541 lines
17 KiB
Markdown
541 lines
17 KiB
Markdown
# Gotlin
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`Gotlin` is a small Kotlin-like frontend implemented in Go that targets the Go toolchain.
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This is the practical boundary of the prototype:
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- It is a Kotlin-flavored language frontend.
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- It targets the Go toolchain by generating valid Go source and building through `go build`.
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- It is not a direct integration into Go's internal `cmd/compile` backend APIs.
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The compiler keeps source spelling in its syntax AST, then builds lexical
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symbols, structural semantic types, resolved expression meanings, and typed
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HIR before Go emission. Class reference semantics live in `ClassType`; only
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the semantic Type-to-Go mapping turns a class such as `User` into `*User`.
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## Supported language slice
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- `fun` declarations
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- `val` and `var`
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- `Int`, `Long`, `String`, `Boolean`, `Unit`
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- function types like `(String) -> Unit`
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- `if`, `else`, `while`, and `for (item in items)`
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- function calls
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- lambdas like `{ x: Int -> println(x) }` and `{ println(it) }`
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- `class` with primary-constructor fields and methods
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- `interface` with method signatures
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- Rust-style algebraic `enum` declarations with payload variants and exhaustive `match`
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- `println(...)`
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- arithmetic, comparison, and boolean operators
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- decimal literals, `defer`, and Go address-of expressions such as `&value`
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- explicit nullable types (`Type?`), safe access (`?.`), and non-null assertions (`!!`)
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- Gotlin classes are reference types by default; `*` is only needed for external Go pointer types
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- named external Go struct construction, for example `http.Client(timeout = 3 * time.second)`
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- top-level embedded resources such as `@embed("assets/*") val assets: embed.FS`
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- structured coroutines with `suspend fun`, `runBlocking`, `coroutineScope`, `launch`, `async`, `await`, `delay`, `withTimeout`, and `isActive`
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## Example
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```kotlin
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package demo
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fun fib(n: Int): Int {
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if (n < 2) {
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return n
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}
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return fib(n - 1) + fib(n - 2)
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}
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fun main() {
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println(fib(8))
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}
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```
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Imports from Go packages are supported:
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```kotlin
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package demo
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import strings
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fun main() {
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println(strings.ToUpper("gotlin"))
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}
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```
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HTTP server example:
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```kotlin
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package demo.web
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import fmt
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import net.http
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fun helloHandler(w: http.ResponseWriter, r: *http.Request) {
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fmt.Fprintln(w, "hello from gotlin")
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}
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fun main() {
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http.HandleFunc("/", helloHandler)
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fmt.Println("serving http://localhost:8080")
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http.ListenAndServe(":8080", http.DefaultServeMux)
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}
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```
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Classes and interfaces:
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```kotlin
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package demo
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interface Greeter {
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fun greet(name: String): String
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}
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class ConsoleGreeter(val prefix: String) {
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fun greet(name: String): String {
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return prefix + name
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}
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}
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fun main() {
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val greeter: Greeter = ConsoleGreeter("hello, ")
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println(greeter.greet("gotlin"))
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}
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```
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Rust-style enums:
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```kotlin
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enum PaymentResult {
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Accepted(String)
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Rejected(String)
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Pending
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}
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fun describe(result: PaymentResult): String {
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return match (result) {
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PaymentResult.Accepted(id) -> id
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PaymentResult.Rejected(reason) -> reason
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PaymentResult.Pending -> "pending"
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}
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}
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```
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Enum matches must contain each variant exactly once. Variant payload arity is
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checked during Gotlin compilation. A match used as an expression also requires
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every arm to return the same type. Block-style statement matches remain
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available for side effects.
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## Null safety
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Types are non-nullable by default. Add `?` explicitly when `null` is valid:
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```kotlin
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fun email(user: User?): String? {
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return user?.email
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}
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```
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The compiler rejects `null` in non-nullable arguments, fields, local variables,
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and return values. Nullable receivers cannot be dereferenced directly. Gotlin
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smart-casts values after `value != null` branches and guard clauses such as
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`if (value == null) { return }`. Use `!!` only when an invariant cannot be
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expressed through control flow:
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```kotlin
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val required: User = optionalUser!!
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```
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## Error handling
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Gotlin adapts Go `(T, error)` returns into Rust-style `Result<T, Error>` flows.
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An explicit `Result` return or variable type converts the Go return directly:
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```kotlin
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fun parse(value: String): Result<Int, Error> {
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return strconv.atoi(value)
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}
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fun ping(db: *sql.DB): Result<Unit, Error> {
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return db.ping()
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}
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```
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Use `?` to propagate a Go error or chain a Gotlin function returning `Result`.
