Files
kjol/tools/tsgo/internal/compiler/program.go
2026-07-09 16:50:43 -04:00

2196 lines
89 KiB
Go

package compiler
import (
"context"
"fmt"
"io"
"maps"
"slices"
"strings"
"sync"
"sync/atomic"
"github.com/microsoft/typescript-go/internal/ast"
"github.com/microsoft/typescript-go/internal/binder"
"github.com/microsoft/typescript-go/internal/checker"
"github.com/microsoft/typescript-go/internal/collections"
"github.com/microsoft/typescript-go/internal/core"
"github.com/microsoft/typescript-go/internal/diagnostics"
"github.com/microsoft/typescript-go/internal/json"
"github.com/microsoft/typescript-go/internal/locale"
"github.com/microsoft/typescript-go/internal/module"
"github.com/microsoft/typescript-go/internal/modulespecifiers"
"github.com/microsoft/typescript-go/internal/outputpaths"
"github.com/microsoft/typescript-go/internal/packagejson"
"github.com/microsoft/typescript-go/internal/parser"
"github.com/microsoft/typescript-go/internal/printer"
"github.com/microsoft/typescript-go/internal/scanner"
"github.com/microsoft/typescript-go/internal/sourcemap"
"github.com/microsoft/typescript-go/internal/symlinks"
"github.com/microsoft/typescript-go/internal/tracing"
"github.com/microsoft/typescript-go/internal/tsoptions"
"github.com/microsoft/typescript-go/internal/tspath"
)
type ProgramOptions struct {
Host CompilerHost
Config *tsoptions.ParsedCommandLine
UseSourceOfProjectReference bool
SingleThreaded core.Tristate
CreateCheckerPool func(*Program) CheckerPool
TypingsLocation string
ProjectName string
Tracing *tracing.Tracing
}
func (p *ProgramOptions) canUseProjectReferenceSource() bool {
return p.UseSourceOfProjectReference && !p.Config.CompilerOptions().DisableSourceOfProjectReferenceRedirect.IsTrue()
}
type lazyValue[T any] struct {
value *T
once sync.Once
initialized atomic.Bool
}
func (l *lazyValue[T]) getValue(compute func() *T) *T {
l.once.Do(func() {
if l.value == nil {
l.value = compute()
}
l.initialized.Store(true)
})
return l.value
}
func (l *lazyValue[T]) tryReuse(from *lazyValue[T]) {
if from.initialized.Load() {
l.value = from.value
l.initialized.Store(true)
}
}
type packageNamesInfo struct {
resolved *collections.Set[string]
unresolved *collections.Set[string]
deepImportPackages *collections.Set[string]
}
type Program struct {
opts ProgramOptions
checkerPool CheckerPool // always set; used as fallback for project system pools
// compilerCheckerPool is set only when the built-in compiler checker pool is in use
// (i.e. CreateCheckerPool was not provided). It enables grouped parallel iteration,
// non-exclusive access for emit, and direct global diagnostics collection.
compilerCheckerPool *checkerPool
comparePathsOptions tspath.ComparePathsOptions
processedFiles
usesUriStyleNodeCoreModules core.Tristate
commonSourceDirectory string
commonSourceDirectoryOnce sync.Once
declarationDiagnosticCache collections.SyncMap[*ast.SourceFile, []*ast.Diagnostic]
programDiagnostics []*ast.Diagnostic
hasEmitBlockingDiagnostics collections.Set[tspath.Path]
sourceFilesToEmitOnce sync.Once
sourceFilesToEmit []*ast.SourceFile
// Cached unresolved imports for ATA
unresolvedImports lazyValue[collections.Set[string]]
knownSymlinks lazyValue[symlinks.KnownSymlinks]
// Used by auto-imports
packageNames lazyValue[packageNamesInfo]
// Used by workspace/symbol
hasTSFileOnce sync.Once
hasTSFile bool
// Cached map of package names to whether they bundle types
packagesMapOnce sync.Once
packagesMap map[string]bool
}
// FileExists implements checker.Program.
func (p *Program) FileExists(path string) bool {
return p.Host().FS().FileExists(path)
}
// GetCurrentDirectory implements checker.Program.
func (p *Program) GetCurrentDirectory() string {
return p.Host().GetCurrentDirectory()
}
// GetGlobalTypingsCacheLocation implements checker.Program.
func (p *Program) GetGlobalTypingsCacheLocation() string {
return p.opts.TypingsLocation
}
// GetNearestAncestorDirectoryWithPackageJson implements checker.Program.
func (p *Program) GetNearestAncestorDirectoryWithPackageJson(dirname string) string {
scoped := p.resolver.GetPackageScopeForPath(dirname)
if scoped != nil && scoped.Exists() {
return scoped.PackageDirectory
}
return ""
}
// GetPackageJsonInfo implements checker.Program.
func (p *Program) GetPackageJsonInfo(pkgJsonPath string) *packagejson.InfoCacheEntry {
directory := tspath.GetDirectoryPath(pkgJsonPath)
scoped := p.resolver.GetPackageScopeForPath(directory)
if scoped != nil && scoped.Exists() && scoped.PackageDirectory == directory {
return scoped
}
return nil
}
// PackageJsonCacheEntries iterates on all package json cache entries.
func (p *Program) PackageJsonCacheEntries(f func(key tspath.Path, value *packagejson.InfoCacheEntry) bool) {
p.resolver.PackageJsonCacheEntries(f)
}
// GetRedirectTargets returns the list of file paths that redirect to the given path.
// These are files from the same package (same name@version) installed in different locations.
func (p *Program) GetRedirectTargets(path tspath.Path) []string {
return p.redirectTargetsMap[path]
}
// gets the original file that was included in program
// this returns original source file name when including output of project reference
// otherwise same name
// Equivalent to originalFileName on SourceFile in Strada
func (p *Program) GetSourceOfProjectReferenceIfOutputIncluded(file ast.HasFileName) string {
if source, ok := p.outputFileToProjectReferenceSource[file.Path()]; ok {
return source
}
return file.FileName()
}
// GetProjectReferenceFromSource implements checker.Program.
func (p *Program) GetProjectReferenceFromSource(path tspath.Path) *tsoptions.SourceOutputAndProjectReference {
return p.projectReferenceFileMapper.getProjectReferenceFromSource(path)
}
// IsSourceFromProjectReference implements checker.Program.
func (p *Program) IsSourceFromProjectReference(path tspath.Path) bool {
return p.projectReferenceFileMapper.isSourceFromProjectReference(path)
}
func (p *Program) GetProjectReferenceFromOutputDts(path tspath.Path) *tsoptions.SourceOutputAndProjectReference {
return p.projectReferenceFileMapper.getProjectReferenceFromOutputDts(path)
}
func (p *Program) GetResolvedProjectReferenceFor(path tspath.Path) (*tsoptions.ParsedCommandLine, bool) {
return p.projectReferenceFileMapper.getResolvedReferenceFor(path)
}
func (p *Program) GetRedirectForResolution(file ast.HasFileName) *tsoptions.ParsedCommandLine {
redirect, _ := p.projectReferenceFileMapper.getRedirectForResolution(file)
return redirect
}
func (p *Program) GetParseFileRedirect(fileName string) string {
return p.projectReferenceFileMapper.getParseFileRedirect(ast.NewHasFileName(fileName, p.toPath(fileName)))
}
func (p *Program) GetResolvedProjectReferences() []*tsoptions.ParsedCommandLine {
return p.projectReferenceFileMapper.getResolvedProjectReferences()
}
func (p *Program) RangeResolvedProjectReference(f func(path tspath.Path, config *tsoptions.ParsedCommandLine, parent *tsoptions.ParsedCommandLine, index int) bool) bool {
return p.projectReferenceFileMapper.rangeResolvedProjectReference(f)
}
func (p *Program) RangeResolvedProjectReferenceInChildConfig(
childConfig *tsoptions.ParsedCommandLine,
f func(path tspath.Path, config *tsoptions.ParsedCommandLine, parent *tsoptions.ParsedCommandLine, index int) bool,
) bool {
return p.projectReferenceFileMapper.rangeResolvedProjectReferenceInChildConfig(childConfig, f)
}
// UseCaseSensitiveFileNames implements checker.Program.
func (p *Program) UseCaseSensitiveFileNames() bool {
return p.Host().FS().UseCaseSensitiveFileNames()
}
func (p *Program) UsesUriStyleNodeCoreModules() core.Tristate {
return p.usesUriStyleNodeCoreModules
}
var _ checker.Program = (*Program)(nil)
/** This should have similar behavior to 'processSourceFile' without diagnostics or mutation. */
func (p *Program) GetSourceFileFromReference(origin *ast.SourceFile, ref *ast.FileReference) *ast.SourceFile {
// TODO: The module loader in corsa is fairly different than strada, it should probably be able to expose this functionality at some point,
// rather than redoing the logic approximately here, since most of the related logic now lives in module.Resolver
// Still, without the failed lookup reporting that only the loader does, this isn't terribly complicated
fileName := tspath.ResolvePath(tspath.GetDirectoryPath(origin.FileName()), ref.FileName)
supportedExtensionsBase := tsoptions.GetSupportedExtensions(p.Options(), nil /*extraFileExtensions*/)
supportedExtensions := tsoptions.GetSupportedExtensionsWithJsonIfResolveJsonModule(p.Options(), supportedExtensionsBase)
allowNonTsExtensions := p.Options().AllowNonTsExtensions.IsTrue()
if tspath.HasExtension(fileName) {
if !allowNonTsExtensions {
canonicalFileName := tspath.GetCanonicalFileName(fileName, p.UseCaseSensitiveFileNames())
supported := false
for _, group := range supportedExtensions {
if tspath.FileExtensionIsOneOf(canonicalFileName, group) {
supported = true
break
}
}
if !supported {
return nil // unsupported extensions are forced to fail
}
}
return p.GetSourceFileForResolvedModule(fileName)
}
if allowNonTsExtensions {
extensionless := p.GetSourceFileForResolvedModule(fileName)
if extensionless != nil {
return extensionless
}
}
// Only try adding extensions from the first supported group (which should be .ts/.tsx/.d.ts)
for _, ext := range supportedExtensions[0] {
result := p.GetSourceFileForResolvedModule(fileName + ext)
if result != nil {
return result
}
}
return nil
}
func NewProgram(opts ProgramOptions) *Program {
p := &Program{opts: opts}
if p.opts.Tracing != nil {
defer p.opts.Tracing.Push(tracing.PhaseProgram, "createProgram", map[string]any{"configFilePath": opts.Config.CompilerOptions().ConfigFilePath}, true)()
}
p.processedFiles = processAllProgramFiles(p.opts, p.SingleThreaded())
p.initCheckerPool()
p.verifyCompilerOptions()
return p
}
// Return an updated program for which it is known that only the file with the given path has changed.
// In addition to a new program, return a boolean indicating whether the data of the old program was reused.
// createCheckerPool, if non-nil, overrides the CreateCheckerPool stored in the old program's options,
// ensuring each caller uses a fresh closure and avoiding data races on captured variables.
// The returned *ast.SourceFile is the changed file as acquired through newHost; it is nil
// only if the host cannot locate the file (e.g. it was deleted). Callers that manage
// host-side parse caches must release this exact pointer when the old program could not be
// reused, since it was acquired speculatively before that decision was made.
func (p *Program) UpdateProgram(changedFilePath tspath.Path, newHost CompilerHost, createCheckerPool func(*Program) CheckerPool) (*Program, *ast.SourceFile, bool) {
newOpts := p.opts
newOpts.Host = newHost
if createCheckerPool != nil {
newOpts.CreateCheckerPool = createCheckerPool
}
oldFile := p.filesByPath[changedFilePath]
newFile := newHost.GetSourceFile(oldFile.ParseOptions())
// If this file is part of a package redirect group (same package installed in multiple
// node_modules locations), we need to rebuild the program because the redirect targets
// might need recalculation.
