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I have a command that gets the next ID of a table from a pool of sql files, now I am trying to put this command as an alias in ~/.bashrc using a shell function, but I did not figure out how to escape $ so it gets to awk and not replaced by bash, here's the code in .bashrc:

function nextval () {
    grep 'INSERT INTO \""$1"\"' *.sql | \
    awk '{print $6}' | \
    cut -c 2- | \
    awk -F "," '{print $1}' | \
    sort -n | \
    tail -n 1 | \
    awk '{print $0+1}'
}

alias nextval=nextval

Usage: # nextval tablename

Escaping with \$ I get an the error: awk: backslash not last character on line. The $ is not inside double quotes, so why bash is replacing it ?

share|improve this question
    
Don't you mix up single and double quotes in the grep command? I don't understand why you surround $1 with double quotes instead of single ones. – Bentoy13 Aug 8 '13 at 10:18
    
You don't need an escape (\ ) after a pipe symbol (|) at the end of a line. – Ed Morton Aug 8 '13 at 10:53
up vote 5 down vote accepted

Perhaps the part you really need to change is this

'INSERT INTO \""$1"\"'

to

"INSERT INTO \"$1\""
share|improve this answer
    
Accepted even if I like @ed-morton 's awk solution, just because this solves the code in the question. – Radu Maris Aug 8 '13 at 14:40

@konsolebox answered your question but also you could write the function without so many tools and pipes, e.g.:

function nextval () {
    awk -v tbl="$1" '
        $0 ~ "INSERT INTO \"" tbl "\"" {
            split( substr($6,2), a, /,/ )
            val = ( ((val == "") || (a[1] > val)) ? a[1] : val)
        }
        END { print val+1 }
    ' *.sql
}

It's hard to tell if the above is 100% correct without any sample input or expected output to test it against but it should be close.

share|improve this answer
    
+1 for this solution, it works as expected. By the way I was expecting criticism for using so many tools (even if they do the job), as I am not that expert with awk :), thanks – Radu Maris Aug 8 '13 at 14:38

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