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Explicit panic and fallback operations are available when appropriate:
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```kotlin
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val required = parse("42").unwrap()
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val fallback = parse("invalid").unwrapOr(0)
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```
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Gotlin never inserts implicit panic wrappers. A Go call returning `(T, error)`
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must have an explicit `Result` context or use `?`, explicit `value, error`
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destructuring, or `.unwrap()`.
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Gotlin-defined `class` and `data class` values are references automatically,
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including nested generic types such as `List<User>`. Explicit pointer syntax is
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reserved for Go interop, for example `*http.Request` and `*pgxpool.Pool`;
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applying `*` to a Gotlin class is a compile error.
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Enums whose variants carry no payload are represented as string-backed values.
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The exact variant identifier is used for JSON and PostgreSQL text values:
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```kotlin
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enum PaymentStatus {
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PENDING_RESERVATION
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INITIATED
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}
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```
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This reads and writes `"PENDING_RESERVATION"` and `"INITIATED"` directly.
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Payload-carrying enums remain algebraic sum types.
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## Structural mapping
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Compatible classes and enums can be converted with `mapTo<T>()`:
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```kotlin
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data class AddressEntity(var city: String)
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data class AddressResponse(var city: String)
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data class AccountEntity(var id: String, var address: *AddressEntity)
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data class AccountResponse(var address: *AddressResponse, var id: String)
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val response = account.mapTo<AccountResponse>()
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```
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When the surrounding expression provides a target type, the type argument is
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optional:
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```kotlin
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fun response(account: AccountEntity): AccountResponse {
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return account.mapTo()
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}
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val response: AccountResponse = account.mapTo()
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val envelope = Envelope(account.mapTo())
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```
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Use explicit `mapTo<T>()` when assigning to an untyped local or when no target
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type can be inferred.
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Fields are matched by Gotlin name rather than declaration order. Mapping is
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recursive across nested classes, pointers, nullable values, lists, mutable
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lists, maps, and enum payloads. Enum variants are matched by name. Extra source
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fields and extra target enum variants are allowed; every target field and every
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source enum variant must be compatible.
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Payloadless enums also map recursively to and from `String`. String-to-enum
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mapping validates the runtime value and panics for an unknown variant string.
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Incompatible mappings fail compilation with a complete path, for example:
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```text
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cannot map Account.address.zip: String is incompatible with Int
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```
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```bash
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go run ./cmd/gotlinc build ./examples/hello.gt
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./hello
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```
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Emit Go source instead:
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```bash
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go run ./cmd/gotlinc build -src ./examples/hello.gt -o /tmp/hello.go
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go run /tmp/hello.go
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```
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Run directly:
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```bash
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go run ./cmd/gotlinc run ./examples/hello.gt
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```
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## Structured coroutines
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Gotlin coroutines use Go goroutines underneath, but expose only structured
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scopes. A scope waits for its children, propagates child failures, and cancels
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sibling coroutine contexts. The removed `worker`, bare `go`, and channel
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`select` forms are not valid Gotlin syntax; use coroutine scopes, `delay`, and
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explicit channel `read()`/`send()` operations.
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```kotlin
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suspend fun load(): Int {
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delay(10)
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return 42
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}
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fun main() {
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runBlocking {
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val value = async<Int> { return load() }
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launch { println("loading") }
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println(value.await())
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}
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}
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```
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## Type-checked SQL queries
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Gotlin recognizes a PostgreSQL SQL DSL at compile time. SQL row mappings must be data classes annotated with `@table`. Fields map from lower-camel Gotlin names to `snake_case` columns by default and can override the SQL name with `@column`. Conflict keys use `@id`; database-generated or defaulted fields use `@generated`.
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```kotlin
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import time
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@table("accounts")
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data class AccountRow(
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@generated @id var id: String,
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var customerId: String,
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@column("kind") var accountType: String,
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var balance: Double,
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var closedAt: time.Time?
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)
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fun accountsFor(customerId: String): GotlinSQLQuery {
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return sql.from<AccountRow>()
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.where { row -> row.customerId == customerId && row.closedAt == null }
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.orderByDescending { row -> row.balance }
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.limit(100)
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.build()
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}
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```
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The compiler emits a Go value with this generated support type:
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```go
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type GotlinSQLQuery struct {
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SQL string
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Args []any
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}
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```
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The example selects every field, including `@generated` fields, and produces PostgreSQL `$n` placeholders. Arguments are emitted in SQL traversal order. A literal `limit(100)` is embedded after validation; a typed non-literal `Int` limit uses the next placeholder.
