0d0404867c
This is similar to ScopeTraversalExpr, but it traverses relative to the result of another expression rather than relative to a variable in the scope.
519 lines
13 KiB
Go
519 lines
13 KiB
Go
package zclsyntax
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import (
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"fmt"
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"github.com/zclconf/go-cty/cty"
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"github.com/zclconf/go-cty/cty/convert"
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"github.com/zclconf/go-cty/cty/function"
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"github.com/zclconf/go-zcl/zcl"
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)
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// Expression is the abstract type for nodes that behave as zcl expressions.
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type Expression interface {
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Node
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// The zcl.Expression methods are duplicated here, rather than simply
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// embedded, because both Node and zcl.Expression have a Range method
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// and so they conflict.
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Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics)
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Variables() []zcl.Traversal
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StartRange() zcl.Range
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}
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// Assert that Expression implements zcl.Expression
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var assertExprImplExpr zcl.Expression = Expression(nil)
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// LiteralValueExpr is an expression that just always returns a given value.
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type LiteralValueExpr struct {
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Val cty.Value
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SrcRange zcl.Range
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}
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func (e *LiteralValueExpr) walkChildNodes(w internalWalkFunc) {
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// Literal values have no child nodes
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}
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func (e *LiteralValueExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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return e.Val, nil
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}
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func (e *LiteralValueExpr) Range() zcl.Range {
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return e.SrcRange
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}
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func (e *LiteralValueExpr) StartRange() zcl.Range {
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return e.SrcRange
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}
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// ScopeTraversalExpr is an Expression that retrieves a value from the scope
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// using a traversal.
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type ScopeTraversalExpr struct {
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Traversal zcl.Traversal
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SrcRange zcl.Range
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}
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func (e *ScopeTraversalExpr) walkChildNodes(w internalWalkFunc) {
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// Scope traversals have no child nodes
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}
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func (e *ScopeTraversalExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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panic("ScopeTraversalExpr.Value not yet implemented")
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}
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func (e *ScopeTraversalExpr) Range() zcl.Range {
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return e.SrcRange
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}
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func (e *ScopeTraversalExpr) StartRange() zcl.Range {
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return e.SrcRange
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}
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// RelativeTraversalExpr is an Expression that retrieves a value from another
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// value using a _relative_ traversal.
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type RelativeTraversalExpr struct {
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Source Expression
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Traversal zcl.Traversal
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SrcRange zcl.Range
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}
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func (e *RelativeTraversalExpr) walkChildNodes(w internalWalkFunc) {
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// Scope traversals have no child nodes
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}
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func (e *RelativeTraversalExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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panic("RelativeTraversalExpr.Value not yet implemented")
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}
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func (e *RelativeTraversalExpr) Range() zcl.Range {
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return e.SrcRange
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}
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func (e *RelativeTraversalExpr) StartRange() zcl.Range {
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return e.SrcRange
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}
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// FunctionCallExpr is an Expression that calls a function from the EvalContext
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// and returns its result.
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type FunctionCallExpr struct {
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Name string
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Args []Expression
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NameRange zcl.Range
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OpenParenRange zcl.Range
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CloseParenRange zcl.Range
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}
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func (e *FunctionCallExpr) walkChildNodes(w internalWalkFunc) {
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for i, arg := range e.Args {
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e.Args[i] = w(arg).(Expression)
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}
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}
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func (e *FunctionCallExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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var diags zcl.Diagnostics
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f, exists := ctx.Functions[e.Name]
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if !exists {
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avail := make([]string, 0, len(ctx.Functions))
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for name := range ctx.Functions {
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avail = append(avail, name)
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}
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suggestion := nameSuggestion(e.Name, avail)
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if suggestion != "" {
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suggestion = fmt.Sprintf(" Did you mean %q?", suggestion)
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}
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return cty.DynamicVal, zcl.Diagnostics{
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{
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Severity: zcl.DiagError,
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Summary: "Call to unknown function",
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Detail: fmt.Sprintf("There is no function named %q.%s", e.Name, suggestion),
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Subject: &e.NameRange,
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Context: e.Range().Ptr(),
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},
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}
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}
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params := f.Params()
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varParam := f.VarParam()
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if len(e.Args) < len(params) {
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missing := params[len(e.Args)]
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qual := ""
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if varParam != nil {
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qual = " at least"
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}
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return cty.DynamicVal, zcl.Diagnostics{
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{
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Severity: zcl.DiagError,
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Summary: "Not enough function arguments",
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Detail: fmt.Sprintf(
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"Function %q expects%s %d argument(s). Missing value for %q.",
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e.Name, qual, len(params), missing.Name,
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),
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Subject: &e.CloseParenRange,
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Context: e.Range().Ptr(),
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},
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}
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}
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if varParam == nil && len(e.Args) > len(params) {
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return cty.DynamicVal, zcl.Diagnostics{
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{
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Severity: zcl.DiagError,
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Summary: "Too many function arguments",
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Detail: fmt.Sprintf(
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"Function %q expects only %d argument(s).",
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e.Name, len(params),
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),
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Subject: e.Args[len(params)].StartRange().Ptr(),
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Context: e.Range().Ptr(),
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},
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}
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}
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argVals := make([]cty.Value, len(e.Args))
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for i, argExpr := range e.Args {
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var param *function.Parameter
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if i < len(params) {
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param = ¶ms[i]
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} else {
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param = varParam
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}
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val, argDiags := argExpr.Value(ctx)
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if len(argDiags) > 0 {
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diags = append(diags, argDiags...)