_, inRedirectFiles := p.redirectFilesByPath[changedFilePath]
_, isRedirectTarget := p.redirectTargetsMap[changedFilePath]
if inRedirectFiles || isRedirectTarget {
return NewProgram(newOpts), newFile, false
}
if !canReplaceFileInProgram(oldFile, newFile) {
return NewProgram(newOpts), newFile, false
}
if oldNeedsImportHelpers := p.importHelpersImportSpecifiers[oldFile.Path()] != nil; oldNeedsImportHelpers != p.needsImportHelpersImportSpecifier(newFile) {
return NewProgram(newOpts), newFile, false
}
// TODO: reverify compiler options when config has changed?
result := &Program{
opts: newOpts,
comparePathsOptions: p.comparePathsOptions,
processedFiles: p.processedFiles,
usesUriStyleNodeCoreModules: p.usesUriStyleNodeCoreModules,
programDiagnostics: p.programDiagnostics,
hasEmitBlockingDiagnostics: p.hasEmitBlockingDiagnostics,
}
result.unresolvedImports.tryReuse(&p.unresolvedImports)
result.knownSymlinks.tryReuse(&p.knownSymlinks)
result.packageNames.tryReuse(&p.packageNames)
result.initCheckerPool()
index := core.FindIndex(result.files, func(file *ast.SourceFile) bool { return file.Path() == newFile.Path() })
result.files = slices.Clone(result.files)
result.files[index] = newFile
result.filesByPath = maps.Clone(result.filesByPath)
result.filesByPath[newFile.Path()] = newFile
updateFileIncludeProcessor(result)
return result, newFile, true
}
func (p *Program) initCheckerPool() {
if !p.finishedProcessing {
panic("Program must finish processing files before initializing checker pool")
}
if p.opts.CreateCheckerPool != nil {
p.checkerPool = p.opts.CreateCheckerPool(p)
} else {
pool := newCheckerPoolWithTracing(p, p.opts.Tracing)
p.checkerPool = pool
p.compilerCheckerPool = pool
}
}
// GetCheckerPool returns the checker pool associated with this program.
func (p *Program) GetCheckerPool() CheckerPool {
return p.checkerPool
}
func canReplaceFileInProgram(file1 *ast.SourceFile, file2 *ast.SourceFile) bool {
return file2 != nil &&
file1.ParseOptions() == file2.ParseOptions() &&
file1.UsesUriStyleNodeCoreModules == file2.UsesUriStyleNodeCoreModules &&
slices.EqualFunc(file1.Imports(), file2.Imports(), equalModuleSpecifiers) &&
slices.EqualFunc(file1.ModuleAugmentations, file2.ModuleAugmentations, equalModuleAugmentationNames) &&
slices.Equal(file1.AmbientModuleNames, file2.AmbientModuleNames) &&
slices.EqualFunc(file1.ReferencedFiles, file2.ReferencedFiles, equalFileReferences) &&
slices.EqualFunc(file1.TypeReferenceDirectives, file2.TypeReferenceDirectives, equalFileReferences) &&
slices.EqualFunc(file1.LibReferenceDirectives, file2.LibReferenceDirectives, equalFileReferences) &&
equalCheckJSDirectives(file1.CheckJsDirective, file2.CheckJsDirective)
}
func (p *Program) needsImportHelpersImportSpecifier(file *ast.SourceFile) bool {
redirect, _ := p.projectReferenceFileMapper.getRedirectForResolution(file)
optionsForFile := module.GetCompilerOptionsWithRedirect(p.opts.Config.CompilerOptions(), redirect)
if !optionsForFile.ImportHelpers.IsTrue() {
return false
}
isJavaScriptFile := ast.IsSourceFileJS(file)
isExternalModuleFile := ast.IsExternalModule(file)
if !isJavaScriptFile && (file.IsDeclarationFile || (!optionsForFile.GetIsolatedModules() && !isExternalModuleFile)) {
return false
}
return true
}
func equalModuleSpecifiers(n1 *ast.Node, n2 *ast.Node) bool {
return n1.Kind == n2.Kind && (!ast.IsStringLiteral(n1) || n1.Text() == n2.Text())
}
func equalModuleAugmentationNames(n1 *ast.Node, n2 *ast.Node) bool {
return n1.Kind == n2.Kind && n1.Text() == n2.Text()
}
func equalFileReferences(f1 *ast.FileReference, f2 *ast.FileReference) bool {
return f1.FileName == f2.FileName && f1.ResolutionMode == f2.ResolutionMode && f1.Preserve == f2.Preserve
}
func equalCheckJSDirectives(d1 *ast.CheckJsDirective, d2 *ast.CheckJsDirective) bool {
return d1 == nil && d2 == nil || d1 != nil && d2 != nil && d1.Enabled == d2.Enabled
}
func (p *Program) SourceFiles() []*ast.SourceFile { return p.files }
func (p *Program) DuplicateSourceFiles() []*DuplicateSourceFile { return p.duplicateSourceFiles }
func (p *Program) Options() *core.CompilerOptions { return p.opts.Config.CompilerOptions() }
func (p *Program) CommandLine() *tsoptions.ParsedCommandLine { return p.opts.Config }
func (p *Program) Host() CompilerHost { return p.opts.Host }
func (p *Program) Tracing() *tracing.Tracing { return p.opts.Tracing }
func (p *Program) GetConfigFileParsingDiagnostics() []*ast.Diagnostic {
return slices.Clip(p.opts.Config.GetConfigFileParsingDiagnostics())
}
// GetUnresolvedImports returns the unresolved imports for this program.
// The result is cached and computed only once.
func (p *Program) GetUnresolvedImports() *collections.Set[string] {
return p.unresolvedImports.getValue(p.extractUnresolvedImports)
}
func (p *Program) extractUnresolvedImports() *collections.Set[string] {
unresolvedSet := &collections.Set[string]{}
for _, sourceFile := range p.files {
unresolvedImports := p.extractUnresolvedImportsFromSourceFile(sourceFile)
for _, imp := range unresolvedImports {
unresolvedSet.Add(imp)
}
}
return unresolvedSet
}
func (p *Program) extractUnresolvedImportsFromSourceFile(file *ast.SourceFile) []string {
var unresolvedImports []string
resolvedModules := p.resolvedModules[file.Path()]
for cacheKey, resolution := range resolvedModules {
resolved := resolution.IsResolved()
if (!resolved || !tspath.ExtensionIsOneOf(resolution.Extension, tspath.SupportedTSExtensionsWithJsonFlat)) &&
!tspath.IsExternalModuleNameRelative(cacheKey.Name) {
unresolvedImports = append(unresolvedImports, cacheKey.Name)
}
}
return unresolvedImports
}
func (p *Program) SingleThreaded() bool {
return p.opts.SingleThreaded.DefaultIfUnknown(p.Options().SingleThreaded).IsTrue()
}
func (p *Program) BindSourceFiles() {
wg := core.NewWorkGroup(p.SingleThreaded())
for _, file := range p.files {
if !file.IsBound() {
wg.Queue(func() {
if p.opts.Tracing != nil {
defer p.opts.Tracing.Push(tracing.PhaseBind, "bindSourceFile", map[string]any{"path": string(file.Path())}, true)()
}
binder.BindSourceFile(file)
})
}
}
wg.RunAndWait()
}
// Return the type checker associated with the program.
func (p *Program) GetTypeChecker(ctx context.Context) (*checker.Checker, func()) {
if p.compilerCheckerPool != nil {
return p.compilerCheckerPool.getCheckerNonExclusive()
}
return p.checkerPool.GetChecker(ctx, nil)
}
func (p *Program) ForEachCheckerParallel(cb func(idx int, c *checker.Checker)) {
if p.compilerCheckerPool != nil {
p.compilerCheckerPool.forEachCheckerParallel(cb)
}
}
// Return a checker for the given file. We may have multiple checkers in concurrent scenarios and this
// method returns the checker that was tasked with checking the file. Note that it isn't possible to mix
// types obtained from different checkers, so only non-type data (such as diagnostics or string
// representations of types) should be obtained from checkers returned by this method.
func (p *Program) GetTypeCheckerForFile(ctx context.Context, file *ast.SourceFile) (*checker.Checker, func()) {
if p.compilerCheckerPool != nil {
return p.compilerCheckerPool.getCheckerForFileNonExclusive(file)
}
return p.checkerPool.GetChecker(ctx, file)
}
// Return a checker for the given file, locked to the current thread to prevent data races from multiple threads
// accessing the same checker. The lock will be released when the `done` function is called.
func (p *Program) GetTypeCheckerForFileExclusive(ctx context.Context, file *ast.SourceFile) (*checker.Checker, func()) {
if p.compilerCheckerPool != nil {
return p.compilerCheckerPool.getCheckerForFileExclusive(ctx, file)
}
return p.checkerPool.GetChecker(ctx, file)
}
func (p *Program) GetResolvedModule(file ast.HasFileName, moduleReference string, mode core.ResolutionMode) *module.ResolvedModule {
if resolutions, ok := p.resolvedModules[file.Path()]; ok {
if resolved, ok := resolutions[module.ModeAwareCacheKey{Name: moduleReference, Mode: mode}]; ok {
return resolved
}
}
return nil
}
func (p *Program) GetResolvedModuleFromModuleSpecifier(file ast.HasFileName, moduleSpecifier *ast.StringLiteralLike) *module.ResolvedModule {
if !ast.IsStringLiteralLike(moduleSpecifier) {
panic("moduleSpecifier must be a StringLiteralLike")
}
mode := p.GetModeForUsageLocation(file, moduleSpecifier)
return p.GetResolvedModule(file, moduleSpecifier.Text(), mode)
}
func (p *Program) GetResolvedModules() map[tspath.Path]module.ModeAwareCache[*module.ResolvedModule] {
return p.resolvedModules
}
// GetPackagesMap returns a lazily-cached map of package names to whether they bundle types.
// This is used by incremental diagnostic repopulation.
func (p *Program) GetPackagesMap() map[string]bool {
p.packagesMapOnce.Do(func() {
p.packagesMap = make(map[string]bool)
for _, resolvedModulesInFile := range p.resolvedModules {
for _, mod := range resolvedModulesInFile {
if mod.PackageId.Name != "" {
p.packagesMap[mod.PackageId.Name] = p.packagesMap[mod.PackageId.Name] || mod.Extension == tspath.ExtensionDts
}
}
}
})
return p.packagesMap
}
// collectDiagnostics collects diagnostics from a single file or all files.
// If sourceFile is non-nil, returns diagnostics for just that file.
// If sourceFile is nil, returns diagnostics for all files in the program.
func (p *Program) collectDiagnostics(ctx context.Context, sourceFile *ast.SourceFile, concurrent bool, collect func(context.Context, *ast.SourceFile) []*ast.Diagnostic) []*ast.Diagnostic {
var result []*ast.Diagnostic
if sourceFile != nil {
result = collect(ctx, sourceFile)
} else {
diagnostics := p.collectDiagnosticsFromFiles(ctx, p.files, concurrent, collect)
result = slices.Concat(diagnostics...)
}
return SortAndDeduplicateDiagnostics(result)
}
func (p *Program) collectDiagnosticsFromFiles(ctx context.Context, sourceFiles []*ast.SourceFile, concurrent bool, collect func(context.Context, *ast.SourceFile) []*ast.Diagnostic) [][]*ast.Diagnostic {
diagnostics := make([][]*ast.Diagnostic, len(sourceFiles))
wg := core.NewWorkGroup(!concurrent || p.SingleThreaded())
for i, file := range sourceFiles {
wg.Queue(func() {
diagnostics[i] = collect(ctx, file)
})
}
wg.RunAndWait()
return diagnostics
}
// collectCheckerDiagnostics collects diagnostics from a single file or all files,
// using a callback that receives the checker for each file. When the checker pool
// supports grouped iteration (compiler pool), files are grouped by checker and
// processed in parallel with one task per checker, reducing contention and improving
// cache locality. Otherwise, falls back to per-file concurrent collection.
func (p *Program) collectCheckerDiagnostics(ctx context.Context, sourceFile *ast.SourceFile, collect func(context.Context, *checker.Checker, *ast.SourceFile) []*ast.Diagnostic) []*ast.Diagnostic {
if sourceFile != nil {
if p.SkipTypeChecking(sourceFile, false) {
return nil
}
c, done := p.GetTypeCheckerForFileExclusive(ctx, sourceFile)
result := collect(ctx, c, sourceFile)
done()
return SortAndDeduplicateDiagnostics(result)
}
return SortAndDeduplicateDiagnostics(slices.Concat(p.collectCheckerDiagnosticsFromFiles(ctx, p.files, collect)...))
