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I'm trying to pull all MySQL queries from all of our scripts in native PHP. I'm looking to pull the table names ONLY from the queries below using grep. Below was my efforts wasted on what I came up with.

FROM 'tablename'

FROM tablename

FROM apn.tablename

FROM apn.table_name

FROM 'apn.tablename'

grep -ionER "(FROM)[[:space:]](.*[a-zA-Z\d_.\`])[\s]"

It's important the grep capture stops capturing text right after the table name ends, which my grep does not.

I need the results to show this information:

(script location) : (line number) : (table name)

/var/www/sites... : Line 31 : example_table_name

share|improve this question
    
What does "a backtick is affecting the code block" mean? – Ed Morton Mar 31 '13 at 14:36
    
it means I tried to make use of the code block code on stackoverflow but because there is a backtick in my example code it made an error. – user2019528 Apr 1 '13 at 17:08
1  
just indent your code 4 spaces or use the {} directive on the SO toolbar. I'll tweak it for you to use that but I don't know what the actual code is intended to be so you'll have to modify it yourself afterwards. – Ed Morton Apr 1 '13 at 17:12
    
Thank you @EdMorton, you corrected it perfectly actually. – user2019528 Apr 1 '13 at 17:40
up vote 2 down vote accepted

Don't use grep. This is tailor-made job for Awk:

awk '$1 == "FROM" { print $2 }'

EDIT Thanks to @rojo for this suggestion

awk 'BEGIN{FS="from|FROM|where|WHERE"} /from|FROM/ {print $2}'

EDIT 2: WIth filename and line #

awk 'BEGIN{FS="from|FROM|where|WHERE"}
      /from|FROM/ {printf ("%s:%d:%s\n", FILENAME, NR, $2)}'
share|improve this answer
    
This doesn't appear to do anything after piping into a simple select statement. echo "SELECT * FROM 'apn.test_contacts'" | awk '$1 == "FROM" { print $2 }' – user2019528 Apr 1 '13 at 17:07
    
It is because in your question you showed inputs as FROM 'tablename' instead of full SQL that starts from a SELECT. – anubhava Apr 1 '13 at 17:09
    
@anubhava - How about awk 'BEGIN{FS="from|FROM|where|WHERE"} /from|FROM/ {print $2}'? But then the surrounding apostrophes / quotes / backticks / whatever still need to be removed.... – rojo Apr 1 '13 at 17:38
    
@rojo: Thanks for your comments. Yes it can be done that way and I thought of suggesting that but an SQL query be in so many flavors that this type of parsing will fail eventually. – anubhava Apr 1 '13 at 17:50
1  
FILENAME will work as long as you supply awk a file and not use awk in a piped command. You should use awk as awk 'command' file – anubhava Apr 3 '13 at 16:21

Would a lookbehind accomplish what you want?

grep -P -i -o '(?<=from )\S+' *.php | sed -r 's/^\W|\W$//g'

Update:

If you want the file name and the line number printed as well, you'll probably need a for loop:

for i in `grep -R --include=*.php -l -i 'FROM' /var/www/sites`; do grep -Pion '(?<=from )\S+' $i | sed -r -e "s/['\`\"]/ /g" -e 's#^#'$i'... : line #'; done

This works as follows:

  • for each file in
    • grep recursive, print file name, case insensitive search for FROM in *.php
  • do
    • look for non-spaces following "from ", print only line number and matching word
    • use sed to replace '"` with a space and insert the filename at the beginning of the line

Example session:

rojo@pico:~$ cat Desktop/test.php
' SELECT * FROM `contacts` WHERE 1=1' test data here that should be cut out'

rojo@pico:~$ for i in `grep -R --include=*.php -l -i 'FROM' .`; do grep -Pion '(?<=from )\S+' $i | sed -r -e "s/['\`\"]/ /g" -e 's#^#'$i'... : line #'; done
./Desktop/test.php... : line 1: contacts

Here's another alternative using awk:

find /var/www/sites -type f -iname '*.php' -print0 | xargs -0 awk 'BEGIN {FS="from|FROM|where|WHERE"} {++x;} /from|FROM/ {printf "%s... : line %d : %s%s", FILENAME, x, $2, ORS}'

... But I haven't figured out how to make it strip quotes / backticks / apostrophes surrounding the table names. I could probably pipe it through sed or tr if it's important, but there has to be a more graceful way to do it.

share|improve this answer
    
it doensn't pull anything, try using this to test it, and pipe the grep command after. echo "' SELECT * FROM `contacts` WHERE 1=1' test data here that should be cut out'" – user2019528 Apr 1 '13 at 16:58
    
That's because when you echo something `contacts` your shell is treating `contacts` as if it were written as $(contacts). In other words, bash is trying to execute an application named contacts and insert its output into that part of the echo command. You have to backslash escape \`contacts\` in your echo line (as well as remove *.php). – rojo Apr 1 '13 at 17:14
1  
@user2019528 - I made a more complete answer for you. Enjoy. :P – rojo Apr 1 '13 at 18:11
    
I tried to add /path/to/files and it didn't take, gives me an error "sed: -e expression #2, char 6: unknown option to `s'". Here is what I added: for i in `grep -R --include=*.php -l -i 'FROM' /path/to/files/`; do grep -Pion '(?<=from )\S+' $i | sed -r -e "s/['`\"]/ /g" -e 's/^/'$i'... : line /'; done – user2019528 Apr 1 '13 at 18:40
    
@user2019528 I made an edit after that line you grabbed. It's because the final sed statement has / as delimiters. I had to change those to # to avoid the filename slashes being treated as regexp delimiters. Your line should read as follows: for i in `grep -R --include=*.php -l -i 'FROM' /path/to/files`; do grep -Pion '(?<=from )\S+' $i | sed -r -e "s/['\`\"]/ /g" -e 's#^#'$i'... : line #'; done – rojo Apr 1 '13 at 18:42

I tried the following line. It will take your examples with dots, dashes and single quotes and pull out the table name. You can take the grep/gawk/sed portion and loop over your PHP code.


    echo "select * from 'the_db.the_table' where the_result=1;" | grep -ioE "(from)[[:space:]]([a-zA-Z0-9\_\.\']*)[[:space:]]" | gawk '{ print $2 }' | sed -e s/\'//g

    the_db.the_table

share|improve this answer
    
This worked well! However, it's useless if it doesn't include the line number, and the script location (/var/www/...:line 131: <table name>). How can this be retained? Your answer was the best thus far so I'm hoping you can help, thank you! – user2019528 Apr 1 '13 at 17:36

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