394 lines
14 KiB
Go
394 lines
14 KiB
Go
// Copyright 2020 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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package jsontext
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import (
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"bytes"
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"errors"
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"io"
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"slices"
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"sync"
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"github.com/go-json-experiment/json/internal/jsonflags"
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"github.com/go-json-experiment/json/internal/jsonwire"
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)
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// NOTE: Value is analogous to v1 json.RawMessage.
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// AppendFormat formats the JSON value in src and appends it to dst
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// according to the specified options.
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// See [Value.Format] for more details about the formatting behavior.
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//
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// The dst and src may overlap.
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// If an error is reported, then the entirety of src is appended to dst.
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func AppendFormat(dst, src []byte, opts ...Options) ([]byte, error) {
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e := getBufferedEncoder(opts...)
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defer putBufferedEncoder(e)
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e.s.Flags.Set(jsonflags.OmitTopLevelNewline | 1)
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if err := e.s.WriteValue(src); err != nil {
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return append(dst, src...), err
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}
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return append(dst, e.s.Buf...), nil
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}
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// Value represents a single raw JSON value, which may be one of the following:
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// - a JSON literal (i.e., null, true, or false)
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// - a JSON string (e.g., "hello, world!")
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// - a JSON number (e.g., 123.456)
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// - an entire JSON object (e.g., {"fizz":"buzz"} )
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// - an entire JSON array (e.g., [1,2,3] )
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//
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// Value can represent entire array or object values, while [Token] cannot.
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// Value may contain leading and/or trailing whitespace.
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type Value []byte
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// Clone returns a copy of v.
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func (v Value) Clone() Value {
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return bytes.Clone(v)
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}
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// String returns the string formatting of v.
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func (v Value) String() string {
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if v == nil {
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return "null"
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}
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return string(v)
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}
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// IsValid reports whether the raw JSON value is syntactically valid
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// according to the specified options.
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//
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// By default (if no options are specified), it validates according to RFC 7493.
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// It verifies whether the input is properly encoded as UTF-8,
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// that escape sequences within strings decode to valid Unicode codepoints, and
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// that all names in each object are unique.
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// It does not verify whether numbers are representable within the limits
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// of any common numeric type (e.g., float64, int64, or uint64).
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//
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// Relevant options include:
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// - [AllowDuplicateNames]
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// - [AllowInvalidUTF8]
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//
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// All other options are ignored.
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func (v Value) IsValid(opts ...Options) bool {
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// TODO: Document support for [WithByteLimit] and [WithDepthLimit].
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d := getBufferedDecoder(v, opts...)
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defer putBufferedDecoder(d)
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_, errVal := d.ReadValue()
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_, errEOF := d.ReadToken()
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return errVal == nil && errEOF == io.EOF
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}
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// Format formats the raw JSON value in place.
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//
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// By default (if no options are specified), it validates according to RFC 7493
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// and produces the minimal JSON representation, where
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// all whitespace is elided and JSON strings use the shortest encoding.
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//
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// Relevant options include:
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// - [AllowDuplicateNames]
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// - [AllowInvalidUTF8]
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// - [EscapeForHTML]
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// - [EscapeForJS]
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// - [PreserveRawStrings]
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// - [CanonicalizeRawInts]
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// - [CanonicalizeRawFloats]
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// - [ReorderRawObjects]
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// - [SpaceAfterColon]
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// - [SpaceAfterComma]
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// - [Multiline]
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// - [WithIndent]
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// - [WithIndentPrefix]
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//
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// All other options are ignored.
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//
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// It is guaranteed to succeed if the value is valid according to the same options.
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// If the value is already formatted, then the buffer is not mutated.
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func (v *Value) Format(opts ...Options) error {
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// TODO: Document support for [WithByteLimit] and [WithDepthLimit].
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return v.format(opts, nil)
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}
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// format accepts two []Options to avoid the allocation appending them together.
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// It is equivalent to v.Format(append(opts1, opts2...)...).
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func (v *Value) format(opts1, opts2 []Options) error {
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e := getBufferedEncoder(opts1...)
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defer putBufferedEncoder(e)
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e.s.Join(opts2...)
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e.s.Flags.Set(jsonflags.OmitTopLevelNewline | 1)
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if err := e.s.WriteValue(*v); err != nil {
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return err
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}
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if !bytes.Equal(*v, e.s.Buf) {
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*v = append((*v)[:0], e.s.Buf...)
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}
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return nil
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}
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// Compact removes all whitespace from the raw JSON value.
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//
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// It does not reformat JSON strings or numbers to use any other representation.
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// To maximize the set of JSON values that can be formatted,
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// this permits values with duplicate names and invalid UTF-8.
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//
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// Compact is equivalent to calling [Value.Format] with the following options:
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// - [AllowDuplicateNames](true)
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// - [AllowInvalidUTF8](true)
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// - [PreserveRawStrings](true)
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//
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// Any options specified by the caller are applied after the initial set
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// and may deliberately override prior options.
