58

I have trivial question.

I have string which contains a filename and it's path. How can i remove whole path? I have tried those:

line = "/some/path/to/remove/file.name"
line := strings.LastIndex(line, "/")
fmt.Println(line)

It prints some strange number:

38

I need it without last slash

Thanks a lot

1
  • The "strange number" is the location of the Last "/" in the string. LastIndex returns the *index" in the string of the last occurence of the requested substring.
    – Brendon Whateley
    May 5, 2020 at 15:00

4 Answers 4

Reset to default
118

The number is the index of the last slash in the string. If you want to get the file's base name, use filepath.Base:

path := "/some/path/to/remove/file.name"
file := filepath.Base(path)
fmt.Println(file)

Playground: http://play.golang.org/p/DzlCV-HC-r.

2
  • 1
    Excellent thanks. Just found it :) Was going to post it here but you were quicker :)
    – Polinux
    Dec 30, 2015 at 10:36
  • 1
    Found this doesn't work if your Go server is on Linux and your browser is Edge on Windows. It won't strip Windows paths when the server is on Linux :(
    – user959690
    Dec 12, 2018 at 1:03
19

You can try it in the playground!

dir, file := filepath.Split("/some/path/to/remove/file.name")
fmt.Println("Dir:", dir)   //Dir: /some/path/to/remove/
fmt.Println("File:", file) //File: file.name
3
  • 2
    Playground: https://play.golang.org/p/uUthOtpkSAz
    – user1475184
    Jun 15, 2018 at 3:44
  • 2
    This is actually a proper answer as filepath.Base("/") will give you "/" (root path) and filepath.Base("") will give you "." so current directory. Returned file in filepath.Split() for both cases will be empty string.
    – Kamil Dziedzic
    Jul 13, 2018 at 14:54
  • 2
    This also fails if your browser is on a different OS than your server. If the browser sends Windows directory and your server is on Linux this fails. :(
    – user959690
    Dec 12, 2018 at 1:06
8

Another option:

package main
import "path"

func main() {
   line := "/some/path/to/remove/file.name"
   line = path.Base(line)
   println(line == "file.name")
}

https://golang.org/pkg/path#Base

1
  • Maybe you could point out if there is an advantage over the accepted solution...
    – Timon
    Sep 8, 2021 at 14:02
2

If you want the base path without the fileName, you can use Dir, which is documented here: https://golang.org/pkg/path/filepath/#Dir

Quoting part of their documentation:

Dir returns all but the last element of path, typically the path's directory. After dropping the final element, Dir calls Clean on the path and trailing slashes are removed.

Also from their documentation, running this code:

package main

import (
    "fmt"
    "path/filepath"
)

func main() {
    fmt.Println("On Unix:")
    fmt.Println(filepath.Dir("/foo/bar/baz.js"))
    fmt.Println(filepath.Dir("/foo/bar/baz"))
    fmt.Println(filepath.Dir("/foo/bar/baz/"))
    fmt.Println(filepath.Dir("/dirty//path///"))
    fmt.Println(filepath.Dir("dev.txt"))
    fmt.Println(filepath.Dir("../todo.txt"))
    fmt.Println(filepath.Dir(".."))
    fmt.Println(filepath.Dir("."))
    fmt.Println(filepath.Dir("/"))
    fmt.Println(filepath.Dir(""))

}

will give you this output:

On Unix:

 /foo/bar
 /foo/bar
 /foo/bar/baz
 /dirty/path
 .
 ..
 .
 .
 /
 .

Try it yourself here:

https://play.golang.org/p/huk3EmORFw5

If you instead want to get the fileName without the base path, @Ainar-G has sufficiently answered that.

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