549 lines
16 KiB
Go
549 lines
16 KiB
Go
package fakes
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import (
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"fmt"
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"math"
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"sort"
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"strings"
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)
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// node is a compiled template element: literal, choice, or template. Compiling
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// JSON into these once (see compile) means rendering never re-inspects the raw
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// JSON or re-sums weights.
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type node interface{ isNode() }
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// rng is the randomness the renderer draws from. Passing it in keeps the render
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// functions a pure core over an explicit effect; *rand.Rand satisfies it.
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type rng interface {
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IntN(n int) int
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Float64() float64
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}
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// literal is emitted verbatim, never formatted.
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type literal string
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func (literal) isNode() {}
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// group is a namespace of named children, built from a directory of JSON files
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// and subdirectories. It has no value of its own: descend into a named child by
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// dot path; rendering one is an error (see Fake).
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type group struct{ children map[string]node }
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func (*group) isNode() {}
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// choice picks one of its items. cum holds cumulative weights for a weighted
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// pick; when nil the choice is uniform and selection is O(1).
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type choice struct {
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items []node
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cum []float64
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}
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func (*choice) isNode() {}
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// template renders a format string, substituting {tokens} from fields. repeat
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// (default 1) renders that format that many times and joins the results with
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// separator (default ""), each render an independent pick.
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type template struct {
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format string
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fields map[string]node
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repeat int
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separator string
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}
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func (*template) isNode() {}
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// Fake generates a value for a dot path. Each segment descends one level: folder
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// names and the category (JSON file) come first, then named fields within it,
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// e.g. "sv_SE.address" or "sv_SE.address.street". Choices along the way are
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// resolved at random. A path naming a folder (no value of its own) is an error.
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func (f *Fakes) Fake(path string) (string, error) {
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n, err := descend(f.rand, &group{children: f.categories}, strings.Split(path, "."))
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if err != nil {
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return "", fmt.Errorf("fakes: %s: %w", path, err)
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}
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if _, ok := n.(*group); ok {
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return "", fmt.Errorf("fakes: %s names a folder, not a value", path)
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}
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return render(f.rand, n), nil
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}
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// descend walks named fields, resolving choices it meets along the way. It is
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// the one render-side step that can fail, because the path comes from the
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// caller and may name a field that does not exist.
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func descend(r rng, n node, segments []string) (node, error) {
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if len(segments) == 0 {
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return n, nil
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}
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switch n := n.(type) {
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case *group:
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child, ok := n.children[segments[0]]
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if !ok {
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return nil, fmt.Errorf("no entry %q", segments[0])
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}
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return descend(r, child, segments[1:])
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case *template:
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child, ok := n.fields[segments[0]]
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if !ok {
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return nil, fmt.Errorf("no field %q", segments[0])
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}
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return descend(r, child, segments[1:])
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case *choice:
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return descend(r, pick(r, n), segments) // a choice consumes no path segment
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default:
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return nil, fmt.Errorf("cannot descend into %T at %q", n, segments[0])
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}
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}
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// render evaluates a compiled node to a string. compile validates every node up
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// front, so rendering a compiled tree cannot fail.
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func render(r rng, n node) string {
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switch n := n.(type) {
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case literal:
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return string(n)
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case *choice:
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return render(r, pick(r, n))
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case *template:
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if n.repeat == 1 {
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return expand(r, n.format, n.fields)
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}
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var b strings.Builder
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for i := 0; i < n.repeat; i++ {
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if i > 0 {
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b.WriteString(n.separator)
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}
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b.WriteString(expand(r, n.format, n.fields))
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}
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return b.String()
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default:
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panic(fmt.Sprintf("fakes: uncompiled node %T", n))
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}
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}
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// pick selects one item. Uniform choices are O(1); weighted choices are an
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// O(log n) search over precomputed cumulative weights. compile guarantees a
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// non-empty choice and a finite positive total, so the index is always in range.
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func pick(r rng, c *choice) node {
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if c.cum == nil {
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return c.items[r.IntN(len(c.items))]
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}
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x := r.Float64() * c.cum[len(c.cum)-1]
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i := sort.Search(len(c.cum), func(i int) bool { return c.cum[i] > x })
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return c.items[i]
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}
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// expand renders a format string. Character classes: '0' digit 0-9, '1' digit
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// 1-9, 'A' letter A-Z, 'a' letter a-z. '#' escapes the next character to a
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// literal ("#0" -> "0", "##" -> "#"). A "{name(args)}" token calls a builtin;
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// any other "{token}" is substituted via resolve; every other rune is literal.
