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forgive me for being a regex amateur but I'm really confused as to why this doesn't piece of code doesn't work in Go

package main

import (
    "fmt"
    "regexp"
)

func main() {
    var a string = "parameter=0xFF"
    var regex string = "^.+=\b0x[A-F][A-F]\b$"
    result,err := regexp.MatchString(regex, a)
    fmt.Println(result, err)
}
// output: false <nil>

This seems to work OK in python

import re

p = re.compile(r"^.+=\b0x[A-F][A-F]\b$")
m = p.match("parameter=0xFF")
if m is not None:
    print m.group()

// output: parameter=0xFF

All I want to do is match whether the input is in the format <anything>=0x[A-F][A-F]

Any help would be appreciated

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2 Answers 2

up vote 8 down vote accepted

Have you tried using raw string literal (with back quote instead of quote)? Like this:

var regex string = `^.+=\b0x[A-F][A-F]\b$`
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Ah yes, this worked too. I'm going to keep this trick mind when writing regular expressions in Go. –  djhworld Jan 6 '13 at 15:57

You must escape the \ in interpreted literal strings :

var regex string = "^.+=\\b0x[A-F][A-F]\\b$"

But in fact the \b (word boundaries) appear to be useless in your expression.

It works without them :

var regex string = "^.+=0x[A-F][A-F]$"

Demonstration

share|improve this answer
    
Simple as that, thanks. –  djhworld Jan 6 '13 at 15:57
1  
To be fair... I'm not sure about why it doesn't work with the \b. It seems it would work with a compiled regex. –  dystroy Jan 6 '13 at 15:58
4  
\b is an escape character that means backspace. For instance, this code fmt.Println("12\b3") prints 13. It is why you need to use the raw string literal: stackoverflow.com/questions/14183704/… –  antoyo Jan 6 '13 at 16:20
    
Ok, that explains it. More generally (when the word boundary is needed), we must escape the \ in literal strings. Thanks (and +1 on your answer). –  dystroy Jan 6 '13 at 16:24

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