adb0401dac
From-SVN: r178910
632 lines
16 KiB
Go
632 lines
16 KiB
Go
// Copyright 2009 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 xml
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import (
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"bytes"
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"fmt"
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"io"
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"os"
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"reflect"
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"strconv"
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"strings"
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"unicode"
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"utf8"
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)
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// BUG(rsc): Mapping between XML elements and data structures is inherently flawed:
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// an XML element is an order-dependent collection of anonymous
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// values, while a data structure is an order-independent collection
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// of named values.
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// See package json for a textual representation more suitable
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// to data structures.
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// Unmarshal parses an XML element from r and uses the
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// reflect library to fill in an arbitrary struct, slice, or string
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// pointed at by val. Well-formed data that does not fit
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// into val is discarded.
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//
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// For example, given these definitions:
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//
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// type Email struct {
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// Where string `xml:"attr"`
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// Addr string
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// }
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//
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// type Result struct {
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// XMLName xml.Name `xml:"result"`
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// Name string
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// Phone string
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// Email []Email
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// Groups []string `xml:"group>value"`
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// }
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//
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// result := Result{Name: "name", Phone: "phone", Email: nil}
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//
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// unmarshalling the XML input
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//
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// <result>
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// <email where="home">
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// <addr>gre@example.com</addr>
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// </email>
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// <email where='work'>
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// <addr>gre@work.com</addr>
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// </email>
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// <name>Grace R. Emlin</name>
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// <group>
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// <value>Friends</value>
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// <value>Squash</value>
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// </group>
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// <address>123 Main Street</address>
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// </result>
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//
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// via Unmarshal(r, &result) is equivalent to assigning
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//
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// r = Result{xml.Name{"", "result"},
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// "Grace R. Emlin", // name
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// "phone", // no phone given
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// []Email{
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// Email{"home", "gre@example.com"},
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// Email{"work", "gre@work.com"},
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// },
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// []string{"Friends", "Squash"},
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// }
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//
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// Note that the field r.Phone has not been modified and
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// that the XML <address> element was discarded. Also, the field
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// Groups was assigned considering the element path provided in the
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// field tag.
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//
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// Because Unmarshal uses the reflect package, it can only assign
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// to exported (upper case) fields. Unmarshal uses a case-insensitive
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// comparison to match XML element names to struct field names.
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//
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// Unmarshal maps an XML element to a struct using the following rules.
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// In the rules, the tag of a field refers to the value associated with the
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// key 'xml' in the struct field's tag (see the example above).
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//
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// * If the struct has a field of type []byte or string with tag "innerxml",
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// Unmarshal accumulates the raw XML nested inside the element
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// in that field. The rest of the rules still apply.
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//
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// * If the struct has a field named XMLName of type xml.Name,
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// Unmarshal records the element name in that field.
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//
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// * If the XMLName field has an associated tag of the form
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// "name" or "namespace-URL name", the XML element must have
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// the given name (and, optionally, name space) or else Unmarshal
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// returns an error.
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//
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// * If the XML element has an attribute whose name matches a
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// struct field of type string with tag "attr", Unmarshal records
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// the attribute value in that field.
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//
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// * If the XML element contains character data, that data is
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// accumulated in the first struct field that has tag "chardata".
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// The struct field may have type []byte or string.
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// If there is no such field, the character data is discarded.
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//
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// * If the XML element contains comments, they are accumulated in
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// the first struct field that has tag "comments". The struct
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// field may have type []byte or string. If there is no such
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// field, the comments are discarded.
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//
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// * If the XML element contains a sub-element whose name matches
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// the prefix of a tag formatted as "a>b>c", unmarshal
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// will descend into the XML structure looking for elements with the
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// given names, and will map the innermost elements to that struct field.
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// A tag starting with ">" is equivalent to one starting
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// with the field name followed by ">".
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//
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// * If the XML element contains a sub-element whose name
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// matches a field whose tag is neither "attr" nor "chardata",
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// Unmarshal maps the sub-element to that struct field.
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// Otherwise, if the struct has a field named Any, unmarshal
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// maps the sub-element to that struct field.
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//
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// Unmarshal maps an XML element to a string or []byte by saving the
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// concatenation of that element's character data in the string or
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// []byte.
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//
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// Unmarshal maps an attribute value to a string or []byte by saving
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// the value in the string or slice.
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//
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// Unmarshal maps an XML element to a slice by extending the length of
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// the slice and mapping the element to the newly created value.
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//
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// Unmarshal maps an XML element or attribute value to a bool by
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// setting it to the boolean value represented by the string.
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//
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// Unmarshal maps an XML element or attribute value to an integer or
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// floating-point field by setting the field to the result of
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// interpreting the string value in decimal. There is no check for
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// overflow.
