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I am using php eval() function, below are my statements:

$uid = 8;
$str = 'SELECT COUNT(*) FROM uchome_blog WHERE uid=$uid';
eval("\$str = \"$str\"");
die("$str");
//$query = $_SGLOBAL['db']->query($str);
//$result = $_SGLOBAL['db']->fetch_array($query);

The output is: SELECT COUNT(*) FROM uchome_blog WHERE uid=$uid That's to say the varibale $uid did not passed. How to pass a variable into the evaluated string. Thanks.

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2  
WTF? why do you need an eval at all? Just put double quotes in the assignment statment and forget about eval. –  Carlos Campderrós May 26 '11 at 7:46

3 Answers 3

you can't insert varuiable into single-quotet strings directly. try this:

$str = "SELECT COUNT(*) FROM uchome_blog WHERE uid=$uid"; // double-quotet

or this:

$str = 'SELECT COUNT(*) FROM uchome_blog WHERE uid='.$uid; // string-concatenation
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1  
Please add mysql_real_escape_string for good measure –  Bart Vangeneugden May 26 '11 at 6:53
    
ok, thank you very much. –  hon May 26 '11 at 6:54

Variable substitution only works in double quoted strings.

Try this:

$uid = 8;
$str = "SELECT COUNT(*) FROM uchome_blog WHERE uid=$uid"; # variable gets substituted here
eval("\$str = \"$str\"");
die("$str");

I think variable substitution is something that happens at parse time - it is not done recursively, so in your eval, the contents of $str is pasted into the string, but that isn't done a second time for the contents of $uid inside $str.

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ok, thank you very much. –  hon May 26 '11 at 6:54

You are missing a semicolon. Try this:

eval("\$str = \"$str\";");

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