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}
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// Try to convert our value to the parameter type
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val, err := convert.Convert(val, param.Type)
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if err != nil {
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Invalid function argument",
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Detail: fmt.Sprintf(
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"Invalid value for %q parameter: %s.",
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param.Name, err,
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),
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Subject: argExpr.StartRange().Ptr(),
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Context: e.Range().Ptr(),
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})
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}
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argVals[i] = val
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}
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if diags.HasErrors() {
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// Don't try to execute the function if we already have errors with
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// the arguments, because the result will probably be a confusing
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// error message.
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return cty.DynamicVal, diags
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}
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resultVal, err := f.Call(argVals)
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if err != nil {
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switch terr := err.(type) {
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case function.ArgError:
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i := terr.Index
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var param *function.Parameter
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if i < len(params) {
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param = ¶ms[i]
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} else {
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param = varParam
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}
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argExpr := e.Args[i]
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// TODO: we should also unpick a PathError here and show the
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// path to the deep value where the error was detected.
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Invalid function argument",
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Detail: fmt.Sprintf(
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"Invalid value for %q parameter: %s.",
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param.Name, err,
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),
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Subject: argExpr.StartRange().Ptr(),
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Context: e.Range().Ptr(),
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})
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default:
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Error in function call",
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Detail: fmt.Sprintf(
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"Call to function %q failed: %s.",
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e.Name, err,
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),
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Subject: e.StartRange().Ptr(),
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Context: e.Range().Ptr(),
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})
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}
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return cty.DynamicVal, diags
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}
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return resultVal, diags
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}
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func (e *FunctionCallExpr) Range() zcl.Range {
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return zcl.RangeBetween(e.NameRange, e.CloseParenRange)
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}
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func (e *FunctionCallExpr) StartRange() zcl.Range {
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return zcl.RangeBetween(e.NameRange, e.OpenParenRange)
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}
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type ConditionalExpr struct {
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Condition Expression
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TrueResult Expression
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FalseResult Expression
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SrcRange zcl.Range
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}
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func (e *ConditionalExpr) walkChildNodes(w internalWalkFunc) {
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e.Condition = w(e.Condition).(Expression)
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e.TrueResult = w(e.TrueResult).(Expression)
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e.FalseResult = w(e.FalseResult).(Expression)
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}
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func (e *ConditionalExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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trueResult, trueDiags := e.TrueResult.Value(ctx)
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falseResult, falseDiags := e.FalseResult.Value(ctx)
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var diags zcl.Diagnostics
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// Try to find a type that both results can be converted to.
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resultType, convs := convert.UnifyUnsafe([]cty.Type{trueResult.Type(), falseResult.Type()})
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if resultType == cty.NilType {
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return cty.DynamicVal, zcl.Diagnostics{
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{
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Severity: zcl.DiagError,
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Summary: "Inconsistent conditional result types",
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Detail: fmt.Sprintf(
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// FIXME: Need a helper function for showing natural-language type diffs,
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// since this will generate some useless messages in some cases, like
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// "These expressions are object and object respectively" if the
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// object types don't exactly match.
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"The true and false result expressions must have consistent types. The given expressions are %s and %s, respectively.",
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trueResult.Type(), falseResult.Type(),
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),
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Subject: zcl.RangeBetween(e.TrueResult.Range(), e.FalseResult.Range()).Ptr(),
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Context: &e.SrcRange,
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},
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}
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}
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condResult, condDiags := e.Condition.Value(ctx)
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diags = append(diags, condDiags...)
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if condResult.IsNull() {
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Null condition",
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Detail: "The condition value is null. Conditions must either be true or false.",
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Subject: e.Condition.Range().Ptr(),
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Context: &e.SrcRange,
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})
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return cty.UnknownVal(resultType), diags
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}
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if !condResult.IsKnown() {
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return cty.UnknownVal(resultType), diags
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}
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condResult, err := convert.Convert(condResult, cty.Bool)
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if err != nil {
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Incorrect condition type",
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Detail: fmt.Sprintf("The condition expression must be of type bool."),
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Subject: e.Condition.Range().Ptr(),
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Context: &e.SrcRange,
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})
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return cty.UnknownVal(resultType), diags
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}
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if condResult.True() {
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diags = append(diags, trueDiags...)