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// checkTokens validated the braces and tokens at compile time, so this scan
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// cannot fail.
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func expand(r rng, format string, fields map[string]node) string {
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var b strings.Builder
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rs := []rune(format)
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for i := 0; i < len(rs); i++ {
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switch c := rs[i]; c {
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case '#':
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if i++; i < len(rs) {
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b.WriteRune(rs[i])
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} else {
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b.WriteRune('#')
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}
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case '0':
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b.WriteByte(byte('0' + r.IntN(10)))
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case '1':
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b.WriteByte(byte('1' + r.IntN(9)))
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case 'A':
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b.WriteByte(byte('A' + r.IntN(26)))
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case 'a':
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b.WriteByte(byte('a' + r.IntN(26)))
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case '{':
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end := i + 1
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for rs[end] != '}' { // checkTokens guarantees a closing '}'
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end++
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}
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body := string(rs[i+1 : end])
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if name, args, ok := funcCall(body); ok {
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b.WriteString(builtins[name].call(r, b.String(), args)) // b.String() is the output so far
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} else {
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b.WriteString(resolve(r, body, fields))
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}
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i = end
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default:
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b.WriteRune(c)
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}
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}
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return b.String()
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}
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// resolve renders a "{token}" body: one or more names separated by '|', one
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// picked at random. A name is a sibling field or a {..path} reference, which
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// linkRefs bound into fields too; checkTokens and linkRefs guarantee both exist.
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func resolve(r rng, token string, fields map[string]node) string {
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names := strings.Split(token, "|")
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return render(r, fields[names[r.IntN(len(names))]])
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}
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// builtin is a format-string function invoked as {name(args)}. It receives the
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// rng, the output emitted so far in the current expansion (for derivations such
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// as a checksum over preceding digits), and its args. A builtin must be pure
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// over those inputs — no wall-clock, no crypto/rand — so seeding stays
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// reproducible; a time-based id derives its time from the rng.
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type builtin struct {
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arity int
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call func(r rng, emitted string, args []string) string
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}
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var builtins = map[string]builtin{
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// luhn emits a Luhn check digit over the digits emitted so far. Put it after
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// its payload (its input is everything to its left); prepend fixed parts,
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// e.g. a century, in an enclosing template so they stay out of the sum.
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"luhn": {0, func(_ rng, emitted string, _ []string) string {
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return string(rune('0' + luhnCheck(emitted)))
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}},
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}
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// funcCall splits a "{token}" body shaped name(args) into its parts; ok is false
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// for a plain field or alternation body. A '(' without a trailing ')' yields
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// ok=false; checkFunc reports it as malformed at compile time.
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func funcCall(body string) (name string, args []string, ok bool) {
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lp := strings.IndexByte(body, '(')
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if lp < 0 || !strings.HasSuffix(body, ")") {
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return "", nil, false
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}
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return body[:lp], splitArgs(body[lp+1 : len(body)-1]), true
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}
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// splitArgs parses a function arg list: comma-separated, trimmed; empty -> none.
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func splitArgs(s string) []string {
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if strings.TrimSpace(s) == "" {
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return nil
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}
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args := strings.Split(s, ",")
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for i := range args {
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args[i] = strings.TrimSpace(args[i])
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}
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return args
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}
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// checkFunc validates a function token at compile time: well-formed, naming a
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// known builtin, with the arg count that builtin takes.
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func checkFunc(body string) error {
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name, args, ok := funcCall(body)
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if !ok {
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return fmt.Errorf("malformed function token {%s}", body)
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}
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b, known := builtins[name]
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if !known {
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return fmt.Errorf("token {%s}: unknown function %q", body, name)
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}
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if len(args) != b.arity {
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return fmt.Errorf("token {%s}: %s takes %d args, got %d", body, name, b.arity, len(args))
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}
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return nil
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}
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// luhnCheck returns the Luhn check digit (0-9) over the digits of s; non-digit
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// runes are skipped. Doubling runs from the rightmost digit, so the result is
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// correct whatever the payload length.
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func luhnCheck(s string) int {
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sum, double := 0, true
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for i := len(s) - 1; i >= 0; i-- {
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c := s[i]
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if c < '0' || c > '9' {
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continue
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}
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d := int(c - '0')
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if double {
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if d *= 2; d > 9 {
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d -= 9
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}
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}
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double = !double
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sum += d
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}
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return (10 - sum%10) % 10
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}
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// compile converts parsed JSON into a node tree, validating structure up front.
