{message, count}"
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## cppBracedInit("TimerVersionReq", @[])
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## → "TimerVersionReq{}"
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## cppBracedInit("TimerCreateCtorReq", @["config"])
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## → "TimerCreateCtorReq{config}"
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##
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## Empty `fieldNames` collapses cleanly because `join` on an empty seq
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## returns "", so the result is the well-formed empty-init `Name{}`.
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return structName & "{" & fieldNames.join(", ") & "}"
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proc emitEventDispatcher(
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lines: var seq[string], ctxTypeName, libName: string, events: seq[FFIEventMeta]
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) =
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## Emit the typed-event support inside the C++ context class body:
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## a nested `Events` struct of std::function handlers, plus a
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## `setEventHandlers` method that owns the handlers on the heap and
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## hands the raw pointer to the dylib as `user_data` for the trampoline.
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##
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## Storage strategy: `Events` lives on the heap (unique_ptr) so the raw
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## pointer we hand to the C ABI as `user_data` survives the (non-)
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## lifetime of the surrounding context object. The context itself is
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## owned via `std::unique_ptr<MyTimerCtx>` returned from `create`, so
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## it's never moved out from under the trampoline.
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if events.len == 0:
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return
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lines.add(" // ── Typed event handlers ────────────────────────────────")
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lines.add(" struct Events {")
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lines.add(" std::function<void(const std::string&)> on_error;")
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for ev in events:
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lines.add(
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" std::function<void(const $1&)> $2;" %
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[ev.payloadTypeName, ev.nimProcName]
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)
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lines.add(" };")
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lines.add("")
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lines.add(" void setEventHandlers(Events handlers) {")
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lines.add(" events_ = std::make_unique<Events>(std::move(handlers));")
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lines.add(
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" $1_set_event_callback(ptr_, &$2::eventTrampoline, events_.get());" %
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[libName, ctxTypeName]
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)
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lines.add(" }")
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lines.add("")
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proc emitEventTrampoline(
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lines: var seq[string], events: seq[FFIEventMeta]
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) =
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## Emit the private static trampoline that backs `setEventHandlers`. The
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## generated function parses the CBOR `EventEnvelope`, picks the matching
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## std::function from the Events struct, decodes the payload as the
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## registered type, and fires the handler.
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if events.len == 0:
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return
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lines.add(" static void eventTrampoline(int ret, const char* msg, std::size_t len, void* ud) {")
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lines.add(" if (!ud) return;")
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lines.add(" auto* events = static_cast<Events*>(ud);")
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lines.add(" if (ret != 0) {")
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lines.add(" if (events->on_error) {")
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lines.add(" std::string err(msg ? msg : \"\", len);")
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lines.add(" events->on_error(err);")
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lines.add(" }")
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lines.add(" return;")
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lines.add(" }")
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lines.add(" if (!msg || len == 0) return;")
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lines.add(" std::vector<std::uint8_t> bytes(reinterpret_cast<const std::uint8_t*>(msg),")
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lines.add(" reinterpret_cast<const std::uint8_t*>(msg) + len);")
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lines.add(" CborParser parser; CborValue it;")
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lines.add(" if (cbor_parser_init(bytes.data(), bytes.size(), 0, &parser, &it) != CborNoError) return;")
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lines.add(" if (!cbor_value_is_map(&it)) return;")
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lines.add(" CborValue evtField;")
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lines.add(" if (cbor_value_map_find_value(&it, \"eventType\", &evtField) != CborNoError) return;")
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lines.add(" if (!cbor_value_is_text_string(&evtField)) return;")
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lines.add(" std::string evtName; if (decode_cbor(evtField, evtName) != CborNoError) return;")
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lines.add(" CborValue payloadField;")
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lines.add(" if (cbor_value_map_find_value(&it, \"payload\", &payloadField) != CborNoError) return;")
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var first = true
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for ev in events:
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let branchKw = if first: "if" else: "else if"
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lines.add(" $1 (evtName == \"$2\") {" % [branchKw, ev.wireName])
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lines.add(" if (events->$1) {" % [ev.nimProcName])
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lines.add(
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" $1 payload{}; if (decode_cbor(payloadField, payload) == CborNoError) events->$2(payload);" %
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[ev.payloadTypeName, ev.nimProcName]
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)
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lines.add(" }")
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lines.add(" }")
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first = false
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lines.add(" }")
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lines.add("")
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proc generateCppHeader*(
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procs: seq[FFIProcMeta],
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types: seq[FFITypeMeta],
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libName: string,
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events: seq[FFIEventMeta] = @[],
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): string =
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var lines: seq[string] = @[]
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lines.add(HeaderPreludeTpl)
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# CBOR primitive / container helpers must precede the per-struct codecs
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# below, because each emitted `encode_cbor`/`decode_cbor(T)` calls the
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# generic overloads for the struct's fields (std::string, std::vector,
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# std::optional, primitives). The struct codecs are non-template `inline`
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# functions, so name lookup happens at parse time — the overloads must be
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# in scope before the struct codecs are parsed.