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if convs[0] != nil {
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var err error
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trueResult, err = convs[0](trueResult)
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if err != nil {
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// Unsafe conversion failed with the concrete result value
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Inconsistent conditional result types",
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Detail: fmt.Sprintf(
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"The true result value has the wrong type: %s.",
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err.Error(),
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),
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Subject: e.TrueResult.Range().Ptr(),
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Context: &e.SrcRange,
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})
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trueResult = cty.UnknownVal(resultType)
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}
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}
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return trueResult, diags
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} else {
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diags = append(diags, falseDiags...)
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if convs[1] != nil {
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var err error
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falseResult, err = convs[1](falseResult)
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if err != nil {
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// Unsafe conversion failed with the concrete result value
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Inconsistent conditional result types",
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Detail: fmt.Sprintf(
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"The false result value has the wrong type: %s.",
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err.Error(),
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),
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Subject: e.TrueResult.Range().Ptr(),
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Context: &e.SrcRange,
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})
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falseResult = cty.UnknownVal(resultType)
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}
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}
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return falseResult, diags
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}
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}
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func (e *ConditionalExpr) Range() zcl.Range {
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return e.SrcRange
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}
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func (e *ConditionalExpr) StartRange() zcl.Range {
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return e.Condition.StartRange()
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}
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type TupleConsExpr struct {
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Exprs []Expression
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SrcRange zcl.Range
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OpenRange zcl.Range
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}
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func (e *TupleConsExpr) walkChildNodes(w internalWalkFunc) {
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for i, expr := range e.Exprs {
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e.Exprs[i] = w(expr).(Expression)
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}
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}
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func (e *TupleConsExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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var vals []cty.Value
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var diags zcl.Diagnostics
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vals = make([]cty.Value, len(e.Exprs))
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for i, expr := range e.Exprs {
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val, valDiags := expr.Value(ctx)
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vals[i] = val
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diags = append(diags, valDiags...)
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}
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return cty.TupleVal(vals), diags
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}
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func (e *TupleConsExpr) Range() zcl.Range {
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return e.SrcRange
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}
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func (e *TupleConsExpr) StartRange() zcl.Range {
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return e.OpenRange
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}
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type ObjectConsExpr struct {
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Items []ObjectConsItem
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SrcRange zcl.Range
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OpenRange zcl.Range
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}
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type ObjectConsItem struct {
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KeyExpr Expression
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ValueExpr Expression
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}
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func (e *ObjectConsExpr) walkChildNodes(w internalWalkFunc) {
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for i, item := range e.Items {
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e.Items[i].KeyExpr = w(item.KeyExpr).(Expression)
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e.Items[i].ValueExpr = w(item.ValueExpr).(Expression)
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}
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}
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func (e *ObjectConsExpr) Value(ctx *zcl.EvalContext) (cty.Value, zcl.Diagnostics) {
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var vals map[string]cty.Value
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var diags zcl.Diagnostics
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// This will get set to true if we fail to produce any of our keys,
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// either because they are actually unknown or if the evaluation produces
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// errors. In all of these case we must return DynamicPseudoType because
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// we're unable to know the full set of keys our object has, and thus
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// we can't produce a complete value of the intended type.
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//
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// We still evaluate all of the item keys and values to make sure that we
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// get as complete as possible a set of diagnostics.
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known := true
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vals = make(map[string]cty.Value, len(e.Items))
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for _, item := range e.Items {
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key, keyDiags := item.KeyExpr.Value(ctx)
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diags = append(diags, keyDiags...)
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val, valDiags := item.ValueExpr.Value(ctx)
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diags = append(diags, valDiags...)
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if keyDiags.HasErrors() {
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known = false
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continue
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}
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if key.IsNull() {
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Null value as key",
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Detail: "Can't use a null value as a key.",
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Subject: item.ValueExpr.Range().Ptr(),
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})
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known = false
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continue
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}
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var err error
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key, err = convert.Convert(key, cty.String)
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if err != nil {
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diags = append(diags, &zcl.Diagnostic{
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Severity: zcl.DiagError,
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Summary: "Incorrect key type",
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Detail: fmt.Sprintf("Can't use this value as a key: %s.", err.Error()),
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Subject: item.ValueExpr.Range().Ptr(),
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})
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known = false
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continue
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}
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if !key.IsKnown() {
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known = false
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continue
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}
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keyStr := key.AsString()
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vals[keyStr] = val
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}
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if !known {
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return cty.DynamicVal, diags
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}
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return cty.ObjectVal(vals), diags
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}
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func (e *ObjectConsExpr) Range() zcl.Range {
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return e.SrcRange
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}
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func (e *ObjectConsExpr) StartRange() zcl.Range {
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return e.OpenRange
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}
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