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func compile(v any) (node, error) {
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switch v := v.(type) {
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case string:
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return literal(v), nil
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case []any:
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return compileChoice(v)
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case map[string]any:
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return compileTemplate(v)
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default:
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return nil, fmt.Errorf("unsupported node type %T", v)
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}
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}
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func compileChoice(items []any) (node, error) {
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if len(items) == 0 {
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return nil, fmt.Errorf("empty choice")
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}
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c := &choice{items: make([]node, len(items))}
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cum := make([]float64, len(items))
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var total float64
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weighted := false
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for i, raw := range items {
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w, err := weightOf(raw)
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if err != nil {
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return nil, err
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}
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if w != 1 {
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weighted = true
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}
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total += w
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cum[i] = total
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n, err := compile(raw)
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if err != nil {
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return nil, err
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}
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c.items[i] = n
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}
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if weighted { // uniform choices skip the weight table and pick in O(1)
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if total <= 0 || math.IsInf(total, 1) {
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return nil, fmt.Errorf("choice weights must sum to a finite positive number, got %v", total)
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}
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c.cum = cum
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}
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return c, nil
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}
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func compileTemplate(m map[string]any) (node, error) {
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format, ok := m["format"].(string)
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if !ok {
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return nil, fmt.Errorf("template object missing string \"format\"")
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}
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repeat, err := repeatOf(m)
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if err != nil {
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return nil, err
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}
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sep := ""
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if sv, ok := m["separator"]; ok {
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if sep, ok = sv.(string); !ok {
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return nil, fmt.Errorf("separator must be a string, got %T", sv)
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}
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}
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t := &template{format: format, fields: make(map[string]node, len(m)), repeat: repeat, separator: sep}
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for k, v := range m {
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if k == "format" || k == "weight" || k == "repeat" || k == "separator" {
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continue
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}
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n, err := compile(v)
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if err != nil {
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return nil, fmt.Errorf("field %q: %w", k, err)
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}
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t.fields[k] = n
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}
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if err := checkTokens(format, t.fields); err != nil {
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return nil, err
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}
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return t, nil
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}
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// checkTokens validates a format string the way expand scans it, so every
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// "{token}" is balanced and names an existing field. This makes a typo'd or
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// dangling reference a New-time error, never a random render-time one.
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func checkTokens(format string, fields map[string]node) error {
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rs := []rune(format)
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for i := 0; i < len(rs); i++ {
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switch rs[i] {
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case '#':
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i++ // an escaped char is literal, never a token delimiter
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case '{':
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end := i + 1
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for end < len(rs) && rs[end] != '}' {
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end++
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}
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if end >= len(rs) {
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return fmt.Errorf("unterminated '{' in %q", format)
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}
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body := string(rs[i+1 : end])
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if strings.IndexByte(body, '(') >= 0 { // a function token, not a field
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if err := checkFunc(body); err != nil {
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return err
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}
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} else {
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for _, name := range strings.Split(body, "|") {
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if isRef(name) {
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if name == refPrefix {
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return fmt.Errorf("token {%s}: reference has no path", body)
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}
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continue // a root reference; its target is checked at New (see linkRefs)
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}
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if _, ok := fields[name]; !ok {
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return fmt.Errorf("token {%s}: no field %q", body, name)
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}
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}
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}
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i = end
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}
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}
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return nil
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}
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// refPrefix marks a {..path} token: a reference to a node elsewhere in the data
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// root rather than a sibling field. The path after it is the same dot path Fake
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// takes, resolved across every loaded directory (see linkRefs).
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const refPrefix = ".."
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func isRef(name string) bool { return strings.HasPrefix(name, refPrefix) }
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// linkRefs resolves every {..path} reference in the assembled tree, binding the
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// target node into the referring template's fields under the token's key so the
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// ordinary resolver renders it like a sibling. It runs once, after all data is
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// merged, so a reference sees the final (override-resolved) tree. A path that is
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// unknown, names a folder, or steps through a multi-variant choice fails here,
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// keeping a bad reference a New-time error, never a random render-time one. The
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// seen set both skips shared nodes and stops a cyclic reference looping the walk.