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lines.add(CborHelpersTpl)
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# ── Types ──────────────────────────────────────────────────────────────────
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if types.len > 0:
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lines.add("// ============================================================")
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lines.add("// User-declared FFI types")
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lines.add("// ============================================================")
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lines.add("")
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for t in types:
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lines.add("struct $1 {" % [t.name])
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for f in t.fields:
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lines.add(" $1 $2;" % [nimTypeToCpp(f.typeName), f.name])
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lines.add("};")
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var fields: seq[(string, string)] = @[]
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for f in t.fields:
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fields.add((f.name, nimTypeToCpp(f.typeName)))
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emitStructCborCodec(lines, t.name, fields)
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lines.add("")
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# ── Per-proc Req structs (CBOR transport units) ───────────────────────────
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lines.add("// ============================================================")
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lines.add("// Per-proc request envelopes (CBOR encoded on the wire)")
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lines.add("// ============================================================")
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lines.add("")
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for p in procs:
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if p.kind == FFIKind.DTOR:
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continue
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let reqName = reqStructName(p)
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lines.add("struct $1 {" % [reqName])
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for ep in p.extraParams:
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let cppType =
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if ep.isPtr:
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CppPtrType
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else:
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nimTypeToCpp(ep.typeName)
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lines.add(" $1 $2;" % [cppType, ep.name])
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lines.add("};")
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var fields: seq[(string, string)] = @[]
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for ep in p.extraParams:
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let cppType =
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if ep.isPtr:
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CppPtrType
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else:
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nimTypeToCpp(ep.typeName)
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fields.add((ep.name, cppType))
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emitStructCborCodec(lines, reqName, fields)
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lines.add("")
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# ── C FFI declarations ─────────────────────────────────────────────────────
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lines.add("// ============================================================")
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lines.add("// C FFI declarations")
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lines.add("// ============================================================")
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lines.add("")
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lines.add("extern \"C\" {")
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lines.add(
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"typedef void (*FFICallback)(int ret, const char* msg, size_t len, void* user_data);"
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)
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lines.add("")
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for p in procs:
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case p.kind
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of FFIKind.FFI:
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lines.add(
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"int $1(void* ctx, FFICallback callback, void* user_data, const uint8_t* req_cbor, size_t req_cbor_len);" %
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[p.procName]
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)
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of FFIKind.CTOR:
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lines.add(
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"void* $1(const uint8_t* req_cbor, size_t req_cbor_len, FFICallback callback, void* user_data);" %
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[p.procName]
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)
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of FFIKind.DTOR:
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lines.add("int $1(void* ctx);" % [p.procName])
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# The event-callback setter is always exported by the dylib (via
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# declareLibrary). Declare it here so the typed event-handler wiring
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# below can call into it.
