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I have a form , where users select available skills

<form name="myForm" action="jssearch.php" method="post">

 <input type="checkbox" name="chk1[]" value="1">Helpdesk Support<input type="checkbox"      name="chk1[]" value="2">DB Admin<br>
 <input type="checkbox" name="chk1[]" value="3">C++ Programming<input type="checkbox" name="chk1[]" value="5">HTML<br>
 <input type="checkbox" name="chk1[]" value="6">PHP<br><input type="checkbox" name="chk1[]" value="7">Memory Dump Analysis<br>
 <input type="checkbox" name="chk1[]" value="8">SQL<br><br>

 <input type="submit" name="Update" value="Search">

 </form> 

Based on these selections , I want to run a query against a many to many table and display the available jobs that contain the skills selected.

This is my query so far.

<?php

session_start();
mysql_connect("localhost", "root", "root") or die(mysql_error());
mysql_select_db("jobsearch") or die(mysql_error());

$variable=$_POST['chk1'];
foreach ($variable as $variablename)


{

$query = mysql_query("SELECT jobs.jobid AS job_id, jobs.jobtitle AS
    job_title,jobs.salary AS salary_desc, GROUP_CONCAT(skills.Desc) AS skills_desc    
FROM jobskillsjoin
INNER JOIN jobs ON jobs.jobid = jobskillsjoin.JobID
INNER JOIN skills ON skills.skill_id = jobskillsjoin.SkillID
WHERE skills.skill_id = '".$variablename."'
GROUP BY jobs.jobid
")
or die(mysql_error());
}

echo "<table border='1'>
<tr>
<th>Job ID</th>
<th>Job Title</th>
<th>Skills required</th>
<th>Salary Offered</th> 
</tr>";

while($row = mysql_fetch_array($query))
{
echo "<tr>";
echo "<td>" . $row['job_id'] . "</td>";
echo "<td>" . $row['job_title'] . "</td>";
echo "<td>" . $row['skills_desc'] . "</td>";
echo "<td>" . $row['salary_desc'] . "</td>"; 
echo "</tr>";
}
echo "</table>";


?>   

What happens though is only the last skill selected is run through the query , I want to display all the "hits" though.

I think I need a loop and an array but im not sure how to do it.

share|improve this question

1 Answer 1

When you submit a checkbox like you did, it become an array in PHP side. You need to use this array in your where clause. Use the function implode to transform the array in a string and use the operator "in". So your where clause will be:

$query = mysql_query("SELECT jobs.jobid AS job_id, jobs.jobtitle AS
        job_title,jobs.salary AS salary_desc, GROUP_CONCAT(skills.Desc) AS skills_desc    
    FROM jobskillsjoin
    INNER JOIN jobs ON jobs.jobid = jobskillsjoin.JobID
    INNER JOIN skills ON skills.skill_id = jobskillsjoin.SkillID
    WHERE skills.skill_id in (". implode(",",$_POST['chk1']) .")
    GROUP BY jobs.jobid
    ")

This way, the query will return all skills checked.

To return all skills of a job which has at least one skill selected you need to change the query logic to something like:

SELECT j.jobid AS job_id, j.jobtitle AS
            job_title, GROUP_CONCAT(skills_Desc) AS skills_desc    
        FROM jobskillsjoin
        INNER JOIN jobs j ON j.jobid = jobskillsjoin.JobID
        INNER JOIN skills ON skills.skill_id = jobskillsjoin.SkillID
where exists(select 1 from jobskillsjoin where jobid = j.jobid and SkillID in (1,2))
        GROUP BY j.jobid;

Please, note I change the query. Do not copy and paste to your code. Adapt it to make sure you will not miss anything.

share|improve this answer
    
It works !!! Ive been at this for hours ... Thanks so much Jose :-) –  Gary May 1 '13 at 15:30
    
Hmmm ... although it works, it only displays the skill selected. I mean, if a job has skill 1 2 and 3 associated with it, and I search for skill 1 , it will find this job. But its only printing out skill 1 ... i need it to print all skills for the particular job. Any ideas? –  Gary May 1 '13 at 15:33
    
Change your question to make sense with my last edition –  Jose Areas May 1 '13 at 15:51

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