## Summary:
Right now, if you make a query like `{ myInterface { field } }`, you
have to type-switch on all the possible implementations of `myInterface`
to get at `field`. Now, we generate getter-methods (e.g. `GetField`),
to make that access easier. Of course this only applies to shared
fields (which for now are the only ones, but once we support fragments
will no longer be).
This also includes a small change to the way we generate type-names for
interfaces: we no longer include the name of the concrete type in the
interface we propagate forward, so we generate
`MyInterfaceMyFieldMyType`, not `MyInterfaceMyImplMyFieldMyType`, in the
case where you have an interface `MyInterface` implemented by `MyImpl`
(and maybe other types) with field `myField: MyType`. This is necessary
so the getter method returns a well-defined type, and also probably
convenient for calling code. It will have to get a little bit more
complicated once we support fragments, where you could have two
implementing types with identically-named fields of different types, but
I think it'll be easiest to figure out how to deal with that when
implementing fragments.
While I was in the area, I added to the interface doc-comment a list of
the implementations. (In GraphQL, we're guaranteed to know them all
assuming our schema is up to date.)
Issue: https://github.com/Khan/genqlient/issues/8
## Test plan:
make check
Author: benjaminjkraft
Reviewers: benjaminjkraft, dnerdy, aberkan, MiguelCastillo
Required Reviewers:
Approved by: dnerdy
Checks: ✅ Test (1.17), ✅ Test (1.16), ✅ Test (1.15), ✅ Test (1.14), ✅ Test (1.13), ✅ Lint, ✅ Test (1.17), ✅ Test (1.16), ✅ Test (1.15), ✅ Test (1.14), ✅ Test (1.13), ✅ Lint
Pull request URL: https://github.com/Khan/genqlient/pull/57
397 lines
13 KiB
Go
397 lines
13 KiB
Go
package generate
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// This file implements the core type-generation logic of genqlient, whereby we
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// traverse an operation-definition (and the schema against which it will be
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// executed), and convert that into Go types. It returns data structures
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// representing the types to be generated; these are defined, and converted
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// into code, in types.go.
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//
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// The entrypoints are convertOperation, which builds the response-type for a
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// query, and convertInputType, which builds the argument-types.
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import (
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"fmt"
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"strings"
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"github.com/vektah/gqlparser/v2/ast"
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)
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// baseTypeForOperation returns the definition of the GraphQL type to which the
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// root of the operation corresponds, e.g. the "Query" or "Mutation" type.
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func (g *generator) baseTypeForOperation(operation ast.Operation) (*ast.Definition, error) {
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switch operation {
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case ast.Query:
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return g.schema.Query, nil
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case ast.Mutation:
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return g.schema.Mutation, nil
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case ast.Subscription:
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if !g.Config.AllowBrokenFeatures {
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return nil, errorf(nil, "genqlient does not yet support subscriptions")
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}
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return g.schema.Subscription, nil
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default:
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return nil, errorf(nil, "unexpected operation: %v", operation)
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}
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}
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// convertOperation builds the response-type into which the given operation's
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// result will be unmarshaled.
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func (g *generator) convertOperation(
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operation *ast.OperationDefinition,
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queryOptions *GenqlientDirective,
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) (goType, error) {
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name := operation.Name + "Response"
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if def, ok := g.typeMap[name]; ok {
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return nil, errorf(operation.Position, "%s defined twice:\n%s", name, def)
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}
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baseType, err := g.baseTypeForOperation(operation.Operation)
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if err != nil {
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return nil, errorf(operation.Position, "%v", err)
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}
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goTyp, err := g.convertDefinition(
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name, operation.Name, baseType, operation.Position,
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operation.SelectionSet, queryOptions)
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if structType, ok := goTyp.(*goStructType); ok {
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// Override the ordinary description; the GraphQL documentation for
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// Query/Mutation is unlikely to be of value.