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lines.add(
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"void $1_set_event_callback(void* ctx, FFICallback callback, void* user_data);" %
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[libName]
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)
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lines.add("} // extern \"C\"")
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lines.add("")
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lines.add(SyncCallHelperTpl)
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# ── High-level C++ context class ──────────────────────────────────────────
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var ctors: seq[FFIProcMeta] = @[]
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var methods: seq[FFIProcMeta] = @[]
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for p in procs:
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case p.kind
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of FFIKind.CTOR:
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ctors.add(p)
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of FFIKind.FFI:
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methods.add(p)
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of FFIKind.DTOR:
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discard
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let libTypeName =
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if ctors.len > 0:
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ctors[0].libTypeName
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else:
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capitalizeFirstLetter(libName)
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let ctxTypeName = libTypeName & "Ctx"
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lines.add("// ============================================================")
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lines.add("// High-level C++ context class")
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lines.add("// ============================================================")
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lines.add("")
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lines.add("class $1 {" % [ctxTypeName])
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lines.add("public:")
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# ── Constructors ────────────────────────────────────────────────────────
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for ctor in ctors:
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let reqName = reqStructName(ctor)
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var ctorParams: seq[string] = @[]
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var epNames: seq[string] = @[]
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for ep in ctor.extraParams:
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let cppType =
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if ep.isPtr:
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CppPtrType
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else:
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nimTypeToCpp(ep.typeName)
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ctorParams.add("const $1& $2" % [cppType, ep.name])
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epNames.add(ep.name)
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let timeoutParam = "std::chrono::milliseconds timeout = std::chrono::seconds{30}"
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let ctorParamsWithTimeout =
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if ctorParams.len > 0:
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ctorParams.join(", ") & ", " & timeoutParam
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else:
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timeoutParam
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let reqInit = cppBracedInit(reqName, epNames)
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# Same `ffi_*_` underscore convention as instance methods so that a ctor
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# parameter cannot collide with the local Req envelope name.
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#
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# The ctor's C symbol returns `void*` (the ctx pointer) synchronously, but
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# `ffi_call_` expects an int-returning lambda — and we want the callback
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# path anyway since it carries the CBOR-encoded ctx address. Discard the
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# synchronous return and yield 0 from the lambda; the address comes back
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# through the callback's CBOR text-string payload.
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# `create` returns std::unique_ptr<Ctx> rather than a Ctx by value: the
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# context owns library threads, so we forbid copy/move on the class
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# itself (see ContextRuleOf5Tpl) and hand out ownership through a
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# smart pointer that callers can move, store in containers, etc.
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lines.add(
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" static std::unique_ptr<$1> create($2) {" %
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[ctxTypeName, ctorParamsWithTimeout]
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)
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lines.add(" const auto ffi_req_ = $1;" % [reqInit])
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lines.add(" const auto ffi_req_bytes_ = encodeCborFFI(ffi_req_);")
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lines.add(" const auto ffi_raw_ = ffi_call_([&](FFICallback cb, void* ud) {")
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lines.add(
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" (void)$1(ffi_req_bytes_.data(), ffi_req_bytes_.size(), cb, ud);" %
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[ctor.procName]
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)
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lines.add(" return 0;")
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lines.add(" }, timeout);")
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lines.add(" const auto addr_str = decodeCborFFI<std::string>(ffi_raw_);")
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lines.add(" try {")
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lines.add(" const auto addr = std::stoull(addr_str);")
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# Use `new` directly (not std::make_unique) so the ctor can stay private.
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lines.add(
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" return std::unique_ptr<$1>(new $1(reinterpret_cast<void*>(static_cast<uintptr_t>(addr)), timeout));" %
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[ctxTypeName]
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)
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lines.add(" } catch (const std::exception&) {")
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lines.add(
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" throw std::runtime_error(\"FFI create returned non-numeric address: \" + addr_str);"
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)
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lines.add(" }")
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lines.add(" }")
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lines.add("")
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let captureList =
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if epNames.len > 0:
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epNames.join(", ") & ", timeout"
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else:
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"timeout"
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let callList =
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if epNames.len > 0:
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epNames.join(", ") & ", timeout"
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else:
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"timeout"
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lines.add(
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" static std::future<std::unique_ptr<$1>> createAsync($2) {" %
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[ctxTypeName, ctorParamsWithTimeout]
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)
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lines.add(
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" return std::async(std::launch::async, [$1]() { return create($2); });" %
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[captureList, callList]
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)
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lines.add(" }")
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lines.add("")
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|
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# ── Rule of 5 ──────────────────────────────────────────────────────────
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|
lines.add(
|
|
ContextRuleOf5Tpl.multiReplace(("{{CTX}}", ctxTypeName), ("{{LIB}}", libName))
|
|
)
|
|
|
|
# ── Typed event handlers (public section) ───────────────────────────────
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|
emitEventDispatcher(lines, ctxTypeName, libName, events)
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|
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|
# ── Instance methods ────────────────────────────────────────────────────
|
|
for m in methods:
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|
let methodName = stripLibPrefixCpp(m.procName, libName)
|
|
let retCppType =
|
|
if m.returnIsPtr:
|
|
CppPtrType
|
|
else:
|
|
nimTypeToCpp(m.returnTypeName)
|
|
let reqName = reqStructName(m)
|
|
|
|
var methParams: seq[string] = @[]
|
|
var methParamNames: seq[string] = @[]
|
|
for ep in m.extraParams:
|
|
let cppType =
|
|
if ep.isPtr:
|
|
CppPtrType
|
|
else:
|
|
nimTypeToCpp(ep.typeName)
|
|
methParams.add("const $1& $2" % [cppType, ep.name])
|
|
methParamNames.add(ep.name)
|
|
let methParamsStr = methParams.join(", ")
|
|
let methParamNamesStr = methParamNames.join(", ")
|
|
|
|
let reqInit = cppBracedInit(reqName, methParamNames)