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//
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// Unmarshal maps an XML element to an xml.Name by recording the
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// element name.
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//
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// Unmarshal maps an XML element to a pointer by setting the pointer
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// to a freshly allocated value and then mapping the element to that value.
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//
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func Unmarshal(r io.Reader, val interface{}) os.Error {
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v := reflect.ValueOf(val)
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if v.Kind() != reflect.Ptr {
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return os.NewError("non-pointer passed to Unmarshal")
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}
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p := NewParser(r)
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elem := v.Elem()
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err := p.unmarshal(elem, nil)
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if err != nil {
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return err
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}
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return nil
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}
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// An UnmarshalError represents an error in the unmarshalling process.
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type UnmarshalError string
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func (e UnmarshalError) String() string { return string(e) }
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// A TagPathError represents an error in the unmarshalling process
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// caused by the use of field tags with conflicting paths.
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type TagPathError struct {
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Struct reflect.Type
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Field1, Tag1 string
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Field2, Tag2 string
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}
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func (e *TagPathError) String() string {
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return fmt.Sprintf("%s field %q with tag %q conflicts with field %q with tag %q", e.Struct, e.Field1, e.Tag1, e.Field2, e.Tag2)
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}
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// The Parser's Unmarshal method is like xml.Unmarshal
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// except that it can be passed a pointer to the initial start element,
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// useful when a client reads some raw XML tokens itself
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// but also defers to Unmarshal for some elements.
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// Passing a nil start element indicates that Unmarshal should
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// read the token stream to find the start element.
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func (p *Parser) Unmarshal(val interface{}, start *StartElement) os.Error {
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v := reflect.ValueOf(val)
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if v.Kind() != reflect.Ptr {
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return os.NewError("non-pointer passed to Unmarshal")
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}
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return p.unmarshal(v.Elem(), start)
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}
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// fieldName strips invalid characters from an XML name
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// to create a valid Go struct name. It also converts the
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// name to lower case letters.
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func fieldName(original string) string {
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var i int
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//remove leading underscores
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for i = 0; i < len(original) && original[i] == '_'; i++ {
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}
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return strings.Map(
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func(x int) int {
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if x == '_' || unicode.IsDigit(x) || unicode.IsLetter(x) {
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return unicode.ToLower(x)
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}
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return -1
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},
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original[i:])
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}
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// Unmarshal a single XML element into val.
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func (p *Parser) unmarshal(val reflect.Value, start *StartElement) os.Error {
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// Find start element if we need it.
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if start == nil {
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for {
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tok, err := p.Token()
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if err != nil {
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return err
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}
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if t, ok := tok.(StartElement); ok {
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start = &t
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break
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}
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}
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}
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if pv := val; pv.Kind() == reflect.Ptr {
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if pv.IsNil() {
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pv.Set(reflect.New(pv.Type().Elem()))
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}
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val = pv.Elem()
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}
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var (
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data []byte
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saveData reflect.Value
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comment []byte
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saveComment reflect.Value
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saveXML reflect.Value
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saveXMLIndex int
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saveXMLData []byte
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sv reflect.Value
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styp reflect.Type
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fieldPaths map[string]pathInfo
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)
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switch v := val; v.Kind() {
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default:
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return os.NewError("unknown type " + v.Type().String())
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case reflect.Slice:
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typ := v.Type()
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if typ.Elem().Kind() == reflect.Uint8 {
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// []byte
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saveData = v
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break
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}
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// Slice of element values.
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// Grow slice.
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n := v.Len()
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if n >= v.Cap() {
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ncap := 2 * n
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if ncap < 4 {
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ncap = 4
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}
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new := reflect.MakeSlice(typ, n, ncap)
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reflect.Copy(new, v)
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v.Set(new)
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}
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v.SetLen(n + 1)
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// Recur to read element into slice.
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if err := p.unmarshal(v.Index(n), start); err != nil {
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v.SetLen(n)
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return err
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}
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return nil
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case reflect.Bool, reflect.Float32, reflect.Float64, reflect.Int, reflect.Int8, reflect.Int16, reflect.Int32, reflect.Int64, reflect.Uint, reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64, reflect.Uintptr, reflect.String:
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saveData = v
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case reflect.Struct:
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if _, ok := v.Interface().(Name); ok {
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v.Set(reflect.ValueOf(start.Name))
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break
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}
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sv = v
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typ := sv.Type()
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styp = typ
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// Assign name.
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if f, ok := typ.FieldByName("XMLName"); ok {
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// Validate element name.