}
// collectCheckerDiagnosticsFromFiles collects checker diagnostics for a list of files.
func (p *Program) collectCheckerDiagnosticsFromFiles(ctx context.Context, sourceFiles []*ast.SourceFile, collect func(context.Context, *checker.Checker, *ast.SourceFile) []*ast.Diagnostic) [][]*ast.Diagnostic {
diagnostics := make([][]*ast.Diagnostic, len(sourceFiles))
if p.compilerCheckerPool != nil {
p.compilerCheckerPool.forEachCheckerGroupDo(ctx, sourceFiles, p.SingleThreaded(), func(c *checker.Checker, fileIndex int, file *ast.SourceFile) {
diagnostics[fileIndex] = collect(ctx, c, file)
})
} else {
wg := core.NewWorkGroup(p.SingleThreaded())
for i, file := range sourceFiles {
if p.SkipTypeChecking(file, false) {
continue
}
wg.Queue(func() {
c, done := p.checkerPool.GetChecker(ctx, file)
diagnostics[i] = collect(ctx, c, file)
done()
})
}
wg.RunAndWait()
}
return diagnostics
}
func (p *Program) GetSyntacticDiagnostics(ctx context.Context, sourceFile *ast.SourceFile) []*ast.Diagnostic {
return p.collectDiagnostics(ctx, sourceFile, false /*concurrent*/, func(_ context.Context, file *ast.SourceFile) []*ast.Diagnostic {
diags := core.Concatenate(file.Diagnostics(), file.JSDiagnostics())
// For JS files that won't be checked by the checker (no checkJs/ts-check), we need
// program-level syntactic checks that require compiler options. This mirrors Strada's
// getJSSyntacticDiagnosticsForFile in program.ts.
if ast.IsSourceFileJS(file) && !ast.IsCheckJSEnabledForFile(file, p.Options()) {
diags = append(diags, getAdditionalJSSyntacticDiagnostics(file, p.Options())...)
}
return diags
})
}
// getAdditionalJSSyntacticDiagnostics produces option-dependent syntactic diagnostics for JS files
// that aren't covered by the parser or the checker. In Strada, the equivalent logic lives in
// getJSSyntacticDiagnosticsForFile in program.ts. In Corsa, most of that function's checks were
// moved into the parser (checkJSSyntax/checkJSDecoratorSyntax), but checks that depend on compiler
// options can't live in the parser and must remain here. The checker handles these for checked files,
// but doesn't run on unchecked JS files (no checkJs/ts-check).
func getAdditionalJSSyntacticDiagnostics(file *ast.SourceFile, options *core.CompilerOptions) []*ast.Diagnostic {
if options.ExperimentalDecorators.IsTrue() {
return nil
}
var diags []*ast.Diagnostic
// Parameter decorators are only valid with experimentalDecorators. Without it,
// the checker would report this, but the checker doesn't run on unchecked JS files.
var walk ast.Visitor
walk = func(node *ast.Node) bool {
if node.SubtreeFacts()&ast.SubtreeContainsDecorators == 0 {
return false
}
if node.Kind == ast.KindParameter && ast.HasDecorators(node) {
decorator := core.Find(node.ModifierNodes(), ast.IsDecorator)
if decorator != nil {
diags = append(diags, ast.NewDiagnostic(file, decorator.Loc, diagnostics.Decorators_are_not_valid_here))
}
}
node.ForEachChild(walk)
return false
}
file.AsNode().ForEachChild(walk)
return diags
}
func (p *Program) GetBindDiagnostics(ctx context.Context, sourceFile *ast.SourceFile) []*ast.Diagnostic {
if sourceFile != nil {
binder.BindSourceFile(sourceFile)
} else {
p.BindSourceFiles()
}
return p.collectDiagnostics(ctx, sourceFile, false /*concurrent*/, func(_ context.Context, file *ast.SourceFile) []*ast.Diagnostic {
return file.BindDiagnostics()
})
}
func (p *Program) GetSemanticDiagnostics(ctx context.Context, sourceFile *ast.SourceFile) []*ast.Diagnostic {
return p.collectCheckerDiagnostics(ctx, sourceFile, p.getSemanticDiagnosticsWithChecker)
}
func (p *Program) GetSemanticDiagnosticsWithoutNoEmitFiltering(ctx context.Context, sourceFiles []*ast.SourceFile) map[*ast.SourceFile][]*ast.Diagnostic {
allDiags := p.collectCheckerDiagnosticsFromFiles(ctx, sourceFiles, p.getBindAndCheckDiagnosticsWithChecker)
result := make(map[*ast.SourceFile][]*ast.Diagnostic, len(sourceFiles))
for i, diags := range allDiags {
result[sourceFiles[i]] = SortAndDeduplicateDiagnostics(diags)
}
return result
}
func (p *Program) GetSuggestionDiagnostics(ctx context.Context, sourceFile *ast.SourceFile) []*ast.Diagnostic {
return p.collectCheckerDiagnostics(ctx, sourceFile, p.getSuggestionDiagnosticsWithChecker)
}
func (p *Program) GetProgramDiagnostics() []*ast.Diagnostic {
return SortAndDeduplicateDiagnostics(core.Concatenate(
p.programDiagnostics,
p.includeProcessor.getDiagnostics(p).GetGlobalDiagnostics(),
))
}
func (p *Program) GetIncludeProcessorDiagnostics(sourceFile *ast.SourceFile) []*ast.Diagnostic {
if p.SkipTypeChecking(sourceFile, false) {
return nil
}
filtered, _ := p.getDiagnosticsWithPrecedingDirectives(sourceFile, p.includeProcessor.getDiagnostics(p).GetDiagnosticsForFile(sourceFile.FileName()))
return filtered
}
func (p *Program) SkipTypeChecking(sourceFile *ast.SourceFile, ignoreNoCheck bool) bool {
return (!ignoreNoCheck && p.Options().NoCheck.IsTrue()) ||
p.Options().SkipLibCheck.IsTrue() && sourceFile.IsDeclarationFile ||
p.Options().SkipDefaultLibCheck.IsTrue() && p.IsSourceFileDefaultLibrary(sourceFile.Path()) ||
p.IsSourceFromProjectReference(sourceFile.Path()) ||
!p.canIncludeBindAndCheckDiagnostics(sourceFile)
}
func (p *Program) canIncludeBindAndCheckDiagnostics(sourceFile *ast.SourceFile) bool {
if sourceFile.CheckJsDirective != nil && !sourceFile.CheckJsDirective.Enabled {
return false
}
if sourceFile.ScriptKind == core.ScriptKindTS || sourceFile.ScriptKind == core.ScriptKindTSX || sourceFile.ScriptKind == core.ScriptKindExternal {
return true
}
isJS := sourceFile.ScriptKind == core.ScriptKindJS || sourceFile.ScriptKind == core.ScriptKindJSX
isCheckJS := isJS && ast.IsCheckJSEnabledForFile(sourceFile, p.Options())
isPlainJS := ast.IsPlainJSFile(sourceFile, p.Options().CheckJs)
// By default, only type-check .ts, .tsx, Deferred, plain JS, checked JS and External
// - plain JS: .js files with no // ts-check and checkJs: undefined
// - check JS: .js files with either // ts-check or checkJs: true
// - external: files that are added by plugins
return isPlainJS || isCheckJS || sourceFile.ScriptKind == core.ScriptKindDeferred
}
func (p *Program) getSourceFilesToEmit(targetSourceFile *ast.SourceFile, forceDtsEmit bool) []*ast.SourceFile {
if targetSourceFile == nil && !forceDtsEmit {
p.sourceFilesToEmitOnce.Do(func() {
p.sourceFilesToEmit = getSourceFilesToEmit(p, nil, false)
})
return p.sourceFilesToEmit
}
return getSourceFilesToEmit(p, targetSourceFile, forceDtsEmit)
}
func (p *Program) verifyCompilerOptions() {
options := p.Options()
sourceFile := core.Memoize(func() *ast.SourceFile {
configFile := p.opts.Config.ConfigFile
if configFile == nil {
return nil
}
return configFile.SourceFile
})
configFilePath := core.Memoize(func() string {
file := sourceFile()
if file != nil {
return file.FileName()
}
return ""
})
getCompilerOptionsPropertySyntax := core.Memoize(func() *ast.PropertyAssignment {
return tsoptions.ForEachTsConfigPropArray(sourceFile(), "compilerOptions", core.Identity)
})
getCompilerOptionsObjectLiteralSyntax := core.Memoize(func() *ast.ObjectLiteralExpression {
compilerOptionsProperty := getCompilerOptionsPropertySyntax()
if compilerOptionsProperty != nil &&
compilerOptionsProperty.Initializer != nil &&
ast.IsObjectLiteralExpression(compilerOptionsProperty.Initializer) {
return compilerOptionsProperty.Initializer.AsObjectLiteralExpression()
}
return nil
})
createOptionDiagnosticInObjectLiteralSyntax := func(objectLiteral *ast.ObjectLiteralExpression, onKey bool, key1 string, key2 string, message *diagnostics.Message, args ...any) *ast.Diagnostic {
diag := tsoptions.ForEachPropertyAssignment(objectLiteral, key1, func(property *ast.PropertyAssignment) *ast.Diagnostic {
return tsoptions.CreateDiagnosticForNodeInSourceFile(sourceFile(), core.IfElse(onKey, property.Name(), property.Initializer), message, args...)
}, key2)
if diag != nil {
p.programDiagnostics = append(p.programDiagnostics, diag)
}
return diag
}
createCompilerOptionsDiagnostic := func(message *diagnostics.Message, args ...any) *ast.Diagnostic {
compilerOptionsProperty := getCompilerOptionsPropertySyntax()
var diag *ast.Diagnostic
if compilerOptionsProperty != nil {
diag = tsoptions.CreateDiagnosticForNodeInSourceFile(sourceFile(), compilerOptionsProperty.Name(), message, args...)
} else {
diag = ast.NewCompilerDiagnostic(message, args...)
}
p.programDiagnostics = append(p.programDiagnostics, diag)
return diag
}
createDiagnosticForOption := func(onKey bool, option1 string, option2 string, message *diagnostics.Message, args ...any) *ast.Diagnostic {
diag := createOptionDiagnosticInObjectLiteralSyntax(getCompilerOptionsObjectLiteralSyntax(), onKey, option1, option2, message, args...)
if diag == nil {
diag = createCompilerOptionsDiagnostic(message, args...)
}
return diag
}
createDiagnosticForOptionName := func(message *diagnostics.Message, option1 string, option2 string, args ...any) {
newArgs := make([]any, 0, len(args)+2)
newArgs = append(newArgs, option1, option2)
newArgs = append(newArgs, args...)
createDiagnosticForOption(true /*onKey*/, option1, option2, message, newArgs...)
}
createOptionValueDiagnostic := func(option1 string, message *diagnostics.Message, args ...any) {
createDiagnosticForOption(false /*onKey*/, option1, "", message, args...)
}
createRemovedOptionDiagnostic := func(name string, value string, useInstead string) {
var message *diagnostics.Message
var args []any
if value == "" {
message = diagnostics.Option_0_has_been_removed_Please_remove_it_from_your_configuration
args = []any{name}
} else {
message = diagnostics.Option_0_1_has_been_removed_Please_remove_it_from_your_configuration
args = []any{name, value}
}
diag := createDiagnosticForOption(value == "", name, "", message, args...)
if useInstead != "" {
diag.AddMessageChain(ast.NewCompilerDiagnostic(diagnostics.Use_0_instead, useInstead))
}
}
// Removed in TS7
if options.BaseUrl != "" {
// BaseUrl will have been turned absolute by this point.