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Nullable types use a `?` suffix, currently including forms such as `String?` and `time.Time?`; generated Go fields use pointers. Comparing a nullable field with `null` lowers to `IS NULL` or `IS NOT NULL`. Ordering comparisons support numeric values and `time.Time`; typed `now()` emits `CURRENT_TIMESTAMP` without an argument:
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```kotlin
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sql.from<OutboxRow>()
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.where { it.publishedAt == null && (it.claimedUntil == null || it.claimedUntil < now()) }
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.orderBy { it.createdAt }
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.limit(batchSize)
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.forUpdate()
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.skipLocked()
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.build()
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```
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The canonical select method order is:
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```text
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sql.from<Row>()
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[.select { ... }]
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[.where { ... }]
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[.orderBy { ... } | .orderByDescending { ... }]
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[.limit(Int)]
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[.forUpdate()]
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[.skipLocked()]
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.build() | .fetch(pool, ctx) | .single(pool, ctx) | .iterator(pool, ctx)
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```
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Each optional method may occur at most once. `select` must be first, `skipLocked` requires `forUpdate`, and clauses are emitted as `WHERE`, `ORDER BY`, `LIMIT`, `FOR UPDATE`, `SKIP LOCKED` in PostgreSQL order.
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### Typed projections
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Projection targets are local data classes. The constructor must contain one direct source-row field per target field, in target declaration order, with exact matching types:
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```kotlin
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data class AccountSummary(var id: String, var balance: Double)
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fun summaries(pool: *pgxpool.Pool, ctx: context.Context): List<AccountSummary> {
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return sql.from<AccountRow>()
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.select { row -> AccountSummary(row.id, row.balance) }
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.orderBy { it.balance }
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.fetch(pool, ctx)
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.unwrap()
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}
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```
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The compiler emits `SELECT id, balance`, scans in projection declaration order, and makes `fetch`, `single`, and `iterator` target `AccountSummary` rather than `AccountRow`. The row parameter in later `where` and ordering methods still represents `AccountRow`.
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Select chains can execute directly against a pgx/v5 pool. `fetch(pool, ctx)`
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returns `Result<List<AccountRow>, Error>` and closes pgx rows after reading and
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scanning every result in data-class field declaration order:
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```kotlin
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import context
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import pgxpool "github.com/jackc/pgx/v5/pgxpool"
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fun accountsFor(
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pool: *pgxpool.Pool,
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ctx: context.Context,
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customerId: String
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): List<AccountRow> {
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return sql.from<AccountRow>()
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.where { it.customerId == customerId }
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.orderBy { it.accountType }
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.fetch(pool, ctx)
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.unwrap()
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}
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```
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`single(pool, ctx)` returns `Result<AccountRow, Error>` and closes the rows. Use
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`?` to propagate zero/multiple-row errors or call `.unwrap()` explicitly:
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```kotlin
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fun account(pool: *pgxpool.Pool, ctx: context.Context, id: String): AccountRow {
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return sql.from<AccountRow>()
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.where { it.id == id }
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.single(pool, ctx)
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.unwrap()
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}
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```
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`iterator(pool, ctx)` returns a `Result` around a streaming pgx iterator. Call
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`next()` before each `value()`, arrange an explicit `close()`, and inspect
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`err()` after iteration:
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```kotlin
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fun printAccounts(pool: *pgxpool.Pool, ctx: context.Context) {
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val rows = sql.from<AccountRow>().iterator(pool, ctx).unwrap()
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defer rows.close()
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while (rows.next()) {
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val account: AccountRow = rows.value()
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println(account.customerId)
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}
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val checked = rows.err()
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}
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```
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Query and scan failures are returned as `Result` errors. `fetch` and `single`
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close rows internally; an iterator leaves lifecycle control with the caller,
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and `value()` panics only when called without a successful `next()`. None of the
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execution terminals require an intermediate `build()`, `query.sql`, or
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`query.args` access. `build()` remains available for manual execution.
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### Inserts and returning
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Inserts omit every `@generated` field. If all fields are generated, the compiler emits `INSERT ... DEFAULT VALUES`. Conflict handling is optional; conflict fields must have `@id`:
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```kotlin
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sql.insert<AccountRow>(row)
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.onConflict { it.id }
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.doNothing()
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.build()
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```
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Composite conflict keys use `listOf`, for example `.onConflict { listOf(it.tenantId, it.id) }`.
