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I've got some values in a varchar column that are separated by nonbreaking spaces (urlencoded %A0 instead of %20). I'm trying to replace them with spaces, but can't seem to get the syntax right:

select regexp_replace('hello world', E'\xa0', ' ')

What is the correct way to encode the character in a Postgres regexp_replace function? Or, is there a better way to do the replacement?

  • You don't need regexp_replace(). replace() is enough – a_horse_with_no_name Apr 25 '16 at 21:10
  • 0xA0 is a non-breaking-space in ISO-8859-1 (AKA Latin-1), are you sure that's the right encoding for your database? – mu is too short Apr 25 '16 at 21:33
  • @a_horse_with_no_name Could you share the syntax that would work with the character code and replace? That's the part that I'm having trouble with. – Matt Hampel Apr 25 '16 at 22:09
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This may help you

select replace('Hello world', '\xa0', '')

Ref Postgresql (Current) Section 9.4. String Functions and Operators

  • Not sure why, but this expression does not replace u+a0 in my string. – Jonathan Allard Jan 15 '18 at 22:02
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Replacing '\xa0' didn't work for me, possibly because my strings were in UTF-8 rather than Latin1 or other where the character is encoded directly as A0. (U+A0 is encoded with bytes C2 A0 in UTF-8)

I found it more practical to replace it as a code point (U+A0) rather than as the encoded bytes (C2 A0 or A0):

select replace('456321 ', E'\u00a0', '')  -- value is E'456321\u00a0'
  • An interesting point Jonathan. Thank you – pnorton Feb 22 '18 at 14:23

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