var useInstead string
if configFilePath() != "" {
relative := tspath.GetRelativePathFromFile(configFilePath(), options.BaseUrl, p.comparePathsOptions)
if !(strings.HasPrefix(relative, "./") || strings.HasPrefix(relative, "../")) {
relative = "./" + relative
}
suggestion := tspath.CombinePaths(relative, "*")
useInstead = fmt.Sprintf(`"paths": {"*": [%s]}`, core.Must(json.Marshal(suggestion)))
}
createRemovedOptionDiagnostic("baseUrl", "", useInstead)
}
if options.OutFile != "" {
createRemovedOptionDiagnostic("outFile", "", "")
}
if options.Target == core.ScriptTargetES5 {
createRemovedOptionDiagnostic("target", "ES5", "")
}
if options.Module == core.ModuleKindAMD {
createRemovedOptionDiagnostic("module", "AMD", "")
}
if options.Module == core.ModuleKindSystem {
createRemovedOptionDiagnostic("module", "System", "")
}
if options.Module == core.ModuleKindUMD {
createRemovedOptionDiagnostic("module", "UMD", "")
}
if options.ModuleResolution == core.ModuleResolutionKindClassic {
createRemovedOptionDiagnostic("moduleResolution", "Classic", "")
}
if options.AlwaysStrict.IsFalse() {
createRemovedOptionDiagnostic("alwaysStrict", "false", "")
}
if options.ESModuleInterop.IsFalse() {
createRemovedOptionDiagnostic("esModuleInterop", "false", "")
}
if options.AllowSyntheticDefaultImports.IsFalse() {
createRemovedOptionDiagnostic("allowSyntheticDefaultImports", "false", "")
}
if options.ModuleResolution == core.ModuleResolutionKindNode10 {
createRemovedOptionDiagnostic("moduleResolution", "node10", "")
}
if !options.DownlevelIteration.IsUnknown() {
createRemovedOptionDiagnostic("downlevelIteration", "", "")
}
if options.StrictPropertyInitialization.IsTrue() && !options.GetStrictOptionValue(options.StrictNullChecks) {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1, "strictPropertyInitialization", "strictNullChecks")
}
if options.ExactOptionalPropertyTypes.IsTrue() && !options.GetStrictOptionValue(options.StrictNullChecks) {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1, "exactOptionalPropertyTypes", "strictNullChecks")
}
if options.IsolatedDeclarations.IsTrue() {
if options.GetAllowJS() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_with_option_1, "allowJs", "isolatedDeclarations")
}
if !options.GetEmitDeclarations() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1_or_option_2, "isolatedDeclarations", "declaration", "composite")
}
}
if options.InlineSourceMap.IsTrue() {
if options.SourceMap.IsTrue() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_with_option_1, "sourceMap", "inlineSourceMap")
}
if options.MapRoot != "" {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_with_option_1, "mapRoot", "inlineSourceMap")
}
}
if options.Composite.IsTrue() {
if options.Declaration.IsFalse() {
createDiagnosticForOptionName(diagnostics.Composite_projects_may_not_disable_declaration_emit, "declaration", "")
}
if options.Incremental.IsFalse() {
createDiagnosticForOptionName(diagnostics.Composite_projects_may_not_disable_incremental_compilation, "declaration", "")
}
}
if options.TsBuildInfoFile == "" && options.Incremental.IsTrue() && options.ConfigFilePath == "" {
createCompilerOptionsDiagnostic(diagnostics.Option_incremental_is_only_valid_with_a_known_configuration_file_like_tsconfig_json_or_when_tsBuildInfoFile_is_explicitly_provided)
}
p.verifyProjectReferences()
if options.Composite.IsTrue() {
var rootPaths collections.Set[tspath.Path]
for _, fileName := range p.opts.Config.FileNames() {
rootPaths.Add(p.toPath(fileName))
}
for _, file := range p.files {
if sourceFileMayBeEmitted(file, p, false) && !rootPaths.Has(file.Path()) {
p.includeProcessor.addProcessingDiagnostic(&processingDiagnostic{
kind: processingDiagnosticKindExplainingFileInclude,
data: &includeExplainingDiagnostic{
file: file.Path(),
message: diagnostics.File_0_is_not_listed_within_the_file_list_of_project_1_Projects_must_list_all_files_or_use_an_include_pattern,
args: []any{file.FileName(), configFilePath()},
},
})
}
}
}
forEachOptionPathsSyntax := func(callback func(*ast.PropertyAssignment) *ast.Diagnostic) *ast.Diagnostic {
return tsoptions.ForEachPropertyAssignment(getCompilerOptionsObjectLiteralSyntax(), "paths", callback)
}
createDiagnosticForOptionPaths := func(onKey bool, key string, message *diagnostics.Message, args ...any) *ast.Diagnostic {
diag := forEachOptionPathsSyntax(func(pathProp *ast.PropertyAssignment) *ast.Diagnostic {
if ast.IsObjectLiteralExpression(pathProp.Initializer) {
return createOptionDiagnosticInObjectLiteralSyntax(pathProp.Initializer.AsObjectLiteralExpression(), onKey, key, "", message, args...)
}
return nil
})
if diag == nil {
diag = createCompilerOptionsDiagnostic(message, args...)
}
return diag
}
createDiagnosticForOptionPathKeyValue := func(key string, valueIndex int, message *diagnostics.Message, args ...any) *ast.Diagnostic {
diag := forEachOptionPathsSyntax(func(pathProp *ast.PropertyAssignment) *ast.Diagnostic {
if ast.IsObjectLiteralExpression(pathProp.Initializer) {
return tsoptions.ForEachPropertyAssignment(pathProp.Initializer.AsObjectLiteralExpression(), key, func(keyProps *ast.PropertyAssignment) *ast.Diagnostic {
initializer := keyProps.Initializer
if ast.IsArrayLiteralExpression(initializer) {
elements := initializer.ElementList()
if elements != nil && len(elements.Nodes) > valueIndex {
diag := tsoptions.CreateDiagnosticForNodeInSourceFile(sourceFile(), elements.Nodes[valueIndex], message, args...)
p.programDiagnostics = append(p.programDiagnostics, diag)
return diag
}
}
return nil
})
}
return nil
})
if diag == nil {
diag = createCompilerOptionsDiagnostic(message, args...)
}
return diag
}
for key, value := range options.Paths.Entries() {
// !!! This code does not handle cases where where the path mappings have the wrong types,
// as that information is mostly lost during the parsing process.
if !hasZeroOrOneAsteriskCharacter(key) {
createDiagnosticForOptionPaths(true /*onKey*/, key, diagnostics.Pattern_0_can_have_at_most_one_Asterisk_character, key)
}
if value == nil {
createDiagnosticForOptionPaths(false /*onKey*/, key, diagnostics.Substitutions_for_pattern_0_should_be_an_array, key)
} else if len(value) == 0 {
createDiagnosticForOptionPaths(false /*onKey*/, key, diagnostics.Substitutions_for_pattern_0_shouldn_t_be_an_empty_array, key)
}
for i, subst := range value {
if !hasZeroOrOneAsteriskCharacter(subst) {
createDiagnosticForOptionPathKeyValue(key, i, diagnostics.Substitution_0_in_pattern_1_can_have_at_most_one_Asterisk_character, subst, key)
}
if !tspath.PathIsRelative(subst) && !tspath.PathIsAbsolute(subst) {
createDiagnosticForOptionPathKeyValue(key, i, diagnostics.Non_relative_paths_are_not_allowed_Did_you_forget_a_leading_Slash)
}
}
}
if options.SourceMap.IsFalseOrUnknown() && options.InlineSourceMap.IsFalseOrUnknown() {
if options.InlineSources.IsTrue() {
createDiagnosticForOptionName(diagnostics.Option_0_can_only_be_used_when_either_option_inlineSourceMap_or_option_sourceMap_is_provided, "inlineSources", "")
}
if options.SourceRoot != "" {
createDiagnosticForOptionName(diagnostics.Option_0_can_only_be_used_when_either_option_inlineSourceMap_or_option_sourceMap_is_provided, "sourceRoot", "")
}
}
if options.MapRoot != "" && !(options.SourceMap.IsTrue() || options.DeclarationMap.IsTrue()) {
// Error to specify --mapRoot without --sourcemap
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1_or_option_2, "mapRoot", "sourceMap", "declarationMap")
}
if options.DeclarationDir != "" {
if !options.GetEmitDeclarations() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1_or_option_2, "declarationDir", "declaration", "composite")
}
}
if options.DeclarationMap.IsTrue() && !options.GetEmitDeclarations() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1_or_option_2, "declarationMap", "declaration", "composite")
}
if options.Lib != nil && options.NoLib.IsTrue() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_with_option_1, "lib", "noLib")
}
if options.IsolatedModules.IsTrue() || options.VerbatimModuleSyntax.IsTrue() {
if options.PreserveConstEnums.IsFalse() {
createDiagnosticForOptionName(diagnostics.Option_preserveConstEnums_cannot_be_disabled_when_0_is_enabled, core.IfElse(options.VerbatimModuleSyntax.IsTrue(), "verbatimModuleSyntax", "isolatedModules"), "preserveConstEnums")
}
}
if options.OutDir != "" ||
options.RootDir != "" ||
options.SourceRoot != "" ||
options.MapRoot != "" ||
(options.GetEmitDeclarations() && options.DeclarationDir != "") {
// !!! sheetal checkSourceFilesBelongToPath - for root Dir and configFile - explaining why file is in the program
dir := p.CommonSourceDirectory()
if options.OutDir != "" && dir == "" && core.Some(p.files, func(f *ast.SourceFile) bool { return tspath.GetRootLength(f.FileName()) > 1 }) {
createDiagnosticForOptionName(diagnostics.Cannot_find_the_common_subdirectory_path_for_the_input_files, "outDir", "")
}
}
if !options.NoEmit.IsTrue() &&
!options.Composite.IsTrue() &&
options.RootDir == "" &&
options.ConfigFilePath != "" &&
(options.OutDir != "" ||
(options.GetEmitDeclarations() && options.DeclarationDir != "") ||
options.OutFile != "") {
// Check if rootDir inferred changed and issue diagnostic
dir := p.CommonSourceDirectory()
var emittedFiles []string
for _, file := range p.files {
if !file.IsDeclarationFile && sourceFileMayBeEmitted(file, p, false) {
emittedFiles = append(emittedFiles, file.FileName())
}
}
dir59 := outputpaths.GetComputedCommonSourceDirectory(emittedFiles, p.GetCurrentDirectory(), p.UseCaseSensitiveFileNames())
if dir59 != "" && tspath.GetCanonicalFileName(dir, p.UseCaseSensitiveFileNames()) != tspath.GetCanonicalFileName(dir59, p.UseCaseSensitiveFileNames()) {
// change in layout
var option1 string
if options.OutFile != "" {
option1 = "outFile"
} else if options.OutDir != "" {
option1 = "outDir"
} else {
option1 = "declarationDir"
}
var option2 string
if options.OutFile == "" && options.OutDir != "" {
option2 = "declarationDir"
}
diag := createDiagnosticForOption(
true, /*onKey*/
option1,
option2,
diagnostics.The_common_source_directory_of_0_is_1_The_rootDir_setting_must_be_explicitly_set_to_this_or_another_path_to_adjust_your_output_s_file_layout,
tspath.GetBaseFileName(options.ConfigFilePath),
tspath.GetRelativePathFromFile(options.ConfigFilePath, dir59, p.comparePathsOptions),
)
diag.AddMessageChain(ast.NewCompilerDiagnostic(diagnostics.Visit_https_Colon_Slash_Slashaka_ms_Slashts6_for_migration_information))
}
}
if options.CheckJs.IsTrue() && !options.GetAllowJS() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1, "checkJs", "allowJs")
}
if options.EmitDeclarationOnly.IsTrue() {
if !options.GetEmitDeclarations() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1_or_option_2, "emitDeclarationOnly", "declaration", "composite")
}
}
if options.EmitDecoratorMetadata.IsTrue() && options.ExperimentalDecorators.IsFalseOrUnknown() {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1, "emitDecoratorMetadata", "experimentalDecorators")
}
if options.JsxFactory != "" {
if options.ReactNamespace != "" {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_with_option_1, "reactNamespace", "jsxFactory")
}
if options.Jsx == core.JsxEmitReactJSX || options.Jsx == core.JsxEmitReactJSXDev {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_when_option_jsx_is_1, "jsxFactory", options.Jsx.String())
}
if parser.ParseIsolatedEntityName(options.JsxFactory) == nil {
createOptionValueDiagnostic("jsxFactory", diagnostics.Invalid_value_for_jsxFactory_0_is_not_a_valid_identifier_or_qualified_name, options.JsxFactory)
}
} else if options.ReactNamespace != "" && !scanner.IsIdentifierText(options.ReactNamespace, core.LanguageVariantStandard) {
createOptionValueDiagnostic("reactNamespace", diagnostics.Invalid_value_for_reactNamespace_0_is_not_a_valid_identifier, options.ReactNamespace)
}
if options.JsxFragmentFactory != "" {
if options.JsxFactory == "" {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_without_specifying_option_1, "jsxFragmentFactory", "jsxFactory")
}
if options.Jsx == core.JsxEmitReactJSX || options.Jsx == core.JsxEmitReactJSXDev {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_when_option_jsx_is_1, "jsxFragmentFactory", options.Jsx.String())
}
if parser.ParseIsolatedEntityName(options.JsxFragmentFactory) == nil {
createOptionValueDiagnostic("jsxFragmentFactory", diagnostics.Invalid_value_for_jsxFragmentFactory_0_is_not_a_valid_identifier_or_qualified_name, options.JsxFragmentFactory)
}
}
if options.ReactNamespace != "" {
if options.Jsx == core.JsxEmitReactJSX || options.Jsx == core.JsxEmitReactJSXDev {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_when_option_jsx_is_1, "reactNamespace", options.Jsx.String())
}
}
if options.JsxImportSource != "" {
if options.Jsx == core.JsxEmitReact {
createDiagnosticForOptionName(diagnostics.Option_0_cannot_be_specified_when_option_jsx_is_1, "jsxImportSource", options.Jsx.String())
}
}
moduleKind := options.GetEmitModuleKind()
if options.AllowImportingTsExtensions.IsTrue() && !(options.NoEmit.IsTrue() || options.EmitDeclarationOnly.IsTrue() || options.RewriteRelativeImportExtensions.IsTrue()) {
createOptionValueDiagnostic("allowImportingTsExtensions", diagnostics.Option_allowImportingTsExtensions_can_only_be_used_when_one_of_noEmit_emitDeclarationOnly_or_rewriteRelativeImportExtensions_is_set)
}
moduleResolution := options.GetModuleResolutionKind()
if options.ResolvePackageJsonExports.IsTrue() && !moduleResolutionSupportsPackageJsonExportsAndImports(moduleResolution) {
createDiagnosticForOptionName(diagnostics.Option_0_can_only_be_used_when_moduleResolution_is_set_to_node16_nodenext_or_bundler, "resolvePackageJsonExports", "")
}
if options.ResolvePackageJsonImports.IsTrue() && !moduleResolutionSupportsPackageJsonExportsAndImports(moduleResolution) {
createDiagnosticForOptionName(diagnostics.Option_0_can_only_be_used_when_moduleResolution_is_set_to_node16_nodenext_or_bundler, "resolvePackageJsonImports", "")
}
if options.CustomConditions != nil && !moduleResolutionSupportsPackageJsonExportsAndImports(moduleResolution) {
createDiagnosticForOptionName(diagnostics.Option_0_can_only_be_used_when_moduleResolution_is_set_to_node16_nodenext_or_bundler, "customConditions", "")
}
if moduleResolution == core.ModuleResolutionKindBundler && !emitModuleKindIsNonNodeESM(moduleKind) && moduleKind != core.ModuleKindPreserve && moduleKind != core.ModuleKindCommonJS {
createOptionValueDiagnostic("moduleResolution", diagnostics.Option_0_can_only_be_used_when_module_is_set_to_preserve_commonjs_or_es2015_or_later, "bundler")
}
if core.ModuleKindNode16 <= moduleKind && moduleKind <= core.ModuleKindNodeNext &&
!(core.ModuleResolutionKindNode16 <= moduleResolution && moduleResolution <= core.ModuleResolutionKindNodeNext) {
moduleKindName := moduleKind.String()
var moduleResolutionName string
if v, ok := core.ModuleKindToModuleResolutionKind[moduleKind]; ok {
moduleResolutionName = v.String()
} else {
moduleResolutionName = "Node16"
}
createOptionValueDiagnostic("moduleResolution", diagnostics.Option_moduleResolution_must_be_set_to_0_or_left_unspecified_when_option_module_is_set_to_1, moduleResolutionName, moduleKindName)
} else if core.ModuleResolutionKindNode16 <= moduleResolution && moduleResolution <= core.ModuleResolutionKindNodeNext &&
!(core.ModuleKindNode16 <= moduleKind && moduleKind <= core.ModuleKindNodeNext) {
moduleResolutionName := moduleResolution.String()
createOptionValueDiagnostic("module", diagnostics.Option_module_must_be_set_to_0_when_option_moduleResolution_is_set_to_1, moduleResolutionName, moduleResolutionName)
}
// !!! The below needs filesByName, which is not equivalent to p.filesByPath.
