6

When I use ngx.var.request_uri I'm getting back a string that contains %20 in place of spaces. Is there a urldecode() function or similar to decode my string?

9

The decoded URI can be found in ngx.var.uri. It does not contain the query string, if you need it see ngx.var.query_string.

EDIT: if you cannot use this, here is a simple way to unescape a URL in Lua.

local hex_to_char = function(x)
  return string.char(tonumber(x, 16))
end

local unescape = function(url)
  return url:gsub("%%(%x%x)", hex_to_char)
end

Example usage:

local url = "/test/some%20string?foo=bar"
print(unescape(url)) -- /test/some string?foo=bar

But you should probably split the query string before using it.

  • When I visit /abc and my config bounces me through a 404 using error_page 404 /test, when I access ngx.var.uri it's equal to /test rather than /abc. However, ngx.var.request_uri evaluates to /abc – iRyanBell Nov 29 '13 at 10:12
  • 1
    OK, I have edited my answer to give you another option that actually unescapes the URL in Lua. – catwell Nov 29 '13 at 10:28
  • Works great, thanks! – iRyanBell Nov 29 '13 at 10:30
17

If you are using nginx-lua-module then you can use below api for this.

newstr = ngx.unescape_uri(str)

You can also take a look of ngxescape_uri

0

LuaSocket has a url.unescape utility. Quoting:

url.unescape(content)

Removes the URL escaping content coding from a string.

Content is the string to be decoded.

The function returns the decoded string.

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