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func linkRefs(root map[string]node) error {
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seen := map[node]bool{}
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var visit func(node) error
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visit = func(n node) error {
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if n == nil || seen[n] {
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return nil
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}
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seen[n] = true
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switch n := n.(type) {
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case *group:
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for _, c := range n.children {
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if err := visit(c); err != nil {
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return err
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}
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}
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case *choice:
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for _, it := range n.items {
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if err := visit(it); err != nil {
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return err
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}
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}
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case *template:
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for _, name := range refTokens(n.format) {
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target, err := lookup(root, strings.Split(name[len(refPrefix):], "."))
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if err != nil {
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return fmt.Errorf("reference {%s}: %w", name, err)
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}
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n.fields[name] = target
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}
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for _, c := range n.fields {
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if err := visit(c); err != nil {
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return err
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}
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}
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}
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return nil
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}
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for _, c := range root {
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if err := visit(c); err != nil {
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return err
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}
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}
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return nil
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}
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// lookup finds the single node a reference path names, walking groups and
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// template fields by segment and descending a single-variant choice as a
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// transparent wrapper. A missing segment, a folder target, or a step through a
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// multi-variant choice (which has no one value to bind) is an error.
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func lookup(root map[string]node, segments []string) (node, error) {
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var n node = &group{children: root}
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for i := 0; i < len(segments); i++ {
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switch c := n.(type) {
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case *group:
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child, ok := c.children[segments[i]]
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if !ok {
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return nil, fmt.Errorf("no entry %q", segments[i])
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}
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n = child
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case *template:
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child, ok := c.fields[segments[i]]
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if !ok {
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return nil, fmt.Errorf("no field %q", segments[i])
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}
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n = child
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case *choice:
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if len(c.items) != 1 {
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return nil, fmt.Errorf("%q steps through a %d-way choice", segments[i], len(c.items))
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}
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n, i = c.items[0], i-1 // a choice consumes no segment; reprocess it unwrapped
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default:
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return nil, fmt.Errorf("cannot descend into %T at %q", n, segments[i])
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}
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}
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if _, ok := n.(*group); ok {
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return nil, fmt.Errorf("names a folder, not a value")
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}
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return n, nil
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}
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// refTokens returns the reference names ({..path}, including ones inside a
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// {a|..path} alternation) used in a format string, scanning braces the way
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// expand does. Function tokens carry no references.
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func refTokens(format string) []string {
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var refs []string
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rs := []rune(format)
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for i := 0; i < len(rs); i++ {
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switch rs[i] {
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case '#':
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i++
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case '{':
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end := i + 1
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for end < len(rs) && rs[end] != '}' {
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end++
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}
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if end >= len(rs) {
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return refs // checkTokens already rejected the unterminated brace
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}
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if body := string(rs[i+1 : end]); strings.IndexByte(body, '(') < 0 {
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for _, name := range strings.Split(body, "|") {
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if isRef(name) {
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refs = append(refs, name)
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}
|
|
}
|
|
}
|
|
i = end
|
|
}
|
|
}
|
|
return refs
|
|
}
|
|
|
|
// repeatOf reads a template's "repeat" (default 1): how many times its format
|
|
// is rendered and concatenated. A present one must be a positive integer.
|
|
func repeatOf(m map[string]any) (int, error) {
|
|
rv, ok := m["repeat"]
|
|
if !ok {
|
|
return 1, nil
|
|
}
|
|
r, ok := rv.(float64)
|
|
if !ok {
|
|
return 0, fmt.Errorf("repeat must be a number, got %T", rv)
|
|
}
|
|
if math.IsNaN(r) || math.IsInf(r, 0) || r < 1 || r != math.Trunc(r) {
|
|
return 0, fmt.Errorf("repeat must be a positive integer, got %v", rv)
|
|
}
|
|
return int(r), nil
|
|
}
|
|
|
|
// weightOf reads a node's "weight" (default 1) from its raw JSON form. Only
|
|
// template objects carry weight; a present one must be finite and non-negative.
|
|
func weightOf(raw any) (float64, error) {
|
|
m, ok := raw.(map[string]any)
|
|
if !ok {
|
|
return 1, nil
|
|
}
|
|
wv, ok := m["weight"]
|
|
if !ok {
|
|
return 1, nil
|
|
}
|
|
w, ok := wv.(float64)
|
|
if !ok {
|
|
return 0, fmt.Errorf("weight must be a number, got %T", wv)
|
|
}
|
|
if w < 0 || math.IsNaN(w) || math.IsInf(w, 0) {
|
|
return 0, fmt.Errorf("weight must be finite and non-negative, got %v", w)
|
|
}
|
|
return w, nil
|
|
}
|