// If the emit is enabled make sure that every output file is unique and not overwriting any of the input files
if !options.NoEmit.IsTrue() && !options.SuppressOutputPathCheck.IsTrue() {
var emitFilesSeen collections.Set[string]
// Verify that all the emit files are unique and don't overwrite input files
verifyEmitFilePath := func(emitFileName string) {
if emitFileName != "" {
emitFilePath := p.toPath(emitFileName)
// Report error if the output overwrites input file
if _, ok := p.filesByPath[emitFilePath]; ok {
diag := ast.NewCompilerDiagnostic(diagnostics.Cannot_write_file_0_because_it_would_overwrite_input_file, emitFileName)
if configFilePath() == "" {
// The program is from either an inferred project or an external project
diag.AddMessageChain(ast.NewCompilerDiagnostic(diagnostics.Adding_a_tsconfig_json_file_will_help_organize_projects_that_contain_both_TypeScript_and_JavaScript_files_Learn_more_at_https_Colon_Slash_Slashaka_ms_Slashtsconfig))
}
p.blockEmittingOfFile(emitFileName, diag)
}
var emitFileKey string
if !p.Host().FS().UseCaseSensitiveFileNames() {
emitFileKey = tspath.ToFileNameLowerCase(string(emitFilePath))
} else {
emitFileKey = string(emitFilePath)
}
// Report error if multiple files write into same file
if emitFilesSeen.Has(emitFileKey) {
// Already seen the same emit file - report error
p.blockEmittingOfFile(emitFileName, ast.NewCompilerDiagnostic(diagnostics.Cannot_write_file_0_because_it_would_be_overwritten_by_multiple_input_files, emitFileName))
} else {
emitFilesSeen.Add(emitFileKey)
}
}
}
outputpaths.ForEachEmittedFile(p, options, func(emitFileNames *outputpaths.OutputPaths, sourceFile *ast.SourceFile) bool {
verifyEmitFilePath(emitFileNames.JsFilePath())
verifyEmitFilePath(emitFileNames.SourceMapFilePath())
verifyEmitFilePath(emitFileNames.DeclarationFilePath())
verifyEmitFilePath(emitFileNames.DeclarationMapPath())
return false
}, p.getSourceFilesToEmit(nil, false), false)
verifyEmitFilePath(p.opts.Config.GetBuildInfoFileName())
}
}
func (p *Program) blockEmittingOfFile(emitFileName string, diag *ast.Diagnostic) {
p.hasEmitBlockingDiagnostics.Add(p.toPath(emitFileName))
p.programDiagnostics = append(p.programDiagnostics, diag)
}
func (p *Program) IsEmitBlocked(emitFileName string) bool {
return p.hasEmitBlockingDiagnostics.Has(p.toPath(emitFileName))
}
func (p *Program) verifyProjectReferences() {
buildInfoFileName := core.IfElse(!p.Options().SuppressOutputPathCheck.IsTrue(), p.opts.Config.GetBuildInfoFileName(), "")
createDiagnosticForReference := func(config *tsoptions.ParsedCommandLine, index int, message *diagnostics.Message, args ...any) {
diag := tsoptions.CreateDiagnosticAtReferenceSyntax(config, index, message, args...)
if diag == nil {
diag = ast.NewCompilerDiagnostic(message, args...)
}
p.programDiagnostics = append(p.programDiagnostics, diag)
}
p.RangeResolvedProjectReference(func(path tspath.Path, config *tsoptions.ParsedCommandLine, parent *tsoptions.ParsedCommandLine, index int) bool {
ref := parent.ProjectReferences()[index]
// !!! Deprecated in 5.0 and removed since 5.5
// verifyRemovedProjectReference(ref, parent, index);
if config == nil {
createDiagnosticForReference(parent, index, diagnostics.File_0_not_found, ref.Path)
return true
}
refOptions := config.CompilerOptions()
if !refOptions.Composite.IsTrue() || refOptions.NoEmit.IsTrue() {
if len(parent.FileNames()) > 0 {
if !refOptions.Composite.IsTrue() {
createDiagnosticForReference(parent, index, diagnostics.Referenced_project_0_must_have_setting_composite_Colon_true, ref.Path)
}
if refOptions.NoEmit.IsTrue() {
createDiagnosticForReference(parent, index, diagnostics.Referenced_project_0_may_not_disable_emit, ref.Path)
}
}
}
if buildInfoFileName != "" && buildInfoFileName == config.GetBuildInfoFileName() {
createDiagnosticForReference(parent, index, diagnostics.Cannot_write_file_0_because_it_will_overwrite_tsbuildinfo_file_generated_by_referenced_project_1, buildInfoFileName, ref.Path)
p.hasEmitBlockingDiagnostics.Add(p.toPath(buildInfoFileName))
}
return true
})
}
func hasZeroOrOneAsteriskCharacter(str string) bool {
seenAsterisk := false
for _, ch := range str {
if ch == '*' {
if !seenAsterisk {
seenAsterisk = true
} else {
// have already seen asterisk
return false
}
}
}
return true
}
func moduleResolutionSupportsPackageJsonExportsAndImports(moduleResolution core.ModuleResolutionKind) bool {
return moduleResolution >= core.ModuleResolutionKindNode16 && moduleResolution <= core.ModuleResolutionKindNodeNext ||
moduleResolution == core.ModuleResolutionKindBundler
}
func emitModuleKindIsNonNodeESM(moduleKind core.ModuleKind) bool {
return moduleKind >= core.ModuleKindES2015 && moduleKind <= core.ModuleKindESNext
}
func (p *Program) GetGlobalDiagnostics(ctx context.Context) []*ast.Diagnostic {
if len(p.files) == 0 {
return nil
}
if p.compilerCheckerPool != nil {
return p.compilerCheckerPool.GetGlobalDiagnostics()
}
// For external pools (project system), global diagnostics are collected
// incrementally as checkers are used, not via a bulk query.
return nil
}
func (p *Program) GetDeclarationDiagnostics(ctx context.Context, sourceFile *ast.SourceFile) []*ast.Diagnostic {
return p.collectDiagnostics(ctx, sourceFile, true /*concurrent*/, p.getDeclarationDiagnosticsForFile)
}
func FilterNoEmitSemanticDiagnostics(diagnostics []*ast.Diagnostic, options *core.CompilerOptions) []*ast.Diagnostic {
if !options.NoEmit.IsTrue() {
return diagnostics
}
return core.Filter(diagnostics, func(d *ast.Diagnostic) bool {
return !d.SkippedOnNoEmit()
})
}
func (p *Program) getSemanticDiagnosticsWithChecker(ctx context.Context, c *checker.Checker, sourceFile *ast.SourceFile) []*ast.Diagnostic {
return core.Concatenate(
FilterNoEmitSemanticDiagnostics(p.getBindAndCheckDiagnosticsWithChecker(ctx, c, sourceFile), p.Options()),
p.GetIncludeProcessorDiagnostics(sourceFile),
)
}
// getBindAndCheckDiagnosticsWithChecker gets semantic diagnostics for a single file using a
// caller-provided checker, including bind diagnostics, checker diagnostics, and handling
// of @ts-ignore/@ts-expect-error directives.
func (p *Program) getBindAndCheckDiagnosticsWithChecker(ctx context.Context, fileChecker *checker.Checker, sourceFile *ast.SourceFile) []*ast.Diagnostic {
compilerOptions := p.Options()
if p.SkipTypeChecking(sourceFile, false) {
return nil
}
// Checker creation forces binding, so bind diagnostics will be populated.
diags := slices.Clip(sourceFile.BindDiagnostics())
diags = append(diags, fileChecker.GetDiagnostics(ctx, sourceFile)...)
isPlainJS := ast.IsPlainJSFile(sourceFile, compilerOptions.CheckJs)
if isPlainJS {
return core.Filter(diags, func(d *ast.Diagnostic) bool {
return plainJSErrors.Has(d.Code())
})
}
isJS := sourceFile.ScriptKind == core.ScriptKindJS || sourceFile.ScriptKind == core.ScriptKindJSX
isCheckJS := isJS && ast.IsCheckJSEnabledForFile(sourceFile, compilerOptions)
if isCheckJS {
diags = append(diags, sourceFile.JSDocDiagnostics()...)