|
|
|
|
# Use a single-underscore-suffixed local for the Req envelope so it can't
|
|
# shadow a method parameter whose name happens to be `req` (or similar).
|
|
lines.add(" $1 $2($3) const {" % [retCppType, methodName, methParamsStr])
|
|
lines.add(" const auto ffi_req_ = $1;" % [reqInit])
|
|
lines.add(" const auto ffi_req_bytes_ = encodeCborFFI(ffi_req_);")
|
|
lines.add(" const auto ffi_raw_ = ffi_call_([&](FFICallback cb, void* ud) {")
|
|
lines.add(
|
|
" return $1(ptr_, cb, ud, ffi_req_bytes_.data(), ffi_req_bytes_.size());" %
|
|
[m.procName]
|
|
)
|
|
lines.add(" }, timeout_);")
|
|
lines.add(" return decodeCborFFI<$1>(ffi_raw_);" % [retCppType])
|
|
lines.add(" }")
|
|
lines.add("")
|
|
# The async wrapper calls the sync method via `this->methodName(...)` so
|
|
# a method param that happens to share the method's name doesn't shadow
|
|
# the call target (e.g. `schedule(job, retry, schedule)` would otherwise
|
|
# parse as invoking the `schedule` parameter).
|
|
if methParamsStr.len > 0:
|
|
lines.add(
|
|
" std::future<$1> $2Async($3) const {" %
|
|
[retCppType, methodName, methParamsStr]
|
|
)
|
|
lines.add(
|
|
" return std::async(std::launch::async, [this, $1]() { return this->$2($3); });" %
|
|
[methParamNamesStr, methodName, methParamNamesStr]
|
|
)
|
|
lines.add(" }")
|
|
else:
|
|
lines.add(" std::future<$1> $2Async() const {" % [retCppType, methodName])
|
|
lines.add(
|
|
" return std::async(std::launch::async, [this]() { return this->$1(); });" %
|
|
[methodName]
|
|
)
|
|
lines.add(" }")
|
|
lines.add("")
|
|
|
|
lines.add("private:")
|
|
lines.add(" void* ptr_;")
|
|
lines.add(" std::chrono::milliseconds timeout_;")
|
|
if events.len > 0:
|
|
lines.add(" std::unique_ptr<Events> events_;")
|
|
lines.add(
|
|
" explicit $1(void* p, std::chrono::milliseconds t) : ptr_(p), timeout_(t) {}" %
|
|
[ctxTypeName]
|
|
)
|
|
# Static trampoline stays private; user only sees Events + setEventHandlers.
|
|
emitEventTrampoline(lines, events)
|
|
lines.add("};")
|
|
lines.add("")
|
|
|
|
return lines.join("\n")
|
|
|
|
proc generateCppCMakeLists*(libName: string, nimSrcRelPath: string): string =
|
|
let src = nimSrcRelPath.replace("\\", "/")
|
|
return CMakeListsTpl.multiReplace(("{{LIB}}", libName), ("{{SRC}}", src))
|
|
|
|
proc generateCppBindings*(
|
|
procs: seq[FFIProcMeta],
|
|
types: seq[FFITypeMeta],
|
|
libName: string,
|
|
outputDir: string,
|
|
nimSrcRelPath: string,
|
|
events: seq[FFIEventMeta] = @[],
|
|
) =
|
|
createDir(outputDir)
|
|
writeFile(
|
|
outputDir / (libName & ".hpp"),
|
|
generateCppHeader(procs, types, libName, events),
|
|
)
|
|
writeFile(outputDir / "CMakeLists.txt", generateCppCMakeLists(libName, nimSrcRelPath))
|