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// TODO(benkraft): This is a bit awkward/fragile.
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structType.Description =
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fmt.Sprintf("%v is returned by %v on success.", name, operation.Name)
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structType.Incomplete = false
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}
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return goTyp, err
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}
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var builtinTypes = map[string]string{
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// GraphQL guarantees int32 is enough, but using int seems more idiomatic
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"Int": "int",
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"Float": "float64",
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"String": "string",
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"Boolean": "bool",
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"ID": "string",
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}
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// typeName computes the name, in Go, that we should use for the given
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// GraphQL type definition. This is dependent on its location within the query
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// (see DESIGN.md for more on why we generate type-names this way), which is
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// determined by the prefix argument; the nextPrefix result should be passed to
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// calls to typeName on any child types.
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func (g *generator) typeName(prefix string, typ *ast.Definition) (name, nextPrefix string) {
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typeGoName := upperFirst(typ.Name)
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if typ.Kind == ast.Enum || typ.Kind == ast.InputObject {
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// If we're an enum or an input-object, there is only one type we
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// will ever possibly generate for this type, so we don't need any
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// of the qualifiers. This is especially helpful because the
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// caller is very likely to need to reference these types in their
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// code.
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return typeGoName, typeGoName
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}
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name = prefix
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if !strings.HasSuffix(prefix, typeGoName) {
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// If the field and type names are the same, we can avoid the
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// duplication. (We include the field name in case there are
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// multiple fields with the same type, and the type name because
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// that's the actual name (the rest are really qualifiers); but if
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// they are the same then including it once suffices for both
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// purposes.)
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name += typeGoName
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}
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if typ.Kind == ast.Interface || typ.Kind == ast.Union {
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// for interface/union types, we do not add the type name to the
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// name prefix; we want to have QueryFieldType rather than
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// QueryFieldInterfaceType. So we just use the input prefix.
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return name, prefix
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}
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// Otherwise, the name will also be the prefix for the next type.
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return name, name
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}
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// convertInputType decides the Go type we will generate corresponding to an
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// argument to a GraphQL operation.
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func (g *generator) convertInputType(
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opName string,
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typ *ast.Type,
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options, queryOptions *GenqlientDirective,
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) (goType, error) {
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// Sort of a hack: case the input type name to match the op-name.
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// TODO(benkraft): this is another thing that breaks the assumption that we
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// only need one of an input type, albeit in a relatively safe way.
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name := matchFirst(typ.Name(), opName)
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// note prefix is ignored here (see generator.typeName), as is selectionSet
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// (for input types we use the whole thing)).
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return g.convertType(name, "", typ, nil, options, queryOptions)
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}
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// convertType decides the Go type we will generate corresponding to a
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// particular GraphQL type. In this context, "type" represents the type of a
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// field, and may be a list or a reference to a named type, with or without the
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// "non-null" annotation.
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func (g *generator) convertType(
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name, namePrefix string,
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typ *ast.Type,
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selectionSet ast.SelectionSet,
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options, queryOptions *GenqlientDirective,
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) (goType, error) {
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if typ.Elem != nil {
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// Type is a list.
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elem, err := g.convertType(
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name, namePrefix, typ.Elem, selectionSet, options, queryOptions)
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return &goSliceType{elem}, err
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}
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// If this is a builtin type or custom scalar, just refer to it.
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def := g.schema.Types[typ.Name()]
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goTyp, err := g.convertDefinition(
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name, namePrefix, def, typ.Position, selectionSet, queryOptions)
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if options.GetPointer() {
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// Whatever we get, wrap it in a pointer. (Because of the way the
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// options work, recursing here isn't as connvenient.)
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// Note this does []*T or [][]*T, not e.g. *[][]T. See #16.
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goTyp = &goPointerType{goTyp}
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}
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return goTyp, err
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}
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// convertDefinition decides the Go type we will generate corresponding to a
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// particular GraphQL named type.