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func (v *Value) Compact(opts ...Options) error {
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return v.format([]Options{
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AllowDuplicateNames(true),
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AllowInvalidUTF8(true),
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PreserveRawStrings(true),
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}, opts)
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}
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// Indent reformats the whitespace in the raw JSON value so that each element
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// in a JSON object or array begins on a indented line according to the nesting.
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//
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// It does not reformat JSON strings or numbers to use any other representation.
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// To maximize the set of JSON values that can be formatted,
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// this permits values with duplicate names and invalid UTF-8.
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//
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// Indent is equivalent to calling [Value.Format] with the following options:
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// - [AllowDuplicateNames](true)
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// - [AllowInvalidUTF8](true)
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// - [PreserveRawStrings](true)
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// - [Multiline](true)
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//
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// Any options specified by the caller are applied after the initial set
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// and may deliberately override prior options.
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func (v *Value) Indent(opts ...Options) error {
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return v.format([]Options{
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AllowDuplicateNames(true),
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AllowInvalidUTF8(true),
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PreserveRawStrings(true),
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Multiline(true),
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}, opts)
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}
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// Canonicalize canonicalizes the raw JSON value according to the
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// JSON Canonicalization Scheme (JCS) as defined by RFC 8785
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// where it produces a stable representation of a JSON value.
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//
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// JSON strings are formatted to use their minimal representation,
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// JSON numbers are formatted as double precision numbers according
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// to some stable serialization algorithm.
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// JSON object members are sorted in ascending order by name.
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// All whitespace is removed.
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//
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// The output stability is dependent on the stability of the application data
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// (see RFC 8785, Appendix E). It cannot produce stable output from
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// fundamentally unstable input. For example, if the JSON value
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// contains ephemeral data (e.g., a frequently changing timestamp),
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// then the value is still unstable regardless of whether this is called.
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//
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// Canonicalize is equivalent to calling [Value.Format] with the following options:
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// - [CanonicalizeRawInts](true)
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// - [CanonicalizeRawFloats](true)
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// - [ReorderRawObjects](true)
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//
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// Any options specified by the caller are applied after the initial set
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// and may deliberately override prior options.
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//
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// Note that JCS treats all JSON numbers as IEEE 754 double precision numbers.
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// Any numbers with precision beyond what is representable by that form
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// will lose their precision when canonicalized. For example, integer values
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// beyond ±2⁵³ will lose their precision. To preserve the original representation
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// of JSON integers, additionally set [CanonicalizeRawInts] to false:
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//
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// v.Canonicalize(jsontext.CanonicalizeRawInts(false))
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func (v *Value) Canonicalize(opts ...Options) error {
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return v.format([]Options{
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CanonicalizeRawInts(true),
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CanonicalizeRawFloats(true),
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ReorderRawObjects(true),
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}, opts)
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}
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// MarshalJSON returns v as the JSON encoding of v.
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// It returns the stored value as the raw JSON output without any validation.
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// If v is nil, then this returns a JSON null.
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func (v Value) MarshalJSON() ([]byte, error) {
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// NOTE: This matches the behavior of v1 json.RawMessage.MarshalJSON.
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if v == nil {
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return []byte("null"), nil
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}
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return v, nil
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}
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// UnmarshalJSON sets v as the JSON encoding of b.
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// It stores a copy of the provided raw JSON input without any validation.
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func (v *Value) UnmarshalJSON(b []byte) error {
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// NOTE: This matches the behavior of v1 json.RawMessage.UnmarshalJSON.
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if v == nil {
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return errors.New("jsontext.Value: UnmarshalJSON on nil pointer")
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}
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*v = append((*v)[:0], b...)
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return nil
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}
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// Kind returns the starting token kind.
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// For a valid value, this will never include '}' or ']'.
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func (v Value) Kind() Kind {
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if v := v[jsonwire.ConsumeWhitespace(v):]; len(v) > 0 {
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return Kind(v[0]).normalize()
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}
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return invalidKind
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}
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const commaAndWhitespace = ", \n\r\t"
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type objectMember struct {
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// name is the unquoted name.
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name []byte // e.g., "name"
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// buffer is the entirety of the raw JSON object member
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// starting from right after the previous member (or opening '{')
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// until right after the member value.
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buffer []byte // e.g., `, \n\r\t"name": "value"`
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}
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func (x objectMember) Compare(y objectMember) int {
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if c := jsonwire.CompareUTF16(x.name, y.name); c != 0 {
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return c
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}
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// With [AllowDuplicateNames] or [AllowInvalidUTF8],
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// names could be identical, so also sort using the member value.
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return jsonwire.CompareUTF16(
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bytes.TrimLeft(x.buffer, commaAndWhitespace),
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bytes.TrimLeft(y.buffer, commaAndWhitespace))
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}
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var objectMemberPool = sync.Pool{New: func() any { return new([]objectMember) }}
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func getObjectMembers() *[]objectMember {
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ns := objectMemberPool.Get().(*[]objectMember)
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*ns = (*ns)[:0]
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return ns
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}
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func putObjectMembers(ns *[]objectMember) {
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if cap(*ns) < 1<<10 {
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clear(*ns) // avoid pinning name and buffer
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objectMemberPool.Put(ns)
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}
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}
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// mustReorderObjects reorders in-place all object members in a JSON value,
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// which must be valid otherwise it panics.