}
filtered, directivesByLine := p.getDiagnosticsWithPrecedingDirectives(sourceFile, diags)
for _, directive := range directivesByLine {
// Above we changed all used directive kinds to @ts-ignore, so any @ts-expect-error directives that
// remain are unused and thus errors.
if directive.Kind == ast.CommentDirectiveKindExpectError {
filtered = append(filtered, ast.NewDiagnostic(sourceFile, directive.Loc, diagnostics.Unused_ts_expect_error_directive))
}
}
return filtered
}
func (p *Program) getDiagnosticsWithPrecedingDirectives(sourceFile *ast.SourceFile, diags []*ast.Diagnostic) ([]*ast.Diagnostic, map[int]ast.CommentDirective) {
if len(sourceFile.CommentDirectives) == 0 {
return diags, nil
}
// Build map of directives by line number
directivesByLine := make(map[int]ast.CommentDirective)
for _, directive := range sourceFile.CommentDirectives {
line := scanner.GetECMALineOfPosition(sourceFile, directive.Loc.Pos())
directivesByLine[line] = directive
}
lineStarts := scanner.GetECMALineStarts(sourceFile)
filtered := make([]*ast.Diagnostic, 0, len(diags))
for _, diagnostic := range diags {
ignoreDiagnostic := false
for line := scanner.ComputeLineOfPosition(lineStarts, diagnostic.Pos()) - 1; line >= 0; line-- {
// If line contains a @ts-ignore or @ts-expect-error directive, ignore this diagnostic and change
// the directive kind to @ts-ignore to indicate it was used.
if directive, ok := directivesByLine[line]; ok {
ignoreDiagnostic = true
directive.Kind = ast.CommentDirectiveKindIgnore
directivesByLine[line] = directive
break
}
// Stop searching backwards when we encounter a line that isn't blank or a comment.
if !isCommentOrBlankLine(sourceFile.Text(), int(lineStarts[line])) {
break
}
}
if !ignoreDiagnostic {
filtered = append(filtered, diagnostic)
}
}
return filtered, directivesByLine
}
func (p *Program) getDeclarationDiagnosticsForFile(ctx context.Context, sourceFile *ast.SourceFile) []*ast.Diagnostic {
if sourceFile.IsDeclarationFile {
return []*ast.Diagnostic{}
}
if cached, ok := p.declarationDiagnosticCache.Load(sourceFile); ok {
return cached
}
host, done := newEmitHost(ctx, p, sourceFile)
defer done()
diagnostics := getDeclarationDiagnostics(host, sourceFile)
diagnostics, _ = p.declarationDiagnosticCache.LoadOrStore(sourceFile, diagnostics)
return diagnostics
}
func (p *Program) getSuggestionDiagnosticsWithChecker(ctx context.Context, fileChecker *checker.Checker, sourceFile *ast.SourceFile) []*ast.Diagnostic {
if p.SkipTypeChecking(sourceFile, false) {
return nil
}
// Checker creation forces binding, so bind suggestion diagnostics will be populated.
diags := slices.Clip(sourceFile.BindSuggestionDiagnostics)
diags = append(diags, fileChecker.GetSuggestionDiagnostics(ctx, sourceFile)...)
return diags
}
func isCommentOrBlankLine(text string, pos int) bool {
for pos < len(text) && (text[pos] == ' ' || text[pos] == '\t') {
pos++
}
return pos == len(text) ||
pos < len(text) && (text[pos] == '\r' || text[pos] == '\n') ||
pos+1 < len(text) && text[pos] == '/' && text[pos+1] == '/'
}
func SortAndDeduplicateDiagnostics(diagnostics []*ast.Diagnostic) []*ast.Diagnostic {
diagnostics = slices.Clone(diagnostics)
slices.SortFunc(diagnostics, ast.CompareDiagnostics)
return compactAndMergeRelatedInfos(diagnostics)
}
// Remove duplicate diagnostics and, for sequences of diagnostics that differ only by related information,
// create a single diagnostic with sorted and deduplicated related information.
func compactAndMergeRelatedInfos(diagnostics []*ast.Diagnostic) []*ast.Diagnostic {
if len(diagnostics) < 2 {
return diagnostics
}
i := 0
j := 0
for i < len(diagnostics) {
d := diagnostics[i]
n := 1
for i+n < len(diagnostics) && ast.EqualDiagnosticsNoRelatedInfo(d, diagnostics[i+n]) {
n++
}
if n > 1 {
var relatedInfos []*ast.Diagnostic
for k := range n {
relatedInfos = append(relatedInfos, diagnostics[i+k].RelatedInformation()...)
}
if relatedInfos != nil {
slices.SortFunc(relatedInfos, ast.CompareDiagnostics)
relatedInfos = slices.CompactFunc(relatedInfos, ast.EqualDiagnostics)
d = d.Clone().SetRelatedInfo(relatedInfos)
}
}
diagnostics[j] = d
i += n
j++
}
clear(diagnostics[j:])
return diagnostics[:j]
}
func (p *Program) LineCount() int {
var count int
for _, file := range p.files {
count += len(file.ECMALineMap())
}
return count
}
func (p *Program) IdentifierCount() int {
var count int
for _, file := range p.files {
count += file.IdentifierCount
}
return count
}
func (p *Program) SymbolCount() int {
var count int
for _, file := range p.files {
count += file.SymbolCount
}
var val atomic.Uint32
val.Store(uint32(count))
p.ForEachCheckerParallel(func(_ int, c *checker.Checker) {
val.Add(c.SymbolCount)
})
return int(val.Load())
}
func (p *Program) TypeCount() int {
var val atomic.Uint32
p.ForEachCheckerParallel(func(_ int, c *checker.Checker) {
val.Add(c.TypeCount)
})
return int(val.Load())
}
func (p *Program) InstantiationCount() int {
var val atomic.Uint32
p.ForEachCheckerParallel(func(_ int, c *checker.Checker) {
val.Add(c.TotalInstantiationCount)
})
return int(val.Load())
}
func (p *Program) Program() *Program {
return p
}
func (p *Program) GetSourceFileMetaData(path tspath.Path) ast.SourceFileMetaData {
return p.sourceFileMetaDatas[path]
}
func (p *Program) GetEmitModuleFormatOfFile(sourceFile ast.HasFileName) core.ModuleKind {
return ast.GetEmitModuleFormatOfFileWorker(sourceFile.FileName(), p.projectReferenceFileMapper.getCompilerOptionsForFile(sourceFile), p.GetSourceFileMetaData(sourceFile.Path()))
}
func (p *Program) GetEmitSyntaxForUsageLocation(sourceFile ast.HasFileName, location *ast.StringLiteralLike) core.ResolutionMode {
return getEmitSyntaxForUsageLocationWorker(sourceFile.FileName(), p.sourceFileMetaDatas[sourceFile.Path()], location, p.projectReferenceFileMapper.getCompilerOptionsForFile(sourceFile))
}
func (p *Program) GetImpliedNodeFormatForEmit(sourceFile ast.HasFileName) core.ResolutionMode {
return ast.GetImpliedNodeFormatForEmitWorker(sourceFile.FileName(), p.projectReferenceFileMapper.getCompilerOptionsForFile(sourceFile).GetEmitModuleKind(), p.GetSourceFileMetaData(sourceFile.Path()))
}
func (p *Program) GetModeForUsageLocation(sourceFile ast.HasFileName, location *ast.StringLiteralLike) core.ResolutionMode {
return getModeForUsageLocation(sourceFile.FileName(), p.sourceFileMetaDatas[sourceFile.Path()], location, p.projectReferenceFileMapper.getCompilerOptionsForFile(sourceFile))
}
func (p *Program) GetDefaultResolutionModeForFile(sourceFile ast.HasFileName) core.ResolutionMode {
return getDefaultResolutionModeForFile(sourceFile.FileName(), p.sourceFileMetaDatas[sourceFile.Path()], p.projectReferenceFileMapper.getCompilerOptionsForFile(sourceFile))
}
func (p *Program) IsSourceFileDefaultLibrary(path tspath.Path) bool {
_, ok := p.libFiles[path]
return ok
}
func (p *Program) IsGlobalTypingsFile(fileName string) bool {
if !tspath.IsDeclarationFileName(fileName) {
return false
}
return tspath.ContainsPath(p.GetGlobalTypingsCacheLocation(), fileName, p.comparePathsOptions)
}
func (p *Program) GetDefaultLibFile(path tspath.Path) *LibFile {
if libFile, ok := p.libFiles[path]; ok {
return libFile
}
return nil
}
func (p *Program) CommonSourceDirectory() string {
p.commonSourceDirectoryOnce.Do(func() {
files := func() []string {
return core.MapFiltered(p.files, func(file *ast.SourceFile) (string, bool) {
return file.FileName(), sourceFileMayBeEmitted(file, p, false /*forceDtsEmit*/) && !file.IsDeclarationFile
})
}
p.commonSourceDirectory = outputpaths.GetCommonSourceDirectory(
p.Options(),
files,
p.GetCurrentDirectory(),
p.UseCaseSensitiveFileNames(),
p.checkSourceFilesBelongToPath,
)
})
return p.commonSourceDirectory
}
func (p *Program) checkSourceFilesBelongToPath(sourceFiles []string, rootDirectory string) bool {
allFilesBelongToPath := true
for _, file := range sourceFiles {
absoluteSourceFilePath := tspath.GetCanonicalFileName(tspath.GetNormalizedAbsolutePath(file, p.GetCurrentDirectory()), p.UseCaseSensitiveFileNames())
if !tspath.ContainsPath(rootDirectory, file, p.comparePathsOptions) {
p.includeProcessor.addProcessingDiagnostic(&processingDiagnostic{
kind: processingDiagnosticKindExplainingFileInclude,
data: &includeExplainingDiagnostic{
file: tspath.Path(absoluteSourceFilePath),
message: diagnostics.File_0_is_not_under_rootDir_1_rootDir_is_expected_to_contain_all_source_files,
args: []any{file, rootDirectory},
},
})
allFilesBelongToPath = false
}
}
return allFilesBelongToPath
}
type WriteFileData struct {
SourceMapUrlPos int
BuildInfo any
Diagnostics []*ast.Diagnostic
SkippedDtsWrite bool
}
type WriteFile func(fileName string, text string, data *WriteFileData) error
type EmitOptions struct {
TargetSourceFile *ast.SourceFile // Single file to emit. If `nil`, emits all files
EmitOnly EmitOnly
WriteFile WriteFile
}
type EmitResult struct {
EmitSkipped bool
Diagnostics []*ast.Diagnostic // Contains declaration emit diagnostics
EmittedFiles []string // Array of files the compiler wrote to disk
SourceMaps []*SourceMapEmitResult // Array of sourceMapData if compiler emitted sourcemaps
}
type SourceMapEmitResult struct {
InputSourceFileNames []string // Input source file (which one can use on program to get the file), 1:1 mapping with the sourceMap.sources list
SourceMap *sourcemap.RawSourceMap
GeneratedFile string
}
func (p *Program) Emit(ctx context.Context, options EmitOptions) *EmitResult {
if tr := p.opts.Tracing; tr != nil {
defer tr.Push(tracing.PhaseEmit, "emit", nil, true)()
}
if options.EmitOnly != EmitOnlyForcedDts {
result := HandleNoEmitOnError(
ctx,
p,
options.TargetSourceFile,
)
if result != nil || ctx.Err() != nil {
return result
}
}
newLine := p.Options().NewLine.GetNewLineCharacter()
writerPool := &sync.Pool{
New: func() any {
return printer.NewTextWriter(newLine, 0)
},
}
wg := core.NewWorkGroup(p.SingleThreaded())
var emitters []*emitter
sourceFiles := p.getSourceFilesToEmit(options.TargetSourceFile, options.EmitOnly == EmitOnlyForcedDts)
for _, sourceFile := range sourceFiles {
emitter := &emitter{
writer: nil,
sourceFile: sourceFile,
emitOnly: options.EmitOnly,
writeFile: options.WriteFile,
tr: p.opts.Tracing,
}
emitters = append(emitters, emitter)
wg.Queue(func() {
host, done := newEmitHost(ctx, p, sourceFile)
defer done()
emitter.host = host
// take an unused writer
writer := writerPool.Get().(printer.EmitTextWriter)
writer.Clear()
// attach writer and perform emit
emitter.writer = writer
emitter.paths = outputpaths.GetOutputPathsFor(sourceFile, host.Options(), host, options.EmitOnly == EmitOnlyForcedDts)
emitter.emit()
emitter.writer = nil
// put the writer back in the pool
writerPool.Put(writer)
})
}
// wait for emit to complete
wg.RunAndWait()
// collect results from emit, preserving input order
return CombineEmitResults(core.Map(emitters, func(e *emitter) *EmitResult {
return &e.emitResult
}))
}
func CombineEmitResults(results []*EmitResult) *EmitResult {
result := &EmitResult{}
for _, emitResult := range results {
if emitResult == nil {
continue // Skip nil results
}
if emitResult.EmitSkipped {
result.EmitSkipped = true
}
result.Diagnostics = append(result.Diagnostics, emitResult.Diagnostics...)
result.EmittedFiles = append(result.EmittedFiles, emitResult.EmittedFiles...)
if emitResult.SourceMaps != nil {
result.SourceMaps = append(result.SourceMaps, emitResult.SourceMaps...)