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//
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// In this context, "definition" (and "named type") refer to an
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// *ast.Definition, which represents the definition of a type in the GraphQL
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// schema, which may be referenced by a field-type (see convertType).
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func (g *generator) convertDefinition(
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name, namePrefix string,
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def *ast.Definition,
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pos *ast.Position,
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selectionSet ast.SelectionSet,
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queryOptions *GenqlientDirective,
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) (goType, error) {
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qualifiedGoName, ok := g.Config.Scalars[def.Name]
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if ok {
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goRef, err := g.addRef(qualifiedGoName)
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return &goOpaqueType{goRef}, err
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}
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goBuiltinName, ok := builtinTypes[def.Name]
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if ok {
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return &goOpaqueType{goBuiltinName}, nil
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}
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switch def.Kind {
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case ast.Object:
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goType := &goStructType{
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GoName: name,
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Description: def.Description,
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GraphQLName: def.Name,
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Fields: make([]*goStructField, len(selectionSet)),
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Incomplete: true,
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}
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g.typeMap[name] = goType
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for i, selection := range selectionSet {
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_, selectionDirective, err := g.parsePrecedingComment(
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selection, selection.GetPosition())
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if err != nil {
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return nil, err
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}
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selectionOptions := queryOptions.merge(selectionDirective)
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switch selection := selection.(type) {
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case *ast.Field:
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goType.Fields[i], err = g.convertField(
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namePrefix, selection, selectionOptions, queryOptions)
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if err != nil {
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return nil, err
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}
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case *ast.FragmentSpread:
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return nil, errorf(selection.Position, "not implemented: %T", selection)
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case *ast.InlineFragment:
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return nil, errorf(selection.Position, "not implemented: %T", selection)
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default:
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return nil, errorf(nil, "invalid selection type: %T", selection)
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}
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}
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return goType, nil
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case ast.InputObject:
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goType := &goStructType{
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GoName: name,
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Description: def.Description,
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GraphQLName: def.Name,
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Fields: make([]*goStructField, len(def.Fields)),
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}
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g.typeMap[name] = goType
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for i, field := range def.Fields {
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goName := upperFirst(field.Name)
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// Several of the arguments don't really make sense here:
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// - no field-specific options can apply, because this is
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// a field in the type, not in the query (see also #14).
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// - namePrefix is ignored for input types; see note in
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// generator.typeName.
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// TODO(benkraft): Can we refactor to avoid passing the values that
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// will be ignored? We know field.Type is a scalar, enum, or input
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// type. But plumbing that is a bit tricky in practice.
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fieldGoType, err := g.convertType(
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field.Type.Name(), "", field.Type, nil, queryOptions, queryOptions)
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if err != nil {
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return nil, err
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}
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goType.Fields[i] = &goStructField{
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GoName: goName,
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GoType: fieldGoType,
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JSONName: field.Name,
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GraphQLName: field.Name,
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Description: field.Description,
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}
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}
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return goType, nil
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case ast.Interface, ast.Union:
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if !g.Config.AllowBrokenFeatures {
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return nil, errorf(pos, "not implemented: %v", def.Kind)
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}
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implementationTypes := g.schema.GetPossibleTypes(def)
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goType := &goInterfaceType{
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GoName: name,
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Description: def.Description,
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GraphQLName: def.Name,
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SharedFields: make([]*goStructField, 0, len(selectionSet)),
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Implementations: make([]*goStructType, len(implementationTypes)),
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}
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g.typeMap[name] = goType
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// TODO(benkraft): This sorta-duplicates what we'll do in each
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// implementation when it traverses the fields. But they'll differ
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// more once we support fragments; at that point we should figure out
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// how to refactor.
