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 .c file compiled and would like to run via a cron job but I end up getting this error:

/bin/sh: /usr/local/bin/get1Receive.c: Permission denied. 

What is causing this error and how do I fix it?

Should I be running the .c file in cron or a different compiled file?

Results from /tmp/myvars

GROUPS=()
HOME=/root
HOSTNAME=capture
HOSTTYPE=x86_64
IFS='
'
LOGNAME=root
MACHTYPE=x86_64-redhat-linux-gnu
OPTERR=1
OPTIND=1
OSTYPE=linux-gnu
PATH=/usr/bin:/bin
POSIXLY_CORRECT=y
PPID=11086
PS4='+ '
PWD=/root
SHELL=/bin/sh
SHELLOPTS=braceexpand:hashall:interactive-comments:posix
SHLVL=1
TERM=dumb
UID=0
USER=root
_=/bin/sh

Results from file get1Receive.c

file get1Receive.c
get1Receive.c: ELF 64-bit LSB executable, x86-64, version 1 (SYSV), dynamically linked (uses shared libs), for GNU/Linux 2.6.18, not stripped

Snippet of codes.

sprintf(queryBuf1,"SELECT ipDest, macDest,portDest, sum(totalBits) FROM dataReceive WHERE timeStampID between '%s' And '%s'  GROUP BY ipDest, macDest, portDest ",buff1,buff2);
                printf("\nQuery receive %s",queryBuf1);


                if(mysql_query(localConn, queryBuf1))
                {
                    //fprintf(stderr, "%s\n", mysql_error(localConn));
                    printf("Error in first query of select %s\n",mysql_error(localConn));
                    exit(1);
                }

                localRes1 = mysql_store_result(localConn);
                int num_fields = mysql_num_fields(localRes1);

                printf("\nNumf of fields : %d",num_fields);
                printf("\nNof of row : %lu",mysql_num_rows(localRes1));
share|improve this question
1  
Did you actually specify the .c file as to be executed? Replace it with the binary file resulting from the gcc run. –  glglgl Mar 12 '13 at 13:46
    
@glglgl I have tried ./get1Receive.c it runs smoothly. –  biz14 Mar 12 '13 at 13:54
1  
@biz14: is this a C program, or a c-shell script? Does the line start #!, if so, what follows? You cannot run a C program without compiling it or running it in somesort of framework. –  cdarke Mar 12 '13 at 13:59
    
@cdarke the get1Receive1.c is the compile output from the gcc - o. –  biz14 Mar 12 '13 at 14:05
1  
@biz14 - really? That is unusual, usually that is the name of the source code (sure it isn't a.out?). Anyway, chmod u+x filename should give you what you need. –  cdarke Mar 12 '13 at 14:18

2 Answers 2

If the output of this command:

file  get1Receive1.c

shows that file name to be a valid executable that part is very unusual, but okay.

Assuming you are using biz14 (or your real username's ) crontab try this:

use the command crontab -e to create this line in your crontab:

* * * * *  set > /tmp/myvars

Wait a few minutes, go back into crontab -e and delete that entry.

Use the set command from the command line to see what variables and aliases exist. Compare that with that you see in /tmp/myvars You have to change how your C code executes by changing the variables and aliases the cron job runs with.

If you are running the cron job in someone else's crontab, then you have a bigger problem. Check file permissions on get1Receive1.c. and the directory it lives in. That other user (the one who wons the crontab) has to have permissions set on your directory and get1Receive1.c so the job can run.

Example crontab entry:

0 10 * * 1-5 /path/to/get1Receive1.c > /tmp/outputfile

Read /tmp/outputfile to see what you got. You are using printf in your code. printf only writes to the controlling terminal. There is no controlling terminal, so redirect the printf stuff to a file.

Last effort on this problem: Check return codes on EVERYTHING. All C functions like fread(), any db function, etc. If a return code gives a fail response ( these are different for different function calls) then report the error number the line number and function - gcc provides LINE and func. Example:

printf("error on line %d in my code %s, error message =%s\n", __LINE__, __func__, [string of error message]);

If you do not check return codes you are writing very poor C code.

CHECK return codes, please, now!

share|improve this answer
    
I have update my question with both the results I am not too sure what to change now in my C codes? Any suggestion? I am running the cron as root. –  biz14 Mar 12 '13 at 15:13
    
chmod 755 get1Receive1.c ( or whatever the new name is). Since you are running as root (which can be dangerous) supply the full path, example: /home/biz14/get1Receive1.c in your crontab entry. -- Use the new name for your file since you've changed it. –  jim mcnamara Mar 12 '13 at 16:51
    
why is it dangerous to run as root? So how to change to other users? I just chmod 755 and it is still not generating the query results even with chmod 755? –  biz14 Mar 12 '13 at 17:05
    
You seem new to all this. That means you may do something really bad, unintentionally. Like delete or mv an important file so the system cannot boot properly. Having full privilege and being new is a dangerous combination. Add another user to the system, let that unprivileged, regular user run the job. Change permissions on directories and the executable file so the new user can run the job. I have no clue as to why you got no output, but it is probably related to one of the settings. try this as part of the crontab: /path/to/getReceive > /tmp/outputfile <-- Look at that file at end. –  jim mcnamara Mar 12 '13 at 22:10
    
I edited the answer above to show you how to run the job. The "time part" was just an example (time part = first five columns like * * * * *) It will run M-F at 10:00am. –  jim mcnamara Mar 12 '13 at 22:16

Permission wise you could have two issues. 1. The 'c' file's permissions don't allow who you are running it as to run it. 2. You are running the cron with a script which doesn't have permissions.

Here's a helpful post: How to give permission for the cron job file?

The fact that you are running a 'c' file and referring to it as a script makes me think you're using C shell and not writing it as a C language program which would need to be compiled and have the generated executable run by the cron. If you're not using gcc or have never called gcc on your 'C' script then it's not C and call it C shell to avoid confusion.

share|improve this answer
    
usually when folks identify scripts with the name, the local standards usually involve [scriptname].[suffix] where suffix identifies the type of script: .csh, .ksh, or maybe .sh. Using .c would be really confusing. I'm wondering if the get1Receive1.c file (the source) was overwritten somehow during the compile. And the source has gone bye-bye. –  jim mcnamara Mar 12 '13 at 14:19
    
@jimmcnamara get1Receive1.c is the output from gcc -o so what should I give the suffix for .c output files? –  biz14 Mar 12 '13 at 14:33
    
@biz14: usually UNIX/Linux compiled binary files do not have a filename suffix. For example, you call ls, not ls.exe. –  cdarke Mar 12 '13 at 15:46
    
@cdarke ok I wont compile it with .c any more but my problem now the crontab can run my script but cant give me the query results I have updated my question with two more results suggested by jim can you suggest what I must do now? –  biz14 Mar 12 '13 at 15:48

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.