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if tag := f.Tag.Get("xml"); tag != "" {
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ns := ""
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i := strings.LastIndex(tag, " ")
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if i >= 0 {
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ns, tag = tag[0:i], tag[i+1:]
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}
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if tag != start.Name.Local {
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return UnmarshalError("expected element type <" + tag + "> but have <" + start.Name.Local + ">")
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}
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if ns != "" && ns != start.Name.Space {
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e := "expected element <" + tag + "> in name space " + ns + " but have "
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if start.Name.Space == "" {
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e += "no name space"
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} else {
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e += start.Name.Space
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}
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return UnmarshalError(e)
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}
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}
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// Save
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v := sv.FieldByIndex(f.Index)
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if _, ok := v.Interface().(Name); !ok {
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return UnmarshalError(sv.Type().String() + " field XMLName does not have type xml.Name")
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}
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v.Set(reflect.ValueOf(start.Name))
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}
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// Assign attributes.
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// Also, determine whether we need to save character data or comments.
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for i, n := 0, typ.NumField(); i < n; i++ {
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f := typ.Field(i)
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switch f.Tag.Get("xml") {
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case "attr":
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strv := sv.FieldByIndex(f.Index)
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// Look for attribute.
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val := ""
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k := strings.ToLower(f.Name)
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for _, a := range start.Attr {
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if fieldName(a.Name.Local) == k {
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val = a.Value
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break
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}
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}
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copyValue(strv, []byte(val))
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case "comment":
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if !saveComment.IsValid() {
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saveComment = sv.FieldByIndex(f.Index)
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}
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case "chardata":
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if !saveData.IsValid() {
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saveData = sv.FieldByIndex(f.Index)
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}
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case "innerxml":
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if !saveXML.IsValid() {
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saveXML = sv.FieldByIndex(f.Index)
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if p.saved == nil {
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saveXMLIndex = 0
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p.saved = new(bytes.Buffer)
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} else {
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saveXMLIndex = p.savedOffset()
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}
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}
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default:
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if tag := f.Tag.Get("xml"); strings.Contains(tag, ">") {
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if fieldPaths == nil {
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fieldPaths = make(map[string]pathInfo)
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}
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path := strings.ToLower(tag)
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if strings.HasPrefix(tag, ">") {
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path = strings.ToLower(f.Name) + path
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}
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if strings.HasSuffix(tag, ">") {
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path = path[:len(path)-1]
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}
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err := addFieldPath(sv, fieldPaths, path, f.Index)
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if err != nil {
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return err
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}
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}
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}
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}
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}
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// Find end element.
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// Process sub-elements along the way.
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Loop:
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for {
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var savedOffset int
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if saveXML.IsValid() {
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savedOffset = p.savedOffset()
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}
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tok, err := p.Token()
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if err != nil {
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return err
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}
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switch t := tok.(type) {
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case StartElement:
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// Sub-element.
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// Look up by tag name.
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if sv.IsValid() {
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k := fieldName(t.Name.Local)
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if fieldPaths != nil {
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if _, found := fieldPaths[k]; found {
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if err := p.unmarshalPaths(sv, fieldPaths, k, &t); err != nil {
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return err
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}
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continue Loop
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}
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}
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match := func(s string) bool {
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// check if the name matches ignoring case
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if strings.ToLower(s) != k {
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return false
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}
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// now check that it's public
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c, _ := utf8.DecodeRuneInString(s)
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return unicode.IsUpper(c)
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}
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f, found := styp.FieldByNameFunc(match)
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if !found { // fall back to mop-up field named "Any"
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f, found = styp.FieldByName("Any")
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}
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if found {
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if err := p.unmarshal(sv.FieldByIndex(f.Index), &t); err != nil {
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return err
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}
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continue Loop
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}
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}
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// Not saving sub-element but still have to skip over it.
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if err := p.Skip(); err != nil {
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return err
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}
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case EndElement:
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if saveXML.IsValid() {
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saveXMLData = p.saved.Bytes()[saveXMLIndex:savedOffset]
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if saveXMLIndex == 0 {
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p.saved = nil
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}
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}
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break Loop
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case CharData:
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if saveData.IsValid() {
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data = append(data, t...)
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}
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case Comment:
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if saveComment.IsValid() {
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comment = append(comment, t...)
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}
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}
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}
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if err := copyValue(saveData, data); err != nil {
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return err
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}
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switch t := saveComment; t.Kind() {
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case reflect.String:
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t.SetString(string(comment))
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case reflect.Slice:
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t.Set(reflect.ValueOf(comment))
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}
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switch t := saveXML; t.Kind() {
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case reflect.String:
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t.SetString(string(saveXMLData))
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case reflect.Slice:
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t.Set(reflect.ValueOf(saveXMLData))
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}
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return nil
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}
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func copyValue(dst reflect.Value, src []byte) (err os.Error) {
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// Helper functions for integer and unsigned integer conversions
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var itmp int64
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getInt64 := func() bool {
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itmp, err = strconv.Atoi64(string(src))
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// TODO: should check sizes
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return err == nil
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}
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var utmp uint64
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getUint64 := func() bool {
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utmp, err = strconv.Atoui64(string(src))
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// TODO: check for overflow?