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for _, selection := range selectionSet {
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field, ok := selection.(*ast.Field)
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if !ok { // fragment/interface, not a shared field
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continue
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}
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_, fieldDirective, err := g.parsePrecedingComment(field, field.GetPosition())
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if err != nil {
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return nil, err
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}
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fieldOptions := queryOptions.merge(fieldDirective)
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goField, err := g.convertField(namePrefix, field, fieldOptions, queryOptions)
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if err != nil {
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return nil, err
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}
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goType.SharedFields = append(goType.SharedFields, goField)
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}
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for i, implDef := range implementationTypes {
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// Note for shared fields we propagate forward the interface's
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// name-prefix: that is, the implementations will have fields with
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// types like
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// MyInterfaceMyFieldMyType
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// not
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// MyInterfaceMyImplMyFieldMyType
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// ^^^^^^
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// In particular, this means that the Go type of MyField will be
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// the same across all the implementations; this is important so
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// that we can write a method GetMyField() that returns it!
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implName, _ := g.typeName(namePrefix, implDef)
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// TODO(benkraft): In principle we should skip generating a Go
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// field for __typename each of these impl-defs if you didn't
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// request it (and it was automatically added by
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// preprocessQueryDocument). But in practice it doesn't really
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// hurt, and would be extra work to avoid, so we just leave it.
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implTyp, err := g.convertDefinition(
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implName, namePrefix, implDef, pos, selectionSet, queryOptions)
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if err != nil {
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return nil, err
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}
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implStructTyp, ok := implTyp.(*goStructType)
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if !ok { // (should never happen on a valid schema)
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return nil, errorf(
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pos, "interface %s had non-object implementation %s",
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def.Name, implDef.Name)
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}
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goType.Implementations[i] = implStructTyp
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}
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return goType, nil
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case ast.Enum:
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goType := &goEnumType{
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GoName: name,
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Description: def.Description,
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Values: make([]goEnumValue, len(def.EnumValues)),
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}
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g.typeMap[name] = goType
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for i, val := range def.EnumValues {
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goType.Values[i] = goEnumValue{Name: val.Name, Description: val.Description}
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}
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return goType, nil
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case ast.Scalar:
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return nil, errorf(
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pos, "unknown scalar %v: please add it to genqlient.yaml", def.Name)
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default:
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return nil, errorf(pos, "unexpected kind: %v", def.Kind)
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}
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}
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// convertField converts a single GraphQL operation-field into a GraphQL type.
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//
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// Note that input-type fields are handled separately (inline in
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// convertDefinition), because they come from the type-definition, not the
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// operation.
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func (g *generator) convertField(
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namePrefix string,
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field *ast.Field,
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fieldOptions, queryOptions *GenqlientDirective,
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) (*goStructField, error) {
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if field.Definition == nil {
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// Unclear why gqlparser hasn't already rejected this,
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// but empirically it might not.
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return nil, errorf(
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field.Position, "undefined field %v", field.Alias)
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}
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// Needs to be exported for JSON-marshaling
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goName := upperFirst(field.Alias)
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typ := field.Definition.Type
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fieldTypedef := g.schema.Types[typ.Name()]
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// Note we don't deduplicate suffixes here -- if our prefix is GetUser and
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// the field name is User, we do GetUserUser. This is important because if
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// you have a field called user on a type called User we need
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// `query q { user { user { id } } }` to generate two types, QUser and
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// QUserUser. Note also this is named based on the GraphQL alias (Go
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// name), not the field-name, because if we have
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// `query q { a: f { b }, c: f { d } }` we need separate types for a and c,
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// even though they are the same type in GraphQL, because they have
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// different fields.
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name, namePrefix := g.typeName(namePrefix+goName, fieldTypedef)
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fieldGoType, err := g.convertType(
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name, namePrefix, typ, field.SelectionSet,
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fieldOptions, queryOptions)
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if err != nil {
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return nil, err
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}
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return &goStructField{
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GoName: goName,
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GoType: fieldGoType,
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JSONName: field.Alias,
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GraphQLName: field.Name,
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Description: field.Definition.Description,
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}, nil
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}
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