From e084ac2b84fac3b5ae63de15080b863d31f5b2fc Mon Sep 17 00:00:00 2001 From: Rose Hogenson Date: Tue, 28 Oct 2025 20:32:44 -0700 Subject: Rename files to ccl --- asspb.go | 743 --------------------------------------------------------------- 1 file changed, 743 deletions(-) delete mode 100644 asspb.go (limited to 'asspb.go') diff --git a/asspb.go b/asspb.go deleted file mode 100644 index 926d78b..0000000 --- a/asspb.go +++ /dev/null @@ -1,743 +0,0 @@ -// Me: Mom can we have textproto? -// Mom: no we have textproto at home -// textproto at home: -// -// The asspb language has similar semantics to JSON, the only exception being -// the lack of null. -// -// # Comments -// -// There are two types of comments, line comments and C-style comments. Line -// comments are written with # or //, and extend from there to the end of the -// line. C-style comments are written with /* and */, and like C they may not -// be nested. -// -// # Comments are important -// // in a configuration language -// /* what do I know */ -// -// # Numbers -// -// Numbers are written in base 10 and can optionally have a fractional part or -// an exponent written with "e" or "E". As a special case, a number prefixed -// with "0x" or "0X" can be written in base 16. -// -// 100 -// -30 -// 0xabc -// -0xdef -// 13.5 -// 1e100 -// -// Leading zeros are not permitted in decimal numbers, due to potential -// confusion with octal (which is not supported). -// -// As a lexical matter, numbers must be separated from subsequent field names by -// intervening whitespace or comments: -// -// # invalid -// field1:10field2:20 -// # ok -// field1:10 field2:20 -// -// # Strings -// -// Strings are written with " or ' and any sequence of intermediate bytes (with -// the exception of escape sequences which are described below). Strings must be -// valid UTF-8 after escape sequences are expanded. -// -// 'asdf' -// "that's cool" -// "\tall\n\tyour\n\tfavorite\n\tescape\n\tsequences" -// -// Note that strings can contain newline without needing an escape sequence -// -// 'a multiline -// string' -// -// Backslash characters inside a string are interpreted as an escape sequence. -// Any escape sequence not described below is an error. The escape sequences -// are identical to C11, with the exception that \x always takes exactly 2 -// hex characters. -// -// \' single quote 0x27 -// \" double quote 0x22 -// \? question mark 0x3f (why is this in C) -// \\ backslash 0x5c -// \a bell 0x07 -// \b backspace 0x07 -// \f form feed 0x0c -// \n newline 0x0a -// \r carriage return 0x0d -// \t tab 0x09 -// \v vertical tab 0x0b -// -// \nnn 3-digit octal value nnn -// \xnn 2-digit hex value nn -// \unnnn unicode code point U+nnnn -// \Unnnnnnnn unicode code point U+nnnnnnnn (UTF8) -// -// As an extension to the C11 escapes, a backslash immediately before a newline -// character (0x0a) will remove the newline character from the resulting string -// (and for you Microsoft Windows users, backslash followed by \r\n is -// also removed) -// -// 'backslash also can \ -// remove newlines' -// # equivalent to -// 'backslash also can remove newlines' -// -// If multiple string literals are written next to each other with only -// whitespace or comments in between, the result is to concatenate the strings -// -// 'multiple strings' " concatenated" -// # equivalent to -// 'multiple strings concatenated' -// -// # Bool -// -// Bool values can be true or false (classic), and are written using one of the -// below strings. -// -// true -// yes -// on -// -// false -// no -// off -// -// # Lists -// -// Lists are written with square brackets and elements are separated by comma. -// -// [1, 2, 3] -// [{nested: "messages"}, {are: "also"}, {allowed: yes}] -// -// Trailing comma is allowed -// -// [ -// "suck", -// "it", -// "JSON", -// ] -// -// # Messages -// -// Messages are an unordered set of key-value pairs: -// -// {key1: "value1" key2: "value2"} -// -// Keys can be alphanumeric or use underscore; no other characters are -// permitted. Values can be any of the value types here described. Key-value -// pairs must be written with a : between the key and value, except when the -// value is syntactically a message (in that case the colon is optional) -// -// { -// key1: "value1" -// key2 {} -// } -// -// As a special case, when a key is written more than once in a message, it's -// treated the same as if the values had been written in a list. If some of the -// values are already lists, they are appended, preserving the order in which -// the values appear in the input file. -// -// { -// key: [1, 2] -// key: 3 -// key: [4, 5, 6] -// } -// # equivalent to -// { -// key: [1, 2, 3, 4, 5, 6] -// } -// -// # Disclaimer -// -// This package is still experimental, expect breaking changes. -package asspb - -import ( - "bytes" - "encoding" - "encoding/base64" - "errors" - "fmt" - "iter" - "math" - "reflect" - "regexp" - "strconv" - "strings" - "unicode/utf8" -) - -type syntaxError struct { - line, col int - reason string -} - -func newSyntaxError(data []byte, idx int, reason string, args ...any) error { - line, col := 1, 1 - for _, b := range data[:idx] { - if b == '\n' { - line++ - col = 1 - } else { - col++ - } - } - return &syntaxError{line, col, fmt.Sprintf(reason, args...)} -} - -func (e *syntaxError) Error() string { - return fmt.Sprintf("%d:%d syntax error: %s", e.line, e.col, e.reason) -} - -type structField struct { - ty reflect.Type - name string -} - -func fieldMap(out map[structField]int, types map[reflect.Type]bool, s reflect.Type) error { - if types[s] { - // Already processed - return nil - } - types[s] = true - for i := range s.NumField() { - field := s.Field(i) - if !field.IsExported() { - continue - } - fieldName := field.Name - if tag, ok := field.Tag.Lookup("ccl"); ok { - var opts string - fieldName, opts, _ = strings.Cut(tag, ",") - if fieldName == "-" { - continue - } - for opt := range strings.FieldsFuncSeq(opts, func(r rune) bool { return r == ',' }) { - return fmt.Errorf("unknown option %q", opt) - } - } - if _, ok := out[structField{s, fieldName}]; ok { - return fmt.Errorf("multiple fields with name %q", fieldName) - } - out[structField{s, fieldName}] = i - if field.Type.Kind() == reflect.Struct { - if err := fieldMap(out, types, field.Type); err != nil { - return err - } - } else if (field.Type.Kind() == reflect.Pointer || field.Type.Kind() == reflect.Slice) && field.Type.Elem().Kind() == reflect.Struct { - if err := fieldMap(out, types, field.Type.Elem()); err != nil { - return err - } - } else if field.Type.Kind() == reflect.Slice && field.Type.Elem().Kind() == reflect.Pointer && field.Type.Elem().Elem().Kind() == reflect.Struct { - if err := fieldMap(out, types, field.Type.Elem().Elem()); err != nil { - return err - } - } - } - return nil -} - -type parser struct { - nextTok func() (token, error, bool) - tok []byte - err error - data []byte - i int -} - -func (p *parser) error(reason string, args ...any) error { - return newSyntaxError(p.data, p.i, reason, args...) -} - -var errEOF = errors.New("premature EOF") - -func (p *parser) peek() ([]byte, error) { - if p.err != nil || p.tok != nil { - return p.tok, p.err - } - tok, err, ok := p.nextTok() - if !ok { - p.err = errEOF - return nil, p.err - } - if err != nil { - p.err = err - return nil, p.err - } - p.tok = tok.b - p.i = tok.i - return p.tok, nil -} - -func (p *parser) next() ([]byte, error) { - tok, err := p.peek() - if err != nil { - return nil, err - } - p.tok = nil - return tok, nil -} - -var ( - numRE = regexp.MustCompile(`^[-+]?(0[xX][0-9a-fA-F]+|((0|[1-9][0-9]*)(\.[0-9]*)?|\.[0-9]+)([eE][-+]?[0-9]+)?)