28

Looking at go xml package I could not find such possibility. Go only allows to define tree of structures, map them to XML tree and deserialize using xml.NewDecoder(myXmlString).Decode(myStruct).

Even if I define needed tree of Go structures, I still can't query that tree using XPath.

C# has convenient function SelectSingleNode that allows to select value from XML tree by specifying XPath without duplicating whole tree structure in C# classes.

Is there similar possibility in Go ? If not then what is simplest way to implement it (possibly reusing xml package) ?

4 Answers 4

15

There's also the xmlpath package.

Sample usage:

path := xmlpath.MustCompile("/library/book/isbn")
root, err := xmlpath.Parse(file)
if err != nil {
    log.Fatal(err)
}
if value, ok := path.String(root); ok {
    fmt.Println("Found:", value)
}
2
14

There is no xpath parsing in the standard packages of Go, so you need to resort to using a 3rd party package.

Then one I know of is Gokogiri
The package is based on libxml2 using cgo

The subpackage you want to import is github.com/moovweb/gokogiri/xpath

9

Even though not xpath, you can read values out of XML with the native go xml encoder package. You would use the xml.Unmarshal() function. Here is a go play example.

package main

import "fmt"
import "encoding/xml"

func main() {
    type People struct {
        Names []string `xml:"Person>FullName"`
    }

    data := `
        <People>
            <Person>
                <FullName>Jerome Anthony</FullName>
            </Person>
            <Person>
                <FullName>Christina</FullName>
            </Person>
        </People>
    `

    v := People{Names: []string{}}
    err := xml.Unmarshal([]byte(data), &v)
    if err != nil {
        fmt.Printf("error: %v", err)
        return
    }
    fmt.Printf("Names of people: %q", v)
}
1
  • While this is certainly a good answer in general, I've downvoted it because the OP actually specified using XPath syntax to retrieve values from a XML object. This solution sidesteps the issue and does not use XPath syntax at all! Commented Jan 11, 2022 at 18:37
6

xmlquery lets you extract data from XML documents using XPath expression.

package main

import (
    "fmt"
    "strings"
    "github.com/antchfx/xmlquery"
)

func main() {
    htmlstr := `<?xml version="1.0" ?>
    <html>
    <head>
     <title>this is a title</title>
    </head>
    <body>Hello,World</body>
    </html>`
    root, err := xmlquery.Parse(strings.NewReader(htmlstr))
    if err != nil {
         panic(err)
     }
    title := xmlquery.FindOne(root, "//title")
    fmt.Println(title.InnerText())
}
1
  • Interestingly, @antchfx's solution, unlike xmlpath mentioned by @rzymek, does not require pre-compilation of XPath expressions. Instead, XML queries are cached and reused if needed. It's an alternative approach. I wonder if anyone benchmarked xmlquery vs. xmlpath. I would guess that pre-compiled XPath expressions, which can be used for different XML objects, might be more efficient. But if you're dealing with just one XML object, xmlquery might have an edge. It's interesting to see each approach, side-by-side; xmlpath seems more idiomatic, but xmlquery is more intuitive. Commented Jan 11, 2022 at 18:42

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