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I am trying to obtain records from a MYSQL database based on identifiers contained in an array. To get the identifiers my code is as follows:

$query="SELECT agent_id FROM agent_coverage WHERE primary_area LIKE '$search_term%'";
$result=mysqli_query($dbc, $query) or die("Could not obtain primary area coverage2");
while($r=mysqli_fetch_array($result))
{
    $agent_primary[]=$r['agent_id'];
}

This seems to work fine when using print_r to access the array details.

My next statement which is the one that fails is as follows:

if(!empty($agent_primary))
{
    $ids=join(",", $agent_primary);
    $query5="SELECT * FROM detail_db WHERE user_id IN($ids)";
    $result5=mysqli_query($dbc, $query5) or die("Could not do SELECT");

    while($row=mysqli_fetch_array($result5))
    {
    //do stuff with results here.
    }
}

This just fires the die() statement. I have tried using implode instead of join with no success.

edit:
die($dbc->error) after the failing query reveals the error to be: unknown column '' in where clause

share|improve this question
    
use IN ('1', '2', ...) –  user1646111 Feb 7 '13 at 11:28
    
what does var_dump($query5); output? –  Stu Feb 7 '13 at 11:29
    
Where is $dbc defined? –  Chris Feb 7 '13 at 11:29
    
'$dbc' is defined at the beginning of the script. This is the db connection details. –  Sideshow Feb 7 '13 at 11:31
1  
I've never heard of "unknown row" error. What is the exact error message? –  Barmar Feb 7 '13 at 11:40

6 Answers 6

up vote 1 down vote accepted

Try:

$agent_primary[]="'".$dbc->real_escape_string($r['agent_id'])."'";
share|improve this answer
    
$agent_primary[]="'".$r['agent_id']."'"; seems to work nicely - this is thanks to your above suggestion :) –  Sideshow Feb 7 '13 at 12:46
    
@Sideshow: I have suggested to do that from begging! but you didn't applied! –  user1646111 Feb 7 '13 at 12:53
    
@Akam Sorry, it was really hard to read in the comment. And you didn't use real_escape_string(), which is needed to avoid SQL injection. –  Barmar Feb 7 '13 at 12:55
    
no, you asking people and not following the instructions! –  user1646111 Feb 7 '13 at 12:58
    
@Akam I couldn't tell what you were using as the argument to join(), the single and double quotes look alike in the tiny comment font. –  Barmar Feb 7 '13 at 13:02
$query="SELECT agent_id FROM agent_coverage WHERE primary_area LIKE '$search_term%'";
$result=mysqli_query($dbc, $query) or die("Could not obtain primary area coverage2");

$agent_primary=array();    

while($r=mysqli_fetch_array($result))
{
  array_push($agent_primary,$r['agent_id']);
}

then

if(!empty($agent_primary))
{
$ids=$agent_primary;
$query5="SELECT * FROM detail_db WHERE user_id IN($ids)";
$result5=mysqli_query($dbc, $query5) or die("Could not do SELECT");

while($row=mysqli_fetch_array($result5))
{
//do stuff with results here.
}
}

use this. I think it will help you.

share|improve this answer
    
How can that work? $ids is an array, so it will just interpolate the word Array. –  Barmar Feb 7 '13 at 11:35
    
no not this. it is holding $r['agent_id']. plz see my code. –  ripa Feb 7 '13 at 11:37
    
I see your code: $agent_primary = array(); –  Barmar Feb 7 '13 at 11:38
    
plz see full code. in my code here is also array_push($agent_primary,$r['agent_id']); this code –  ripa Feb 7 '13 at 11:39
1  
That just adds an element to the array, just like the original $agent_primary[] = $r['agent_id'];. It's still an array. IN requires a comma-separated list. –  Barmar Feb 7 '13 at 11:42

You can do it like this

if(!empty($agent_primary))
{
    $ids=implode($agent_primary,",");
    $query5="SELECT * FROM detail_db WHERE user_id IN ($ids)";
    $result5=mysqli_query($dbc, $query5) or die("Could not do SELECT");

    while($row=mysqli_fetch_array($result5))
    {
    //do stuff with results here.
    }
}

