5

What does //,/ mean in this instance?

for SCHEMA_ONLY_DB in ${SCHEMA_ONLY_LIST//,/}
do
    SCHEMA_ONLY_CLAUSE="$SCHEMA_ONLY_CLAUSE or datname ~ '$SCHEMA_ONLY_DB'"
done

SCHEMA_ONLY_LIST="mydb1,mydb2,mydb3,mydb4"
SCHEMA_ONLY_DB=mydb1

$SCHEMA_ONLY_CLAUSE has now been populated with:

echo $SCHEMA_ONLY_CLAUSE
or datname ~ 'mydb1' or datname ~ 'mydb2' or datname ~ 'mydb3' 
6

From the bash(1) man page (http://linux.die.net/man/1/bash):

${parameter/pattern/string}

Pattern substitution. The pattern is expanded to produce a pattern just as in pathname expansion. Parameter is expanded and the longest match of pattern against its value is replaced with string. If pattern begins with /, all matches of pattern are replaced with string. Normally only the first match is replaced. If pattern begins with #, it must match at the beginning of the expanded value of parameter. If pattern begins with %, it must match at the end of the expanded value of parameter. If string is null, matches of pattern are deleted and the / following pattern may be omitted. If parameter is @ or *, the substitution operation is applied to each positional parameter in turn, and the expansion is the resultant list. If parameter is an array variable subscripted with @ or *, the substitution operation is applied to each member of the array in turn, and the expansion is the resultant list.

That is, ${something//,/} is expanded to the $something with all the occurrences of , removed.

  • OK - i get you: "If pattern begins with /, all matches of pattern are replaced with string. " – Stelios Jan 14 '16 at 12:59

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