$`) - hexRE = regexp.MustCompile(`^([-+]?)0[xX]`) -) - -func (p *parser) parseNum(numBytes []byte) (any, error) { - if !numRE.Match(numBytes) { - return nil, p.error("invalid number") - } - if hex := hexRE.FindSubmatch(numBytes); hex != nil { - if string(hex[1]) == "-" { - n, err := strconv.ParseInt(string(numBytes[len(hex[0]):]), 16, 64) - if err != nil { - return nil, p.error("invalid number") - } - return -n, nil - } else { - n, err := strconv.ParseUint(string(numBytes[len(hex[0]):]), 16, 64) - if err != nil { - return nil, p.error("invalid number") - } - return n, nil - } - } - if bytes.ContainsAny(numBytes, ".eE") { - n, err := strconv.ParseFloat(string(numBytes), 64) - if err != nil { - return nil, p.error("invalid number") - } - return n, nil - } - if bytes.HasPrefix(numBytes, []byte("-")) { - n, err := strconv.ParseInt(string(numBytes), 10, 64) - if err != nil { - return nil, p.error("invalid number") - } - return n, nil - } else { - n, err := strconv.ParseUint(string(bytes.TrimPrefix(numBytes, []byte("+"))), 10, 64) - if err != nil { - return nil, p.error("invalid number") - } - return n, nil - } -} - -var escapesRE = regexp.MustCompile(`(?s)\\(.|\r\n|[0-7]{3}|x[0-9a-fA-F]{2}|u[0-9a-fA-F]{4}|U[0-9a-fA-F]{8})`) - -func init() { - escapesRE.Longest() -} - -func (p *parser) unescape(rawStr []byte) ([]byte, error) { - var err error - escaped := escapesRE.ReplaceAllFunc(rawStr, func(escape []byte) []byte { - switch string(escape) { - case `\'`: - return []byte("'") - case `\"`: - return []byte(`"`) - case `\?`: - return []byte("?") - case `\\`: - return []byte(`\`) - case `\a`: - return []byte("\a") - case `\b`: - return []byte("\b") - case `\f`: - return []byte("\f") - case `\n`: - return []byte("\n") - case `\r`: - return []byte("\r") - case `\t`: - return []byte("\t") - case `\v`: - return []byte("\v") - case "\\\n", "\\\r\n": - return nil - } - switch { - case bytes.HasPrefix(escape, []byte(`\x`)): - var n uint64 - if n, err = strconv.ParseUint(string(escape[2:]), 16, 8); err != nil { - err = p.error("invalid hex escape %q: %s", escape, err) - return nil - } - return []byte{byte(n)} - case bytes.HasPrefix(escape, []byte(`\u`)), bytes.HasPrefix(escape, []byte(`\U`)): - var n int64 - if n, err = strconv.ParseInt(string(escape[2:]), 16, 32); err != nil { - err = p.error("invalid unicode escape %q: %s", escape, err) - return nil - } - return utf8.AppendRune(nil, rune(n)) - default: - if len(escape) != 4 { - err = p.error("invalid string escape %q", escape) - return nil - } - var n int64 - if n, err = strconv.ParseInt(string(escape[1:]), 8, 32); err != nil { - err = p.error("invalid string escape %q", escape) - return nil - } - if n > 255 { - err = p.error("invalid octal escape %q %d > 255", escape, n) - return nil - } - return []byte{byte(n)} - } - }) - if err != nil { - return nil, err - } - if !utf8.Valid(escaped) { - return nil, p.error("syntax error: string %q is not UTF-8 encoded", escaped) - } - return escaped, nil -} - -func (p *parser) parseString(tok []byte) (string, error) { - s := new(strings.Builder) - for { - ss, err := p.unescape(tok[1 : len(tok)-1]) - if err != nil { - return "", err - } - s.Write(ss) - nextTok, err := p.peek() - if err != nil || nextTok[0] != '\'' && nextTok[0] != '"' { - return s.String(), nil - } - p.next() - tok = nextTok - } -} - -func (p *parser) parseMessage() (map[string][]any, error) { - m := make(map[string][]any) - for { - tok, err := p.next() - if err != nil || tok[0] == '}' { - return m, err - } - if err := p.parseFieldVal(m, tok); err != nil { - return nil, err - } - } -} - -func (p *parser) parseVal(tok []byte) ([]any, error) { - switch tok[0] { - case '{': - m, err := p.parseMessage() - if err != nil { - return nil, err - } - return []any{m}, nil - case '[': - return p.parseList() - case '\'', '"': - s, err := p.parseString(tok) - if err != nil { - return nil, err - } - return []any{s}, nil - default: - switch string(tok) { - case "true", "yes", "on": - return []any{true}, nil - case "false", "no", "off": - return []any{false}, nil - default: - n, err := p.parseNum(tok) - if err != nil { - return nil, err - } - return []any{n}, nil - } - } -} - -func (p *parser) parseList() ([]any, error) { - var l []any - for i := 0; ; i++ { - tok, err := p.next() - if err != nil || tok[0] == ']' { - return l, err - } - if i > 0 { - if tok[0] != ',' { - return nil, p.error("expecting comma") - } - tok, err = p.next() - if err != nil || tok[0] == ']' { // allow trailing comma - return l, err - } - } - vs, err := p.parseVal(tok) - if err != nil { - return nil, err - } - l = append(l, vs...) - } -} - -func (p *parser) parseFieldVal(m map[string][]any, field []byte) error { - if b := field[0]; !(b == '_' || 'a' <= b && b <= 'z' || 'A' <= b && b <= 'Z') { - return p.error("expecting field") - } - tok, err := p.next() - if err != nil { - return err - } - switch tok[0] { - case '{': - vs, err := p.parseVal(tok) - if err != nil { - return err - } - m[string(field)] = append(m[string(field)], vs...) - case ':': - tok, err := p.next() - if err != nil { - return err - } - vs, err := p.parseVal(tok) - if err != nil { - return err - } - m[string(field)] = append(m[string(field)], vs...) - default: - return p.error("expecting colon") - } - return nil -} - -func (p *parser) parse() (map[string][]any, error) { - m := make(map[string][]any) - for { - tok, err := p.next() - if err != nil { - if err == errEOF { - return m, nil - } - return nil, err - } - if err := p.parseFieldVal(m, tok); err != nil { - return nil, err - } - } -} - -func intLimits(kind reflect.Kind) (min int64, max uint64, ok bool) { - switch kind { - case reflect.Int: - return math.MinInt, math.MaxInt, true - case reflect.Int8: - return math.MinInt8, math.MaxInt8, true - case reflect.Int16: - return math.MinInt16, math.MaxInt16, true - case reflect.Int32: - return math.MinInt32, math.MaxInt32, true - case reflect.Int64: - return math.MinInt64, math.MaxInt64, true - case reflect.Uint: - return 0, math.MaxUint, true - case reflect.Uint8: - return 0, math.MaxUint8, true - case reflect.Uint16: - return 0, math.MaxUint16, true - case reflect.Uint32: - return 0, math.MaxUint32, true - case reflect.Uint64: - return 0, math.MaxUint64, true - default: - return 0, 0, false - } -} - -func unpackVal(fieldVal reflect.Value, fieldMap map[structField]int, val any, field string) error { - switch val := val.(type) { - case bool: - switch fieldVal.Kind() { - case reflect.Bool: - fieldVal.SetBool(val) - case reflect.Int, reflect.Int8, reflect.Int16, reflect.Int32, reflect.Int64: - if val { - fieldVal.SetInt(1) - } else { - fieldVal.SetInt(0) - } - case reflect.Uint, reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64: - if val { - fieldVal.SetUint(1) - } else { - fieldVal.SetUint(0) - } - default: - return fmt.Errorf("field %q should have type bool", field) - } - case uint64: - switch fieldVal.Kind() { - case reflect.Float32, reflect.Float64: - fieldVal.SetFloat(float64(val)) - return nil - } - min, max, ok := intLimits(fieldVal.Kind()) - if !ok { - return fmt.Errorf("field %q should have type int", field) - } - if val > max { - return fmt.Errorf("number %d is out of range for %s", val, fieldVal.Kind()) - } - if min == 0 { // unsigned - fieldVal.SetUint(val) - } else { - fieldVal.SetInt(int64(val)) - } - case int64: - switch fieldVal.Kind() { - case reflect.Float32, reflect.Float64: - fieldVal.SetFloat(float64(val)) - return nil - } - min, max, ok := intLimits(fieldVal.Kind()) - if !ok { - return fmt.Errorf("field %q should have type int", field) - } - if val < min || val > 0 && uint64(val) > max { - return fmt.Errorf("number %d is out of range for %s", val, fieldVal.Kind()) - } - if min == 0 { // unsigned - fieldVal.SetUint(uint64(val)) - } else { - fieldVal.SetInt(val) - } - case float64: - switch fieldVal.Kind() { - case reflect.Float32, reflect.Float64: - fieldVal.SetFloat(float64(val)) - default: - return fmt.Errorf("field %q should have type float64 or float32", field) - } - case string: - if _, ok := fieldVal.Interface().