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I am new to PHP and am unsure as to the syntax of mysql in php. I am trying to check a username from a data_table with the help of the following SELECT statement but seem to be encountering a syntax error. I would really appreciate any help in this matter.

$myquery = sprintf("SELECT `Username` FROM `dataTable` WHERE `Username` = \\%s", mysqli->real_escape_string($loginID));

 $userNameCheck = mysqli->query($myquery); 

 if($userNameCheck)
 {
    echo "query succeeded";
 }
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can you print the result of $myquery? –  John Woo Nov 27 '12 at 15:59
1  
Is $loginID a string? It must be single-quoted. –  Michael Berkowski Nov 27 '12 at 15:59
    
You need to add quotes around the %s for username, and I am also unsure what those \\'s are doing there. –  aderuwe Nov 27 '12 at 15:59
    
$loginID is a php variable that holds a string –  anonuser0428 Nov 27 '12 at 16:00
    
Remove the backslashes and substitute '%s' –  Michael Berkowski Nov 27 '12 at 16:00

3 Answers 3

up vote 1 down vote accepted

saw that you are missing the $ sign at mysqli, don't know if that is a typo here or in your code.

$myquery = "SELECT `Username` FROM `dataTable` WHERE `Username` = '".$mysqli->real_escape_string($loginID)."'";
$userNameCheck = $mysqli->query($myquery);

And then test what @Ray wrote

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You still need quotes, even with your... unusual method of query building. Also, I'm not sure what the double-backslash is in aid of.

$myquery = sprintf("..... `Username` = '%s'",mysqli...);
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Skip the sprintf.

  $myquery = "SELECT `Username` FROM `dataTable` WHERE `Username` = '".mysqli->real_escape_string($loginID)."'";
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