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I'm trying to compile a regex so that I can extract an 8 digit number with/without spaces between the digits from a string using Go. For some reasons the compilations fails. What should I repalce K with ?

validAcc, err := regexp.Compile(`[ ]\K(?<!\d )(?=(?: ?\d){8})(?!(?: ?\d){9})\d[ \d]+\d`)
if err != nil {
    return
}

Play it here

More code with sample data

package main

import "strings"
import "regexp"
import "fmt"

func main() {

    msg := ` 12 34 56 78 //the number we need
 12 3455678 90123455 // the number we don't need`

    acc, err := accFromText(msg)
    if err != nil {
        panic(err)
    }
    exAcc := "12345678"
    if acc != exAcc {
        fmt.Printf("expected %v, received %v", exAcc, acc)
    }

    msg = `
More details here
1234567 12345 123456789 asd
12000000000 a number we don't need 
 12 3456 78 //this is the kind of number we need
 12 3455678 90123455 // the number we don't need`

    acc, err = accFromText(msg)
    if err != nil {
        panic(err)
    }
    exAcc = "12345678"
    if acc != exAcc {
        fmt.Printf("expected %v, received %v", exAcc, acc)
    }

}

func accFromText(msg string) (accNumber string, err error) {
    validAcc, err := regexp.Compile(`[ ]\K(?<!\d )(?=(?: ?\d){8})(?!(?: ?\d){9})\d[ \d]+\d`)
    if err != nil {
        return
    }
    accNumber = string(validAcc.Find([]byte(msg)))
    accNumber = strings.Replace(accNumber, " ", "", -1)
    return
}
share|improve this question
    
Please provide an example of your data so we can figure out a workaround. –  hwnd Jul 19 at 4:59
    
I'm trying to accomplish same I would do with php . See stackoverflow.com/q/24793414/3780579 . –  hey Jul 19 at 5:03
    
@hwnd I've updated the question with a playground snippet –  hey Jul 19 at 5:15

3 Answers 3

up vote 3 down vote accepted

Considering the go regexp r2 doesn't support any lookbehind/ahead, could you try a simpler expression first:

c, err := regexp.Compile(`\b\d{8}\b`)

In your case (playground), this would work

(\d\d ){4}
validAcc, err := regexp.Compile(`(\d\d ){4}`)

Or:

(\d\d ?){4} # matches '33 1133 06 Oth'
validAcc, err := regexp.Compile(`(\d\d ?){4}`)

Again, I try first a simple regexp, before trying more complex option: it will depend on the data you have to parse.


For a more complex case, the regexp alone can help you capture the data in a group, and then you need to extract the number found (meaning you ned to add post-processing to your regexp):

validAcc, err := regexp.Compile(`[^\d]((\d\d ?){4})[^\d]`)
if err != nil {
    return
}
accNumber = string(validAcc.Find([]byte(msg)))[1:]
accNumber = accNumber[:len(accNumber)-1]
accNumber = strings.Replace(accNumber, " ", "", -1)

See playground

share|improve this answer
    
That makes sense, +1 :) –  zx81 Jul 19 at 5:04
    
it seems to fails . See play.golang.org/p/_gXaZSQWWd –  hey Jul 19 at 5:13
    
@hey normal: this is for 8 consecutive digits. –  VonC Jul 19 at 5:19
    
@hey I have edited the answer. –  VonC Jul 19 at 5:24
    
It doesn't seem to work if the number is formatted differently (e.g. ` 33 1133 06`. I've updated the playground link play.golang.org/p/a8aeRX3fY_ –  hey Jul 19 at 5:27

This will do the job (faster: without any regexp need)

    package main

    import "fmt"
    import "unicode"
    import "strings"

    func main() {

        msg := ` 12 34 56 78 //the number we need
     12 3455678 90123455 // the number we don't need`

        acc, err := accFromText(msg)
        if err != nil {
            panic(err)
        }
        exAcc := "12345678"
        if acc != exAcc {
            fmt.Printf("expected %v, received %v", exAcc, acc)
        }

        msg = `
    More details here
    1234567 12345 123456789 asd
    12000000000 a number we don't need 
     12 3456 78 //this is the kind of number we need
     12 3455678 90123455 // the number we don't need`

        acc, err = accFromText(msg)
        if err != nil {
            panic(err)
        }
        exAcc = "12345678"
        if acc != exAcc {
            fmt.Printf("expected %v, received %v", exAcc, acc)
        }

    }

    func accFromText(msg string) (accNumber string, err error) {
        // split msg into lines
        lines := strings.FieldsFunc(msg, func(c rune) bool {
            return unicode.IsControl(c)
        })

        // filter numbers
        fn := func(ln string) (num string) {
            for _, c := range []rune(ln) {
                if unicode.IsNumber(c) {
                    num += string(c)
                    // fmt.Println(num)
                } else if !unicode.IsSpace(c) {
                    return num
                }
            }
            return num
        }

        for _, line := range lines {
            num := fn(line)
            if len(num) == 8 {  // 8 numbers in line is the kriterium to accept
                return num, nil
            }
        }
        return "eee", nil  // Note: Change this later; it's only needed to satisfy func calls above
    }

http://play.golang.org/p/yVDgDWO9hE

share|improve this answer

I suggest you take two steps:

1) use regexp find all matches: \d[\d ]+\d

2) filter out which contains 8 digits

(I don’t think you can do this by a single regex in golang)

share|improve this answer

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