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func mustReorderObjects(b []byte) {
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// Obtain a buffered encoder just to use its internal buffer as
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// a scratch buffer for reordering object members.
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e2 := getBufferedEncoder()
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defer putBufferedEncoder(e2)
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// Disable unnecessary checks to syntactically parse the JSON value.
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d := getBufferedDecoder(b)
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defer putBufferedDecoder(d)
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d.s.Flags.Set(jsonflags.AllowDuplicateNames | jsonflags.AllowInvalidUTF8 | 1)
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mustReorderObjectsFromDecoder(d, &e2.s.Buf) // per RFC 8785, section 3.2.3
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}
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// mustReorderObjectsFromDecoder recursively reorders all object members in place
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// according to the ordering specified in RFC 8785, section 3.2.3.
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//
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// Pre-conditions:
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// - The value is valid (i.e., no decoder errors should ever occur).
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// - Initial call is provided a Decoder reading from the start of v.
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//
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// Post-conditions:
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// - Exactly one JSON value is read from the Decoder.
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// - All fully-parsed JSON objects are reordered by directly moving
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// the members in the value buffer.
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//
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// The runtime is approximately O(n·log(n)) + O(m·log(m)),
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// where n is len(v) and m is the total number of object members.
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func mustReorderObjectsFromDecoder(d *Decoder, scratch *[]byte) {
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switch tok, err := d.ReadToken(); tok.Kind() {
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case '{':
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// Iterate and collect the name and offsets for every object member.
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members := getObjectMembers()
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defer putObjectMembers(members)
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var prevMember objectMember
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isSorted := true
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beforeBody := d.InputOffset() // offset after '{'
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for d.PeekKind() != '}' {
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beforeName := d.InputOffset()
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var flags jsonwire.ValueFlags
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name, _ := d.s.ReadValue(&flags)
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name = jsonwire.UnquoteMayCopy(name, flags.IsVerbatim())
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mustReorderObjectsFromDecoder(d, scratch)
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afterValue := d.InputOffset()
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currMember := objectMember{name, d.s.buf[beforeName:afterValue]}
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if isSorted && len(*members) > 0 {
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isSorted = objectMember.Compare(prevMember, currMember) < 0
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}
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*members = append(*members, currMember)
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prevMember = currMember
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}
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afterBody := d.InputOffset() // offset before '}'
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d.ReadToken()
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// Sort the members; return early if it's already sorted.
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if isSorted {
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return
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}
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firstBufferBeforeSorting := (*members)[0].buffer
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slices.SortFunc(*members, objectMember.Compare)
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firstBufferAfterSorting := (*members)[0].buffer
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// Append the reordered members to a new buffer,
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// then copy the reordered members back over the original members.
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// Avoid swapping in place since each member may be a different size
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// where moving a member over a smaller member may corrupt the data
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// for subsequent members before they have been moved.
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//
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// The following invariant must hold:
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// sum([m.after-m.before for m in members]) == afterBody-beforeBody
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commaAndWhitespacePrefix := func(b []byte) []byte {
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return b[:len(b)-len(bytes.TrimLeft(b, commaAndWhitespace))]
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}
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sorted := (*scratch)[:0]
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for i, member := range *members {
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switch {
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case i == 0 && &member.buffer[0] != &firstBufferBeforeSorting[0]:
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// First member after sorting is not the first member before sorting,
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// so use the prefix of the first member before sorting.
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sorted = append(sorted, commaAndWhitespacePrefix(firstBufferBeforeSorting)...)
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sorted = append(sorted, bytes.TrimLeft(member.buffer, commaAndWhitespace)...)
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case i != 0 && &member.buffer[0] == &firstBufferBeforeSorting[0]:
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// Later member after sorting is the first member before sorting,
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// so use the prefix of the first member after sorting.
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sorted = append(sorted, commaAndWhitespacePrefix(firstBufferAfterSorting)...)
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sorted = append(sorted, bytes.TrimLeft(member.buffer, commaAndWhitespace)...)
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default:
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sorted = append(sorted, member.buffer...)
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}
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}
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if int(afterBody-beforeBody) != len(sorted) {
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panic("BUG: length invariant violated")
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}
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copy(d.s.buf[beforeBody:afterBody], sorted)
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// Update scratch buffer to the largest amount ever used.
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if len(sorted) > len(*scratch) {
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*scratch = sorted
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}
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case '[':
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for d.PeekKind() != ']' {
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mustReorderObjectsFromDecoder(d, scratch)
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}
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d.ReadToken()
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default:
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if err != nil {
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panic("BUG: " + err.Error())
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}
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}
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}
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