}
}
return result
}
type ProgramLike interface {
Options() *core.CompilerOptions
GetSourceFile(path string) *ast.SourceFile
GetSourceFiles() []*ast.SourceFile
GetConfigFileParsingDiagnostics() []*ast.Diagnostic
GetSyntacticDiagnostics(ctx context.Context, file *ast.SourceFile) []*ast.Diagnostic
GetBindDiagnostics(ctx context.Context, file *ast.SourceFile) []*ast.Diagnostic
GetProgramDiagnostics() []*ast.Diagnostic
GetGlobalDiagnostics(ctx context.Context) []*ast.Diagnostic
GetSemanticDiagnostics(ctx context.Context, file *ast.SourceFile) []*ast.Diagnostic
GetDeclarationDiagnostics(ctx context.Context, file *ast.SourceFile) []*ast.Diagnostic
GetSuggestionDiagnostics(ctx context.Context, file *ast.SourceFile) []*ast.Diagnostic
Emit(ctx context.Context, options EmitOptions) *EmitResult
CommonSourceDirectory() string
IsSourceFileDefaultLibrary(path tspath.Path) bool
Program() *Program
}
func HandleNoEmitOnError(ctx context.Context, program ProgramLike, file *ast.SourceFile) *EmitResult {
if !program.Options().NoEmitOnError.IsTrue() {
return nil // No emit on error is not set, so we can proceed with emitting
}
diagnostics := GetDiagnosticsOfAnyProgram(
ctx,
program,
file,
true,
program.GetBindDiagnostics,
program.GetSemanticDiagnostics,
)
if len(diagnostics) == 0 {
return nil // No diagnostics, so we can proceed with emitting
}
return &EmitResult{
Diagnostics: diagnostics,
EmitSkipped: true,
}
}
func GetDiagnosticsOfAnyProgram(
ctx context.Context,
program ProgramLike,
file *ast.SourceFile,
skipNoEmitCheckForDtsDiagnostics bool,
getBindDiagnostics func(context.Context, *ast.SourceFile) []*ast.Diagnostic,
getSemanticDiagnostics func(context.Context, *ast.SourceFile) []*ast.Diagnostic,
) []*ast.Diagnostic {
allDiagnostics := slices.Clip(program.GetConfigFileParsingDiagnostics())
configFileParsingDiagnosticsLength := len(allDiagnostics)
allDiagnostics = append(allDiagnostics, program.GetSyntacticDiagnostics(ctx, file)...)
// If we didn't have any syntactic errors, then also try getting the program (options),
// global and semantic errors.
if len(allDiagnostics) == configFileParsingDiagnosticsLength {
allDiagnostics = append(allDiagnostics, program.GetProgramDiagnostics()...)
// Do binding early so we can track the time.
getBindDiagnostics(ctx, file)
if program.Options().ListFilesOnly.IsFalseOrUnknown() {
allDiagnostics = append(allDiagnostics, program.GetGlobalDiagnostics(ctx)...)
if len(allDiagnostics) == configFileParsingDiagnosticsLength {
allDiagnostics = append(allDiagnostics, getSemanticDiagnostics(ctx, file)...)
// Ask for the global diagnostics again (they were empty above); we may have found new during checking, e.g. missing globals.
allDiagnostics = append(allDiagnostics, program.GetGlobalDiagnostics(ctx)...)
}
if (skipNoEmitCheckForDtsDiagnostics || program.Options().NoEmit.IsTrue()) && program.Options().GetEmitDeclarations() && len(allDiagnostics) == configFileParsingDiagnosticsLength {
allDiagnostics = append(allDiagnostics, program.GetDeclarationDiagnostics(ctx, file)...)
}
}
}
return allDiagnostics
}
func (p *Program) toPath(filename string) tspath.Path {
return tspath.ToPath(filename, p.GetCurrentDirectory(), p.UseCaseSensitiveFileNames())
}
func (p *Program) GetSourceFile(filename string) *ast.SourceFile {
path := p.toPath(filename)
return p.GetSourceFileByPath(path)
}
func (p *Program) GetSourceFileForResolvedModule(fileName string) *ast.SourceFile {
file := p.GetSourceFile(fileName)
if file == nil {
filename := p.GetParseFileRedirect(fileName)
if filename != "" {
return p.GetSourceFile(filename)
}
}
return file
}
func (p *Program) FilesByPath() map[tspath.Path]*ast.SourceFile {
return p.filesByPath
}
func (p *Program) GetSourceFileByPath(path tspath.Path) *ast.SourceFile {
return p.filesByPath[path]
}
func (p *Program) HasSameFileNames(other *Program) bool {
return maps.EqualFunc(p.filesByPath, other.filesByPath, func(a, b *ast.SourceFile) bool {
// checks for casing differences on case-insensitive file systems
return a.FileName() == b.FileName()
}) && maps.EqualFunc(p.redirectFilesByPath, other.redirectFilesByPath, func(a, b *redirectsFile) bool {
return a.FileName() == b.FileName()
})
}
func (p *Program) GetSourceFiles() []*ast.SourceFile {
return p.files
}
// Testing only
func (p *Program) GetIncludeReasons() map[tspath.Path][]*FileIncludeReason {
return p.includeProcessor.fileIncludeReasons
}
// Testing only
func (p *Program) IsMissingPath(path tspath.Path) bool {
return slices.ContainsFunc(p.missingFiles, func(missingPath string) bool {
return p.toPath(missingPath) == path
})
}
func (p *Program) ExplainFiles(w io.Writer, locale locale.Locale) {
toRelativeFileName := func(fileName string) string {
return tspath.GetRelativePathFromDirectory(p.GetCurrentDirectory(), fileName, p.comparePathsOptions)
}
filesExplained := 0
explainFile := func(file ast.HasFileName) {
fmt.Fprintln(w, toRelativeFileName(file.FileName()))
for _, reason := range p.includeProcessor.fileIncludeReasons[file.Path()] {
fmt.Fprintln(w, " ", reason.toDiagnostic(p, true).Localize(locale))
}
for _, diag := range p.includeProcessor.explainRedirectAndImpliedFormat(p, file.Path(), toRelativeFileName) {
fmt.Fprintln(w, " ", diag.Localize(locale))
}
filesExplained++
}
redirectFiles := slices.Collect(maps.Values(p.redirectFilesByPath))
slices.SortFunc(redirectFiles, func(a, b *redirectsFile) int {
return a.index - b.index
})
files := p.GetSourceFiles()
sourceFileIndex := 0
explainSourceFiles := func(endIndex int) {
for filesExplained < endIndex {
explainFile(files[sourceFileIndex])
sourceFileIndex++
}
}
for _, redirectFile := range redirectFiles {
// Explain all sourceFiles till we reach this redirectFile index
explainSourceFiles(redirectFile.index)
explainFile(redirectFile)
}
// Explain any remaining sourceFiles
explainSourceFiles(len(files) + len(redirectFiles))
}
func (p *Program) GetLibFileFromReference(ref *ast.FileReference) *ast.SourceFile {
path, ok := tsoptions.GetLibFileName(ref.FileName)
if !ok {
return nil
}
if sourceFile, ok := p.filesByPath[tspath.Path(path)]; ok {
return sourceFile
}
return nil
}
func (p *Program) GetResolvedTypeReferenceDirectiveFromTypeReferenceDirective(typeRef *ast.FileReference, sourceFile *ast.SourceFile) *module.ResolvedTypeReferenceDirective {
if resolutions, ok := p.typeResolutionsInFile[sourceFile.Path()]; ok {
if resolved, ok := resolutions[module.ModeAwareCacheKey{Name: typeRef.FileName, Mode: p.getModeForTypeReferenceDirectiveInFile(typeRef, sourceFile)}]; ok {
return resolved
}
}
return nil
}
func (p *Program) GetResolvedTypeReferenceDirectives() map[tspath.Path]module.ModeAwareCache[*module.ResolvedTypeReferenceDirective] {
return p.typeResolutionsInFile
}
func (p *Program) getModeForTypeReferenceDirectiveInFile(ref *ast.FileReference, sourceFile *ast.SourceFile) core.ResolutionMode {
if ref.ResolutionMode != core.ResolutionModeNone {
return ref.ResolutionMode
}
return p.GetDefaultResolutionModeForFile(sourceFile)
}
func (p *Program) IsSourceFileFromExternalLibrary(file *ast.SourceFile) bool {
return p.sourceFilesFoundSearchingNodeModules.Has(file.Path())
}
func (p *Program) GetJSXRuntimeImportSpecifier(path tspath.Path) (moduleReference string, specifier *ast.Node) {
if result := p.jsxRuntimeImportSpecifiers[path]; result != nil {
return result.moduleReference, result.specifier
}
return "", nil
}
func (p *Program) GetImportHelpersImportSpecifier(path tspath.Path) *ast.Node {
return p.importHelpersImportSpecifiers[path]
}
func (p *Program) SourceFileMayBeEmitted(sourceFile *ast.SourceFile, forceDtsEmit bool) bool {
return sourceFileMayBeEmitted(sourceFile, p, forceDtsEmit)
}
func (p *Program) ResolvedPackageNames() *collections.Set[string] {
return p.collectPackageNames().resolved
}
func (p *Program) UnresolvedPackageNames() *collections.Set[string] {
return p.collectPackageNames().unresolved
}
func (p *Program) DeepImportPackageNames() *collections.Set[string] {
return p.collectPackageNames().deepImportPackages
}
func (p *Program) collectPackageNames() *packageNamesInfo {
return p.packageNames.getValue(func() *packageNamesInfo {
packageNames := &packageNamesInfo{&collections.Set[string]{}, &collections.Set[string]{}, &collections.Set[string]{}}
for _, file := range p.files {
if p.IsSourceFileDefaultLibrary(file.Path()) || p.IsSourceFileFromExternalLibrary(file) || strings.Contains(file.FileName(), "/node_modules/") {
// Checking for /node_modules/ is a little imprecise, but ATA treats locally installed typings
// as root files, which would not pass IsSourceFileFromExternalLibrary.
continue
}
for _, imp := range file.Imports() {
if tspath.IsExternalModuleNameRelative(imp.Text()) {
continue
}
if resolvedModules, ok := p.resolvedModules[file.Path()]; ok {
key := module.ModeAwareCacheKey{Name: imp.Text(), Mode: p.GetModeForUsageLocation(file, imp)}
if resolvedModule, ok := resolvedModules[key]; ok && resolvedModule.IsResolved() {
if !resolvedModule.IsExternalLibraryImport {
continue
}
// Priority order for getting package name:
// 1. PackageId.Name (requires both name and version in package.json)
name := resolvedModule.PackageId.Name
if name == "" {
// 2. GetPackageScopeForPath - get name from package.json in the package directory
if packageScope := p.resolver.GetPackageScopeForPath(resolvedModule.ResolvedFileName); packageScope != nil && packageScope.Exists() {
if scopeName, ok := packageScope.Contents.Name.GetValue(); ok {
name = scopeName
}
}
}
if name == "" {
// 3. GetPackageNameFromDirectory - extract from node_modules path
name = modulespecifiers.GetPackageNameFromDirectory(resolvedModule.ResolvedFileName)
}
// 4. If all fail, don't add empty string
if name != "" {
packageNames.resolved.Add(name)
// Detect deep imports: subpath imports in packages without exports.
// These are imports like "lodash/fp" where the package has no exports
// map, so auto-import can only find them via recursive directory search.