(encoding.TextUnmarshaler); ok { - if fieldVal.Kind() == reflect.Pointer && fieldVal.IsNil() { - fieldVal.Set(reflect.New(fieldVal.Type().Elem())) - } - return fieldVal.Interface().(encoding.TextUnmarshaler).UnmarshalText([]byte(val)) - } - if unmarshaler, ok := fieldVal.Addr().Interface().(encoding.TextUnmarshaler); ok { - return unmarshaler.UnmarshalText([]byte(val)) - } - switch { - case fieldVal.Kind() == reflect.String: - fieldVal.SetString(val) - case fieldVal.Kind() == reflect.Slice && fieldVal.Type().Elem() == reflect.TypeFor[byte](): - b, err := base64.StdEncoding.DecodeString(val) - if err != nil { - return fmt.Errorf("field %q: bad base64", field) - } - fieldVal.Set(reflect.ValueOf(b)) - default: - return fmt.Errorf("field %q should have type string (got %s)", field, fieldVal.Type()) - } - case map[string][]any: - if !(fieldVal.Kind() == reflect.Struct || fieldVal.Kind() == reflect.Pointer && fieldVal.Type().Elem().Kind() == reflect.Struct) { - return fmt.Errorf("field %q should have type struct (got %s)", field, fieldVal.Type()) - } - if fieldVal.Kind() == reflect.Pointer { - if fieldVal.IsNil() { - fieldVal.Set(reflect.New(fieldVal.Type().Elem())) - } - fieldVal = fieldVal.Elem() - } - if err := unpackStruct(fieldVal, fieldMap, val); err != nil { - return err - } - } - return nil -} - -func unpackStruct(out reflect.Value, fieldMap map[structField]int, msg map[string][]any) error { - for field, vals := range msg { - fieldIdx, ok := fieldMap[structField{out.Type(), field}] - if !ok { - return fmt.Errorf("no field named %q", field) - } - fieldVal := out.Field(fieldIdx) - if fieldVal.Kind() == reflect.Slice && fieldVal.Type().Elem() != reflect.TypeFor[byte]() { - l := reflect.MakeSlice(fieldVal.Type(), len(vals), len(vals)) - for i, val := range vals { - if err := unpackVal(l.Index(i), fieldMap, val, field); err != nil { - return err - } - } - if fieldVal.IsNil() { - fieldVal.Set(reflect.MakeSlice(fieldVal.Type(), 0, 0)) - } - fieldVal.Set(reflect.AppendSlice(fieldVal, l)) - continue - } - if len(vals) != 1 { - return fmt.Errorf("field %q is not repeated", field) - } - if err := unpackVal(fieldVal, fieldMap, vals[0], field); err != nil { - return err - } - } - return nil -} - -// Unmarshal parses a asspb message and writes the result into v. v must be a -// non-nil pointer to a struct. -// -// Unmarshal accepts a top-level message, which is equivalent to the "message" -// type described above, but without the surrounding braces. For example: -// -// key1: "val1" -// key2: "val2" -// -// The exact semantics of which asspb types map to which Go types is a bit -// complicated and I don't feel like writing out all the rules, so suffice it -// to say that the usual stuff should work. As a special case, a []byte field -// expects a base64-encoded string. -// -// You can override a field's name using a struct tag "ccl", for example -// -// type message struct { -// MyField int `ccl:"my_field"` -// } -// -// This message could decode, for example `my_field:5` -// -// If a field has type T where T or *T implements [encoding.TextUnmarshaler], -// then a string value will be decoded by calling UnmarshalText. No other -// customization is supported, this isn't encoding/json. -func Unmarshal(data []byte, v any) error { - val := reflect.ValueOf(v) - if val.Kind() != reflect.Pointer || val.IsNil() || val.Type().Elem().Kind() != reflect.Struct { - return fmt.Errorf("value must be a non-nil pointer to a struct") - } - fields := make(map[structField]int) - if err := fieldMap(fields, make(map[reflect.Type]bool), val.Type().Elem()); err != nil { - return err - } - nextToken, stop := iter.Pull2(tokens(data)) - defer stop() - msg, err := (&parser{nextTok: nextToken, data: data}).parse() - if err != nil { - return err - } - return unpackStruct(val.Elem(), fields, msg) -} -- cgit v1.3.1