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Updates use a typed lower-camel `set` form because Gotlin does not currently implement Kotlin callable references (`AccountRow::balance`):
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```kotlin
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sql.insert<AccountRow>(row)
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.onConflict { it.id }
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.doUpdate { excluded -> set(AccountRow.balance, excluded.balance) }
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.build()
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```
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Multiple `set(...)` expressions may appear in one `doUpdate` lambda. Update targets must exist and be `var`; excluded fields must exist and have a compatible type.
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An insert can return the full row or a typed projection. Write chains can use `fetch`, `single`, or `iterator` only after `returning`:
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```kotlin
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sql.insert<AccountRow>(row)
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.returning { it }
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.single(pool, ctx)
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sql.insert<AccountRow>(row)
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.onConflict { it.id }
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.doNothing()
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.returning { value -> AccountSummary(value.id, value.balance) }
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.single(pool, ctx)
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```
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The exact insert forms are:
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```text
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sql.insert<Row>(row)
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[.onConflict { field | listOf(fields...) }.doNothing() | .doUpdate { ... }]
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[.returning { it | Projection(it.field, ...) }]
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.build() | returning execution terminal
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```
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### Updates and deletes
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Typed updates use one `set` lambda. Targets are mutable source-row fields. Values may be typed names/selectors, literals, `null` for nullable targets, `now()` for timestamps, source-row fields, or numeric `+` and `-` expressions:
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```kotlin
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sql.update<AccountRow>()
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.set { row ->
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set(row.balance, row.balance + amount)
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set(row.closedAt, now())
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}
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.where { it.id == accountId }
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.returning { row -> AccountSummary(row.id, row.balance) }
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.single(pool, ctx)
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```
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Deletes support a typed predicate and the same returning forms:
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```kotlin
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sql.delete<AccountRow>()
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.where { it.id == accountId }
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.returning { it }
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.single(pool, ctx)
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```
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The exact write forms are:
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```text
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sql.update<Row>()
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.set { row -> set(row.field, value); ... }
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[.where { predicate }]
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[.returning { it | Projection(it.field, ...) }]
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.build() | returning execution terminal
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sql.delete<Row>()
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[.where { predicate }]
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[.returning { it | Projection(it.field, ...) }]
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.build() | returning execution terminal
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```
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`where` is intentionally optional for updates and deletes, so omitting it affects the whole table. There is no write `execute` terminal yet; use `build()` for manual `Exec`, or add `returning` and use a query execution terminal.
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At compile time the DSL checks that the generic row type exists, is a data class with `@table`, has unique mapped columns, and contains every referenced field. It checks known predicate operand types, nullable operations, insert row types, `@id` conflict metadata, update mutability and value compatibility, method cardinality/order, lock dependencies, and projection field counts/types.
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Current SQL limitations:
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- Predicates support `&&`, `||`, `!`, `==`, `!=`, and numeric/timestamp `<`, `<=`, `>`, `>=`. Values must have a compiler-known type; external values become `$n` arguments.
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- Projections and `returning` do not support scalar results, aliases, computed expressions, aggregates, external structs, or reordered/coerced target types. They accept a full row or direct fields passed to a local data-class constructor.
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- Standalone update values do not support SQL functions other than `now()`, string expressions, intervals, casts, subqueries, or arbitrary SQL fragments. Upsert `doUpdate` values still come only from the `excluded` row.
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- Inserts emit one row at a time. Bulk/multi-row inserts are not implemented.
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- Table and column annotations are validated unquoted SQL identifiers. Joins, aliases, grouping, aggregates, `OFFSET`, lock strengths other than `FOR UPDATE`, and conflict predicates are not implemented.
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- The compiler does not perform migrations, schema generation, database connections, or schema introspection.
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Language server:
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```bash
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go build -o ./bin/gotlin-lsp ./cmd/gotlin-lsp
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./bin/gotlin-lsp
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```
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VS Code extension:
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```bash
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cd ./tools/vscode-gotlin
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npm install
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npm run build
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```
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## Notes
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- `val` is immutable after initialization; `var` can be reassigned.
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- Type inference is local to declarations without an explicit type.
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- Top-level declarations currently support functions, classes, and interfaces.
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- `gotlinc build` produces an executable by default. If `-o` is omitted, the output name is derived from the input file name.
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- `gotlinc build -src` emits Go source instead of a binary.
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- `gotlinc` supports `build` and `run`, and defaults to `build` if no subcommand is given.
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- Gotlin source files use the `.gt` extension.
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- `gotlin-lsp` provides diagnostics, hover, and go-to-definition over stdio.
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- `gotlin-lsp` can optionally use `gopls` for hover and definition on Go-imported symbols.
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- the VS Code extension adds syntax highlighting, snippets, and launches the LSP for `.gt` files.
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