_, rest := module.ParsePackageName(imp.Text())
if rest != "" {
if scope := p.resolver.GetPackageScopeForPath(resolvedModule.ResolvedFileName); scope != nil && scope.Exists() && !scope.Contents.Exports.IsPresent() {
packageNames.deepImportPackages.Add(module.GetPackageNameFromTypesPackageName(name))
}
}
}
continue
}
}
packageNames.unresolved.Add(imp.Text())
}
}
return packageNames
})
}
func (p *Program) IsLibFile(sourceFile *ast.SourceFile) bool {
_, ok := p.libFiles[sourceFile.Path()]
return ok
}
func (p *Program) HasTSFile() bool {
p.hasTSFileOnce.Do(func() {
for _, file := range p.files {
if tspath.HasImplementationTSFileExtension(file.FileName()) {
p.hasTSFile = true
break
}
}
})
return p.hasTSFile
}
func (p *Program) GetSymlinkCache() *symlinks.KnownSymlinks {
return p.knownSymlinks.getValue(func() *symlinks.KnownSymlinks {
knownSymlinks := symlinks.NewKnownSymlink(p.GetCurrentDirectory(), p.UseCaseSensitiveFileNames())
// Resolved modules store realpath information when they're resolved inside node_modules
if len(p.resolvedModules) > 0 || len(p.typeResolutionsInFile) > 0 {
knownSymlinks.SetSymlinksFromResolutions(p.ForEachResolvedModule, p.ForEachResolvedTypeReferenceDirective)
}
// Check other dependencies for symlinks
var seenPackageJsons collections.Set[tspath.Path]
for filePath, meta := range p.sourceFileMetaDatas {
if meta.PackageJsonDirectory == "" ||
!p.SourceFileMayBeEmitted(p.GetSourceFileByPath(filePath), false) ||
!seenPackageJsons.AddIfAbsent(p.toPath(meta.PackageJsonDirectory)) {
continue
}
packageJsonName := tspath.CombinePaths(meta.PackageJsonDirectory, "package.json")
info := p.GetPackageJsonInfo(packageJsonName)
if info.GetContents() == nil {
continue
}
for dep := range info.GetContents().GetRuntimeDependencyNames().Keys() {
// Skip work in common case: we already saved a symlink for this package directory
// in the node_modules adjacent to this package.json
possibleDirectoryPath := p.toPath(tspath.CombinePaths(meta.PackageJsonDirectory, "node_modules", dep))
if knownSymlinks.HasDirectory(possibleDirectoryPath) {
continue
}
if !strings.HasPrefix(dep, "@types") {
possibleTypesDirectoryPath := p.toPath(tspath.CombinePaths(meta.PackageJsonDirectory, "node_modules", module.GetTypesPackageName(dep)))
if knownSymlinks.HasDirectory(possibleTypesDirectoryPath) {
continue
}
}
if packageResolution := p.resolver.ResolvePackageDirectory(dep, packageJsonName, core.ResolutionModeCommonJS, nil); packageResolution.IsResolved() {
knownSymlinks.ProcessResolution(
tspath.CombinePaths(packageResolution.OriginalPath, "package.json"),
tspath.CombinePaths(packageResolution.ResolvedFileName, "package.json"),
)
}
}
}
return knownSymlinks
})
}
func (p *Program) ResolveModuleName(moduleName string, containingFile string, resolutionMode core.ResolutionMode) *module.ResolvedModule {
resolved, _ := p.resolver.ResolveModuleName(moduleName, containingFile, resolutionMode, nil)
return resolved
}
func (p *Program) ForEachResolvedModule(callback func(resolution *module.ResolvedModule, moduleName string, mode core.ResolutionMode, filePath tspath.Path), file *ast.SourceFile) {
forEachResolution(p.resolvedModules, callback, file)
}
func (p *Program) ForEachResolvedTypeReferenceDirective(callback func(resolution *module.ResolvedTypeReferenceDirective, moduleName string, mode core.ResolutionMode, filePath tspath.Path), file *ast.SourceFile) {
forEachResolution(p.typeResolutionsInFile, callback, file)
}
func forEachResolution[T any](resolutionCache map[tspath.Path]module.ModeAwareCache[T], callback func(resolution T, moduleName string, mode core.ResolutionMode, filePath tspath.Path), file *ast.SourceFile) {
if file != nil {
if resolutions, ok := resolutionCache[file.Path()]; ok {
for key, resolution := range resolutions {
callback(resolution, key.Name, key.Mode, file.Path())
}
}
} else {
for filePath, resolutions := range resolutionCache {
for key, resolution := range resolutions {
callback(resolution, key.Name, key.Mode, filePath)
}
}
}
}
var plainJSErrors = collections.NewSetFromItems(
// binder errors
diagnostics.Cannot_redeclare_block_scoped_variable_0.Code(),
diagnostics.A_module_cannot_have_multiple_default_exports.Code(),
diagnostics.Another_export_default_is_here.Code(),
diagnostics.The_first_export_default_is_here.Code(),
diagnostics.Identifier_expected_0_is_a_reserved_word_at_the_top_level_of_a_module.Code(),
diagnostics.Identifier_expected_0_is_a_reserved_word_in_strict_mode_Modules_are_automatically_in_strict_mode.Code(),
diagnostics.Identifier_expected_0_is_a_reserved_word_that_cannot_be_used_here.Code(),
diagnostics.X_constructor_is_a_reserved_word.Code(),
diagnostics.X_delete_cannot_be_called_on_an_identifier_in_strict_mode.Code(),
diagnostics.Code_contained_in_a_class_is_evaluated_in_JavaScript_s_strict_mode_which_does_not_allow_this_use_of_0_For_more_information_see_https_Colon_Slash_Slashdeveloper_mozilla_org_Slashen_US_Slashdocs_SlashWeb_SlashJavaScript_SlashReference_SlashStrict_mode.Code(),
diagnostics.Invalid_use_of_0_Modules_are_automatically_in_strict_mode.Code(),
diagnostics.Invalid_use_of_0_in_strict_mode.Code(),
diagnostics.A_label_is_not_allowed_here.Code(),
diagnostics.X_with_statements_are_not_allowed_in_strict_mode.Code(),
// grammar errors
diagnostics.A_break_statement_can_only_be_used_within_an_enclosing_iteration_or_switch_statement.Code(),
diagnostics.A_break_statement_can_only_jump_to_a_label_of_an_enclosing_statement.Code(),
diagnostics.A_class_declaration_without_the_default_modifier_must_have_a_name.Code(),
diagnostics.A_class_member_cannot_have_the_0_keyword.Code(),
diagnostics.A_comma_expression_is_not_allowed_in_a_computed_property_name.Code(),
diagnostics.A_continue_statement_can_only_be_used_within_an_enclosing_iteration_statement.Code(),
diagnostics.A_continue_statement_can_only_jump_to_a_label_of_an_enclosing_iteration_statement.Code(),
diagnostics.A_default_clause_cannot_appear_more_than_once_in_a_switch_statement.Code(),
diagnostics.A_default_export_must_be_at_the_top_level_of_a_file_or_module_declaration.Code(),
diagnostics.A_definite_assignment_assertion_is_not_permitted_in_this_context.Code(),
diagnostics.A_destructuring_declaration_must_have_an_initializer.Code(),
diagnostics.A_get_accessor_cannot_have_parameters.Code(),
diagnostics.A_rest_element_cannot_contain_a_binding_pattern.Code(),
diagnostics.A_rest_element_cannot_have_a_property_name.Code(),
diagnostics.A_rest_element_cannot_have_an_initializer.Code(),
diagnostics.A_rest_element_must_be_last_in_a_destructuring_pattern.Code(),
diagnostics.A_rest_parameter_cannot_have_an_initializer.Code(),
diagnostics.A_rest_parameter_must_be_last_in_a_parameter_list.Code(),
diagnostics.A_rest_parameter_or_binding_pattern_may_not_have_a_trailing_comma.Code(),
diagnostics.A_return_statement_cannot_be_used_inside_a_class_static_block.Code(),
diagnostics.A_set_accessor_cannot_have_rest_parameter.Code(),
diagnostics.A_set_accessor_must_have_exactly_one_parameter.Code(),
diagnostics.An_export_declaration_can_only_be_used_at_the_top_level_of_a_module.Code(),
diagnostics.An_export_declaration_cannot_have_modifiers.Code(),
diagnostics.An_import_declaration_can_only_be_used_at_the_top_level_of_a_module.Code(),
diagnostics.An_import_declaration_cannot_have_modifiers.Code(),
diagnostics.An_object_member_cannot_be_declared_optional.Code(),
diagnostics.Argument_of_dynamic_import_cannot_be_spread_element.Code(),
diagnostics.Cannot_assign_to_private_method_0_Private_methods_are_not_writable.Code(),
diagnostics.Cannot_redeclare_identifier_0_in_catch_clause.Code(),
diagnostics.Catch_clause_variable_cannot_have_an_initializer.Code(),
diagnostics.Class_decorators_can_t_be_used_with_static_private_identifier_Consider_removing_the_experimental_decorator.Code(),
diagnostics.Classes_can_only_extend_a_single_class.Code(),
diagnostics.Classes_may_not_have_a_field_named_constructor.Code(),
diagnostics.Did_you_mean_to_use_a_Colon_An_can_only_follow_a_property_name_when_the_containing_object_literal_is_part_of_a_destructuring_pattern.Code(),
diagnostics.Duplicate_label_0.Code(),
diagnostics.Dynamic_imports_can_only_accept_a_module_specifier_and_an_optional_set_of_attributes_as_arguments.Code(),
diagnostics.X_for_await_loops_cannot_be_used_inside_a_class_static_block.Code(),
diagnostics.JSX_attributes_must_only_be_assigned_a_non_empty_expression.Code(),
diagnostics.JSX_elements_cannot_have_multiple_attributes_with_the_same_name.Code(),
diagnostics.JSX_expressions_may_not_use_the_comma_operator_Did_you_mean_to_write_an_array.Code(),
diagnostics.JSX_property_access_expressions_cannot_include_JSX_namespace_names.Code(),
diagnostics.Jump_target_cannot_cross_function_boundary.Code(),
diagnostics.Line_terminator_not_permitted_before_arrow.Code(),
diagnostics.Modifiers_cannot_appear_here.Code(),
diagnostics.Only_a_single_variable_declaration_is_allowed_in_a_for_in_statement.Code(),
diagnostics.Only_a_single_variable_declaration_is_allowed_in_a_for_of_statement.Code(),
diagnostics.Private_identifiers_are_not_allowed_outside_class_bodies.Code(),
diagnostics.Private_identifiers_are_only_allowed_in_class_bodies_and_may_only_be_used_as_part_of_a_class_member_declaration_property_access_or_on_the_left_hand_side_of_an_in_expression.Code(),
diagnostics.Property_0_is_not_accessible_outside_class_1_because_it_has_a_private_identifier.Code(),
diagnostics.Tagged_template_expressions_are_not_permitted_in_an_optional_chain.Code(),
diagnostics.The_left_hand_side_of_a_for_of_statement_may_not_be_async.Code(),
diagnostics.The_variable_declaration_of_a_for_in_statement_cannot_have_an_initializer.Code(),
diagnostics.The_variable_declaration_of_a_for_of_statement_cannot_have_an_initializer.Code(),
diagnostics.Trailing_comma_not_allowed.Code(),
diagnostics.Variable_declaration_list_cannot_be_empty.Code(),
diagnostics.X_0_and_1_operations_cannot_be_mixed_without_parentheses.Code(),
diagnostics.X_0_expected.Code(),
diagnostics.X_0_is_not_a_valid_meta_property_for_keyword_1_Did_you_mean_2.Code(),
diagnostics.X_0_list_cannot_be_empty.Code(),
diagnostics.X_0_modifier_already_seen.Code(),
diagnostics.X_0_modifier_cannot_appear_on_a_constructor_declaration.Code(),
diagnostics.X_0_modifier_cannot_appear_on_a_module_or_namespace_element.Code(),
diagnostics.X_0_modifier_cannot_appear_on_a_parameter.Code(),
diagnostics.X_0_modifier_cannot_appear_on_class_elements_of_this_kind.Code(),
diagnostics.X_0_modifier_cannot_be_used_here.Code(),
diagnostics.X_0_modifier_must_precede_1_modifier.Code(),
diagnostics.X_0_declarations_can_only_be_declared_inside_a_block.Code(),
diagnostics.X_0_declarations_must_be_initialized.Code(),
diagnostics.X_extends_clause_already_seen.Code(),
diagnostics.X_let_is_not_allowed_to_be_used_as_a_name_in_let_or_const_declarations.Code(),
diagnostics.Class_constructor_may_not_be_a_generator.Code(),
diagnostics.Class_constructor_may_not_be_an_accessor.Code(),
diagnostics.X_await_expressions_are_only_allowed_within_async_functions_and_at_the_top_levels_of_modules.Code(),
diagnostics.X_await_using_statements_are_only_allowed_within_async_functions_and_at_the_top_levels_of_modules.Code(),
diagnostics.Private_field_0_must_be_declared_in_an_enclosing_class.Code(),
// Type errors
diagnostics.This_condition_will_always_return_0_since_JavaScript_compares_objects_by_reference_not_value.Code(),
)