Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Using encoding/xml.Decoder I'm attempting to manually parse an XML file loaded from http://www.khronos.org/files/collada_schema_1_4

For test purposes, I'm just iterating over the document printing out whatever token type is encountered:

func Test (r io.Reader) {
    var t xml.Token
    var pa *xml.Attr
    var a xml.Attr
    var co xml.Comment
    var cd xml.CharData
    var se xml.StartElement
    var pi xml.ProcInst
    var ee xml.EndElement
    var is bool
    var xd = xml.NewDecoder(r)
    for i := 0; i < 24; i++ {
        if t, err = xd.Token(); (err == nil) && (t != nil) {
            if a, is = t.(xml.Attr); is { print("ATTR\t"); println(a.Name.Local) }
            if pa, is = t.(*xml.Attr); is { print("*ATTR\t"); println(pa) }
            if co, is = t.(xml.Comment); is { print("COMNT\t"); println(co) }
            if cd, is = t.(xml.CharData); is { print("CDATA\t"); println(cd) }
            if pi, is = t.(xml.ProcInst); is { print("PROCI\t"); println(pi.Target) }
            if se, is = t.(xml.StartElement); is { print("START\t"); println(se.Name.Local) }
            if ee, is = t.(xml.EndElement); is { print("END\t\t"); println(ee.Name.Local) }
        }
    }
}

Now here's the output:

PROCI   xml
CDATA   [1/64]0xf84004e050
START   schema
CDATA   [2/129]0xf84004d090
COMNT   [29/129]0xf84004d090
CDATA   [2/129]0xf84004d090
START   annotation
CDATA   [3/129]0xf84004d090
START   documentation
CDATA   [641/1039]0xf840061000
END     documentation
CDATA   [2/1039]0xf840061000
END     annotation
CDATA   [2/1039]0xf840061000
COMNT   [37/1039]0xf840061000
CDATA   [2/1039]0xf840061000
START   import
END     import
CDATA   [2/1039]0xf840061000
COMNT   [14/1039]0xf840061000
CDATA   [2/1039]0xf840061000
START   element
CDATA   [3/1039]0xf840061000
START   annotation

Notice no ATTR or *ATTR lines are output even though by the last (24th) line many attributes have been passed both in the root xs:schema element as well as in xs:import and xs:element elements.

This is in Go 1.0.3 64-bit under Windows 7 64-bit. Am I doing something wrong or should I file a Go package bug report?

[Side note: when doing a normal xml.Unmarshal into properly prepared structs, known-named-and-mapped attributes are captured and mapped by the xml package just fine. But I also need to collect "unknown" attributes in the root element (to collect namespace information for this use-case, the use-case being http://github.com/metaleap/go-xsd ), hence my attempts to use Decoder.Token().]

share|improve this question
    
Is the err being set in any cases? –  minikomi Nov 7 '12 at 9:19

1 Answer 1

up vote 3 down vote accepted

Yes, this behavior is expected. The attributes are parsed, but not returned as a xml.Token. Attributes simply arn't Tokens. See: http://golang.org/pkg/encoding/xml/#Token

The attributes are accessible through the Attr field in the Token StartElement. See: http://golang.org/pkg/encoding/xml/#StartElement

(( Some general hints:

a) Do not use print or println.

b) The a, ok := t.(SomeType) idioma is called "comma okay", because the boolean is normaly named "ok", not "is". Please stick to these conventions.

c) Idiomatic would be something like

switch t := t.(type) {
  case xml.StartElement: ...
  case xml.EndElement: ...
}

instead of your list of "if a, is = t.(xml.Attr) ..."

d) All this "var se xml.StartElement" is noise (clutter). Use

if se, ok := t.(xml.StartElement); ok { ... }

This would make your code much readable. ))

share|improve this answer
    
Thanks, that explains my issue fully! As for the idiomatic comments, this was a quick'n'dirty one-off "dummy test prog" so yeah I didn't fully review it against various not-compiler-enforced and thus fully optional, entirely opinionated stylistic guidelines and beauty non-specs out there. I mean I'm not coding for Google Inc. here anyway... –  metaleap Nov 7 '12 at 10:27

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.