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I have written the following code for showing the version number of ghostscript:

<html>
<head>
<title></title>
</head>
<body>
<?

$ver = shell_exec("/usr/bin/gs --version");
//$ver = exec(GS_BIN . " --version");
print "$ver";
print "A";

?>
</body>
</html>

I can get the A printed, but not the version number why?

Thanks.

share|improve this question
    
Try replacing shell_exec with exec. –  Rocket Hazmat Jul 8 '11 at 15:53
    
@Rocket nope, no use –  lokheart Jul 8 '11 at 15:54
    
Well, I tried :-P –  Rocket Hazmat Jul 8 '11 at 15:54
    
@hakre: Why are you asking me? –  Rocket Hazmat Jul 8 '11 at 16:44
    
@lokheart: If you execute that command manually in the shell, what does it print on screen? @Rocket: sorry. –  hakre Jul 8 '11 at 19:02

2 Answers 2

up vote 2 down vote accepted

Possibly ghostscrsipt is writing the data out to STDERR instead of STDOUT. Try doing

/usr/bin/gs --version 2>&1 

to redirect stderr to stdout and try again

share|improve this answer
    
I need to try the gs version number because I need to use php to use gs to capture some image, but I can't run it using exec, so I try a smaller task of showing the version number, but still fail –  lokheart Jul 8 '11 at 16:01
    
@lokheart: Have you tried to redirect STDERR to STDOUT like Marc B suggested? –  hakre Jul 8 '11 at 16:04
    
i tried $ver = shell_exec('/usr/bin/gs --version 2>&1'); and the output is string(111) "/usr/bin/gs: /opt/lampp/lib/libgcc_s.so.1: version GCC_4.2.0' not found (required by /usr/lib/libstdc++.so.6) "`, what has gone wrong? –  lokheart Jul 8 '11 at 16:17
1  
If gs works from the command line, then whatever shell is being invoked by PHP doesn't have the proper library path, and can't find the gcc library that GS was compiled against. –  Marc B Jul 8 '11 at 16:22

You should use var_dump($ver); for debugging purposes, because your code just works:

$ php -r "echo shell_exec('/usr/bin/gs --version');"
8.71

I just had it run on my linux box and according to shell_exec() Docs, it should be fine.

Things to look for:

  • Safe Mode enabled?
  • exec() can return the exit code / return status of the command.
  • if it returns NULL, see this answer.

STDERR and shell_exec()

shell_exec() will only return the commands output written to STDOUT. In case the command can not be invoked by the shell, this function will return NULL and it will hide away what has been reported as error.

To include errors as well in the return value, STDERR needs to be redirect to STDOUT. This is done by adding 2>&1 to the end of the command. Here is the same example code with a wrong command for demonstration:

$ php -r "var_dump(shell_exec('/usr/bin/gs2 --version 2>&1'));"
string(44) "sh: /usr/bin/gs2: No such file or directory
"
share|improve this answer
    
i tried it, but it's output is NULL, I have gs in my ubuntu –  lokheart Jul 8 '11 at 15:57
    
and I have checked phpinfo(), safe mode is disabled –  lokheart Jul 8 '11 at 15:59
    
I added a reference to the question. Check if it helps. –  hakre Jul 8 '11 at 16:01

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