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return err == nil
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}
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var ftmp float64
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getFloat64 := func() bool {
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ftmp, err = strconv.Atof64(string(src))
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// TODO: check for overflow?
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return err == nil
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}
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// Save accumulated data and comments
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switch t := dst; t.Kind() {
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case reflect.Invalid:
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// Probably a comment, handled below
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default:
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return os.NewError("cannot happen: unknown type " + t.Type().String())
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case reflect.Int, reflect.Int8, reflect.Int16, reflect.Int32, reflect.Int64:
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if !getInt64() {
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return err
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}
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t.SetInt(itmp)
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case reflect.Uint, reflect.Uint8, reflect.Uint16, reflect.Uint32, reflect.Uint64, reflect.Uintptr:
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if !getUint64() {
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return err
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}
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t.SetUint(utmp)
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case reflect.Float32, reflect.Float64:
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if !getFloat64() {
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return err
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}
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t.SetFloat(ftmp)
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case reflect.Bool:
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value, err := strconv.Atob(strings.TrimSpace(string(src)))
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if err != nil {
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return err
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}
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t.SetBool(value)
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case reflect.String:
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t.SetString(string(src))
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case reflect.Slice:
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t.Set(reflect.ValueOf(src))
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}
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return nil
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}
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type pathInfo struct {
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fieldIdx []int
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complete bool
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}
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|
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// addFieldPath takes an element path such as "a>b>c" and fills the
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// paths map with all paths leading to it ("a", "a>b", and "a>b>c").
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|
// It is okay for paths to share a common, shorter prefix but not ok
|
|
// for one path to itself be a prefix of another.
|
|
func addFieldPath(sv reflect.Value, paths map[string]pathInfo, path string, fieldIdx []int) os.Error {
|
|
if info, found := paths[path]; found {
|
|
return tagError(sv, info.fieldIdx, fieldIdx)
|
|
}
|
|
paths[path] = pathInfo{fieldIdx, true}
|
|
for {
|
|
i := strings.LastIndex(path, ">")
|
|
if i < 0 {
|
|
break
|
|
}
|
|
path = path[:i]
|
|
if info, found := paths[path]; found {
|
|
if info.complete {
|
|
return tagError(sv, info.fieldIdx, fieldIdx)
|
|
}
|
|
} else {
|
|
paths[path] = pathInfo{fieldIdx, false}
|
|
}
|
|
}
|
|
return nil
|
|
|
|
}
|
|
|
|
func tagError(sv reflect.Value, idx1 []int, idx2 []int) os.Error {
|
|
t := sv.Type()
|
|
f1 := t.FieldByIndex(idx1)
|
|
f2 := t.FieldByIndex(idx2)
|
|
return &TagPathError{t, f1.Name, f1.Tag.Get("xml"), f2.Name, f2.Tag.Get("xml")}
|
|
}
|
|
|
|
// unmarshalPaths walks down an XML structure looking for
|
|
// wanted paths, and calls unmarshal on them.
|
|
func (p *Parser) unmarshalPaths(sv reflect.Value, paths map[string]pathInfo, path string, start *StartElement) os.Error {
|
|
if info, _ := paths[path]; info.complete {
|
|
return p.unmarshal(sv.FieldByIndex(info.fieldIdx), start)
|
|
}
|
|
for {
|
|
tok, err := p.Token()
|
|
if err != nil {
|
|
return err
|
|
}
|
|
switch t := tok.(type) {
|
|
case StartElement:
|
|
k := path + ">" + fieldName(t.Name.Local)
|
|
if _, found := paths[k]; found {
|
|
if err := p.unmarshalPaths(sv, paths, k, &t); err != nil {
|
|
return err
|
|
}
|
|
continue
|
|
}
|
|
if err := p.Skip(); err != nil {
|
|
return err
|
|
}
|
|
case EndElement:
|
|
return nil
|
|
}
|
|
}
|
|
panic("unreachable")
|
|
}
|
|
|
|
// Have already read a start element.
|
|
// Read tokens until we find the end element.
|
|
// Token is taking care of making sure the
|
|
// end element matches the start element we saw.
|
|
func (p *Parser) Skip() os.Error {
|
|
for {
|
|
tok, err := p.Token()
|
|
if err != nil {
|
|
return err
|
|
}
|
|
switch t := tok.(type) {
|
|
case StartElement:
|
|
if err := p.Skip(); err != nil {
|
|
return err
|
|
}
|
|
case EndElement:
|
|
return nil
|
|
}
|
|
}
|
|
panic("unreachable")
|
|
}
|