128

What's the meaning of this char?

3
  • 4
    I know this is an old post, but according to the website in the above comment, 
 is invalid, which is entirely incorrect. – akousmata Mar 6 '14 at 23:30
  • @akousmata: are you saying that the linked website is not correct? – Revious Mar 6 '14 at 23:32
  • 6
    Yes, from the website: 
 | 
 | %a = invalid as you can see from the correct answer, the HTML encoding for 
 is a Line Feed, not invalid as the site claims, unless I'm misunderstanding something about the sites information. – akousmata Mar 6 '14 at 23:44
137

That would be an HTML Encoded Line Feed character (using the hexadecimal value).

The decimal value would be 


24

It is the equivalent to \n -> LF (Line Feed).

Sometimes it is used in HTML and JavaScript. Otherwise in .NET environments, use Environment.NewLine.

0
11

It's the ASCII/UTF code for LF (0A) - Unix-based systems are using it as the newline character, while Windows uses the CR-LF PAIR (OD0A).

4

It's a linefeed character. How you use it would be up to you.

4


 is the HTML representation in hex of a line feed character. It represents a new line on Unix and Unix-like (for example) operating systems.

You can find a list of such characters at (for example) http://la.remifa.so/unicode/latin1.html

1

This is the ASCII format.

Please consider that:

Some data (like URLs) can be sent over the Internet using the ASCII character-set. Since data often contain characters outside the ASCII set, so it has to be converted into a valid ASCII format.

To find it yourself, you can visit https://en.wikipedia.org/wiki/ASCII, there you can find big tables of characters. The one you are looking is in Control Characters table.

Digging to table you can find

Oct Dec Hex Name 012 10 0A Line Feed

In the html file you can use Dec and Hex representation of charters

The Dec is represented with 


The Hex is represented with &#x0A (or you can omit the leading zero &#xA)

There is a good converter at https://r12a.github.io/apps/conversion/ .

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.