Hope this Helps

share|improve this answer

edit: Both queries can be combined with a JOIN stament

$query = "
    SELECT
        dd.user_id,
        dd.foo
    FROM
        tmp_agent_coverage as ac
    LEFT JOIN
        tmp_detail_db as dd
    ON
        ac.agent_id=dd.user_id
    WHERE
        ac.primary_area LIKE '$search_term%'
";
$result=mysqli_query($dbc, $query) or mysqliError($dbc, "Could not obtain primary area coverage2");
while($r=mysqli_fetch_array($result))
{
    echo $r['user_id'], ' ', $r['foo'], "\n";
}

edit2: self-contained example

<?php
$dbc = new mysqli('localhost', 'localonly', 'localonly', 'test');
if ($dbc->connect_error) {
    var_dump($mysqli->connect_errno, $mysqli->connect_error);
    die;
}
setup($dbc);
$search_term = 'xy';

$query = "
    SELECT
        dd.user_id,
        dd.foo
    FROM
        tmp_agent_coverage as ac
    LEFT JOIN
        tmp_detail_db as dd
    ON
        ac.agent_id=dd.user_id
    WHERE
        ac.primary_area LIKE '$search_term%'
";
$result=mysqli_query($dbc, $query) or mysqliError($dbc, "Could not obtain primary area coverage2");
while($r=mysqli_fetch_array($result))
{
    echo $r['user_id'], ' ', $r['foo'], "\n";
}

define('DEVELOPMENT_DEBUG_MESSAGES', 1);
function mysqliError($dbc, $description) {
    if ( !defined('DEVELOPMENT_DEBUG_MESSAGES') || !DEVELOPMENT_DEBUG_MESSAGES ) {
        echo '<div class="error">', htmlspecialchars($description), '</div>';
    }
    else {
        echo '<fieldset class="error"><legend>', htmlspecialchars($description), '</legend>',
            htmlspecialchars($dbc->error), '</div>';
    }
}

function setup($dbc) {
    $q = array(
        'CREATE TEMPORARY TABLE tmp_agent_coverage (
            agent_id int auto_increment,
            primary_area varchar(32),
            primary key(agent_id),
            key(primary_area)
        )',
        "INSERT INTO tmp_agent_coverage (primary_area) VALUES ('xy1'),('dfg'),('xy2'),('abc'),('xy3')",
        'CREATE TEMPORARY TABLE tmp_detail_db (
            user_id int auto_increment,
            foo varchar(32),
            primary key(user_id)
        )',
        "INSERT INTO tmp_detail_db (foo) VALUES ('fooxy1'),('foodfg'),('fooxy2'),('fooabc'),('fooxy3')"
    );
    foreach($q as $query) {
        $dbc->query($query) or die(__LINE__ .' '.$query. ' '. $dbc->error);
    }
}

prints

1 fooxy1
3 fooxy2
5 fooxy3

original answer:
mysqli::query returning false means that an error occured while executing the query. That could be e.g. a syntax error or privileges or ... or ...
The error and errno properties of your $dbc object should hold more detailed information about the error. But you shouldn't show the complete error message to just any arbitrary user.
So, for debugging purposes define a function like

define('DEVELOPMENT_DEBUG_MESSAGES', 1);
function mysqliError($dbc, $description) {
    if ( !defined('DEVELOPMENT_DEBUG_MESSAGES') || !DEVELOPMENT_DEBUG_MESSAGES ) {
        echo '<div class="error">', htmlspecialchars($description), '</div>';
    }
    else {
        echo '<fieldset class="error"><legend>', htmlspecialchars($description), '</legend>',
            htmlspecialchars($dbc->error), '</div>';
    }
}

and then use this function in your code like

<?php
define('DEVELOPMENT_DEBUG_MESSAGES', 1);
[...]
$query="SELECT agent_id FROM agent_coverage WHERE primary_area LIKE '$search_term%'";
$result=mysqli_query($dbc, $query) or mysqliError($dbc, "Could not obtain primary area coverage2");

remove the define(...) line when you're done debugging.

share|improve this answer
1  
He's already posted the error message. –  Barmar Feb 7 '13 at 11:49
    
hidden somewhere in the comments.... –  VolkerK Feb 7 '13 at 11:55

Use implode to create a string and append brackets around it.

Get values of ids in a array and then implode it. Just see below example - This works.

 $arr = array(1,297,298);
    $new = '(';
    $new .= implode(',',$arr);
    $new .= ')';
    $query = "Select * from wp_posts where ID IN $new";
share|improve this answer
    
Yes - it gets an array of all the agent ids that match a certain criteria –  Sideshow Feb 7 '13 at 11:48

try this

 $ids=join("','", $agent_primary);
 $query5="SELECT * FROM detail_db WHERE user_id IN('$ids')";

i tried it in my localhost and it works perfect!

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