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When I hardcode my query like this, the query returns the proper result:

$data = mysql_query("SELECT * FROM $table_name WHERE post_ID = '1'") or
              die(mysql_error());

But when I use a php variable like this, the query returns no results:

 $data = mysql_query("SELECT * FROM $table_name WHERE post_ID = '$ID'") or
              die(mysql_error());

I have initialized the variable above as follows:

$ID = $_POST[ID];

And the variable works every time with this statement:

$sql = "INSERT INTO $table_name (post_ID, user_name, comments)
    VALUES ('$ID','$name', '$comment')";

So I do not understand why the variable would insert properly into my sql table with the previous statement, but not work with the query. I am using a varchar datatype in the sql table for the post_ID field.

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2  
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. –  cryptic ツ Mar 6 '13 at 5:46
1  
it should be $ID = $_POST['ID']; no..? –  MatRt Mar 6 '13 at 5:47
    
$_POST[ID]; would still assume it's a string providing ID has not been defined as a constant. (please note it would throw a WARNING level error) So not necessarily, but you may be correct. –  Spinkzeit Mar 6 '13 at 5:49
    
Do one thing echo out your query and run that output in a mysql environment. See what you get. –  Roger Mar 6 '13 at 5:54
    
What does this print? echo "SELECT * FROM $table_name WHERE post_ID = '$ID'"; –  Hanky 웃 Panky Mar 6 '13 at 5:57
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6 Answers

can you please try directly instead of quotes

 $data = mysql_query("SELECT * FROM $table_name WHERE post_ID =$ID") or
              die(mysql_error());
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this causes an error: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '' at line 1 –  user2138541 Mar 6 '13 at 6:06
1  
please print the value of $ID is there any value in it or not –  Praveen kalal Mar 6 '13 at 6:07
    
nothing is printing, but the proper value is being inputted into my sql table. So that doesn't make any sense. –  user2138541 Mar 6 '13 at 6:14
    
mean there is no value is coming in ID field that's why its giving you mysql error. –  Praveen kalal Mar 6 '13 at 6:21
    
but everything is being inputted into the table properly, just not outputted. –  user2138541 Mar 6 '13 at 6:32
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Php parser doesn't parse a variable if you put it within ''. So try removing single quotes ie use just $ID instead of '$ID'

$data = mysql_query("SELECT * FROM $table_name WHERE post_ID = $ID") or die(mysql_error());
share|improve this answer
    
this causes an error –  user2138541 Mar 6 '13 at 6:05
    
You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '' at line 1 –  user2138541 Mar 6 '13 at 6:08
    
@Mihir In "... '$ID'" the string is delimited with double quotes, and variable substitution is done. The single quotes are just a part of the string, and does not prevent variable substitution (as they do in '... "$ID"') –  Terje D. Mar 6 '13 at 6:17
    
@TerjeD. - I agree. Well i assumed that $ID will be having a ID so just asked him to try bt If he would have told that $ID is NULL then probably some other solution would have been provided. And, You are RIGHT that variable will be parsed even if it's delimited by single quotes and super delimited by double quotes. –  Mihir Mar 6 '13 at 7:05
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try using this

<?php
$query = "SELECT * FROM $table_name WHERE post_ID = "$ID;
$data = mysql_query($query);
?>

although, you have to use mysqli instead of mysql functions.

Happy coding!

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Make sure the $_POST['ID'] is set first.

$ID = isset($_POST['ID']) ? $_POST['ID'] : <some_values>; #for debugging purpose

Then, do:

$data = mysql_query("SELECT * FROM $table_name WHERE post_ID = '".$ID."'") or
        die(mysql_error());
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the variables are not being set... now I have no idea how my sql table is being populated.. –  user2138541 Mar 6 '13 at 6:46
    
Trying checking on the input values inside your HTML form. Maybe you missed that part. –  foxns7 Mar 6 '13 at 6:53
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Try this

$ID = $_POST['ID'];
$data = mysql_query("SELECT * FROM ".$table_name." WHERE post_ID = '".$ID."'") or
        die(mysql_error());
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that didn't seem to work –  user2138541 Mar 6 '13 at 6:02
    
can you make sure that your $_POST['ID'] is not null or return a valid value? –  Tapas Pal Mar 6 '13 at 6:10
    
the $_POST[ID] is returning the proper value to the sql table –  user2138541 Mar 6 '13 at 6:35
    
now try the edited version.... –  Tapas Pal Mar 6 '13 at 7:12
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Here is some problem with the code. As your PHP variable wont work in MySQL query. So you have to pass the variable into it. With a single Quote you can pass it like that. And

$data = mysql_query("SELECT * FROM '$table_name' WHERE post_ID = '1'") or die(mysql_error());

Thanks

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