Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a command which is executed successfully on command line:

ls -l | awk '/Sep 26/{split($8,a,":");if(a[1]a[2]>=1045 && a[1]a[2]<=1145)print $9}'

I am including the same thing in a shell script below:

#!/bin/ksh

date1=$1
date2=$2
time1=$3
time2=$4
ls -l| awk -v d1=${date1} -v d2=${date2}  -v t1=${time1} -v t2=${time2} '/d1 d2/{split($8,a,":");if(a[1]a[2]>=t1 && a[1]a[2]<=t2) print $9}'

But this does not work.please see below the execution

ksh -vx test.sh Sep 26 1045 1145
#!/bin/ksh

date1=$1
+ date1=Sep
date2=$2
+ date2=26
time1=$3
+ time1=1045
time2=$4
+ time2=1145
ls -l| awk -v d1=${date1} -v d2=${date2}  -v t1=${time1} -v t2=${time2} '/d1 d2/{split($8,a,":");if(a[1]a[2]>=t1 &&a[1]a[2]<=t2)print $9}'
+ awk -v d1=Sep -v d2=26 -v t1=1045 -v t2=1145 /d1 d2/{split($8,a,":");if(a[1]a[2]>=t1 &&a[1]a[2]<=t2)print $9}
+ ls -l
awk: syntax error near line 1
awk: bailing out near line 1

I am using Solaris OS:I have tried with nawk now but there is no error but also there is no output.

pearl[ncm_o11.2_int.@].293> ksh -vx test.sh Sep 26 1045 1145
#!/bin/ksh

date1=$1
+ date1=Sep
date2=$2
+ date2=26
time1=$3
+ time1=1045
time2=$4
+ time2=1145
ls -l| nawk -v d1=${date1} -v d2=${date2}  -v t1=${time1} -v t2=${time2} '/d1 d2/{split($8,a,":");if(a[1]a[2]>=t1 &&a[1]a[2]<=t2)print $9}'
+ ls -l
+ nawk -v d1=Sep -v d2=26 -v t1=1045 -v t2=1145 /d1 d2/{split($8,a,":");if(a[1]a[2]>=t1 &&a[1]a[2]<=t2)print $9}

When i am executing with out the shell variables inside the script.its executing perfectly.

*Note:*I am using Solaris OS.

I figured out the problem lies in the final framed command inside shell script:

ls -l|nawk -v d1=Sep -v d2=26 -v t1=1045 -v t2=1145 '/d1 d2/{split($8,a,":");if(a[1]a[2] >=t1 && a[1]a[2]<=t2)print $9}'

But i am not sure why this is failing to give the correct output with -v flags

share|improve this question
    
awk --v. also, does this anything to do with shell variables? does it work if you call it directly without variable substitution? –  Karoly Horvath Sep 26 '11 at 8:51
add comment

2 Answers 2

As already suggested, if you need a dynamic regular expression, you need to use $0 ~ d1 " " d2 instead of /d1 d2/.

share|improve this answer
add comment

Which operating system? It's possible that when you run the command interactively awk points to a different awk implementation. If you're on Solaris, for example, try running your script with nawk (or gawk), instead of awk.

share|improve this answer
    
Yeah i am using Solaris –  Vijay Sep 26 '11 at 9:29
    
So try using nawk in your script. –  Dimitre Radoulov Sep 26 '11 at 9:34
    
I have pasted the nawk output but it too is not working –  Vijay Sep 26 '11 at 9:49
    
At least the error is gone :) I suppose that /d1 d2/ doesn't mean what you expect. If you need a dynamic regular expression, you need to use something like this: $0 ~ d1 " " d2. –  Dimitre Radoulov Sep 26 '11 at 10:00
    
I have observed that the command is not returning any out put.:ls -l|nawk -v d1=Sep -v d2=26 -v t1=1045 -v t2=1145 '/d1 d2/{split($8,a,":");if(a[1]a[2]>=t1 && a[1]a[2]<=t2)print $9}' –  Vijay Sep 26 '11 at 10:03
show 3 more comments

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.