9

I am trying read certain string output generated by linux command by the following code:

out, err := exec.Command("sh", "-c", cmd).Output()

The above out is of []byte type, how can I differentiate the "\n" character contained in line content with the real line break? I tried

strings.Split(output, "\n")

and

bufio.NewScanner(strings.NewReader(output))

but they both split the whole string buffer whenever seeing a "\n" character.

OK, to clarify, an "unreal" break is a "\n" character contained in a string as follows, Print first result: "123;\n234;\n" Print second result: "456;\n"

The whole output is one big multi-line string, it may also contain some other quoted strings, and I am processing the whole string output in my go program, but I can't control the command output and add a back slash before the "\n" character.

Further clarify: I meant to process byte sequence which contains string of strings, and want to preserve the "\n" contained in the inner string and use the the outer layer "\n" to break lines. So for the following byte sequence:

First line: "test1"
Second line: "123;\n234;\n345;"
Third line: "456;\n567;"
Fourth line: "test4"

I want to get 3 lines when processing the whole sequence, instead of getting 7 total lines. It's a old project, but I remember I can use Python to directly get 3 lines using syntax like "for line in f", and print the content of second inner string instead of rendering it.

2
  • 6
    What is a "real line break"? When is a "\n" an "unreal" line break?
    – Volker
    Aug 17, 2015 at 4:52
  • 8
    Depending on the operating system (and/or file format) a line break is either \n, or it's \r\n, or it's \r. There is nothing to "differentiate"; that byte (or byte pair in the case of \r\n) is the line break. If instead you happen to mean the "\" character followed by "n", you could write that in Go as "\\n" or a backquoted literal string (which I can't figure out how to show properly in SO's markdown).
    – Dave C
    Aug 17, 2015 at 5:08

3 Answers 3

28

It's possible that your "\n" is actually the escaped version of a line break character. You can replace these with real line breaks by searching for the escaped version and replacing with the non escaped version:

strings.Replace(sourceStr, `\n`, "\n", -1)

Since string literals inside backticks can be written over multiple lines, Go escapes any line break characters it sees.

1
  • I wanted something I could use to convert all EOL occurrences to <br> to format messages for submission to Microsoft Teams (via webhook request). Your answer helped me solve the issue. In case it is helpful, a modified/working function from a project I use is provided via Go Playground link below. I can't speak to its correctness as I've not fully tested it yet. play.golang.org/p/LQU5rO1I7Bw
    – deoren
    Apr 2, 2020 at 14:31
27

There is no distinction between a "real" and an "unreal" line break.

If you're using a Unix-like system, the end of a line in a text file is denoted by the LF or '\n' character. You cannot have a '\n' character in the middle of a line.

A string in memory can contain as many '\n' characters as you like. The string "foo\nbar\n", when written to a text file, will create two lines, "foo" and "bar".

There is no effective difference between

fmt.Println("foo")
fmt.Println("bar")

and

fmt.Printf("foo\nbar\n")

Both print the same sequence of 2 lines, as does this:

fmt.Println("foo\nbar")
0
1

The encoding/csv package might suit your needs:

package main

import (
   "encoding/csv"
   "fmt"
   "strings"
)

const s = `First line: "test1"
Second line: "123;
234;
345;"
Third line: "456;
567;"
Fourth line: "test4"
`

func main() {
   r := csv.NewReader(strings.NewReader(s))
   r.Comma = ':'
   r.TrimLeadingSpace = true
   a, e := r.ReadAll()
   if e != nil {
      panic(e)
   }
   fmt.Printf("%q\n", a)
}

Result:

[
   ["First line" "test1"]
   ["Second line" "123;\n234;\n345;"]
   ["Third line" "456;\n567;"]
   ["Fourth line" "test4"]
]

https://golang.org/pkg/encoding/csv

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