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This may be simpler than I am making it, but I'm fairly new to php/mySQL and have hit a bit of a roadblock.

I have data from two tables

1-Employers has general contact info

2-Duties has work that the employer is responsible for

It is a one to many relationship as each employer has many duties. I know how to display a list of duties when I am displaying each employer independently, But in this application I need to display a list of employers with the duties each employer has after their company info with all companies listed on the same page.

The way I currently have it I get a

  • for every duty with the employer duplicated each time.

    The controller

    // Display employment
    
        try
        {
          $result = $pdo->query('SELECT d.*, m.*,
          date_format(start_date,"%M, %Y") AS started,
          date_format(end_date,"%M, %Y") AS ended FROM employers m
          LEFT JOIN duties d ON d.e_id = m.id');
        }
    
        catch (PDOException $e)
        {
          $error = 'Error fetching employers from the database!' . $e->getMessage();
          include '/error.html.php';
          exit();
        }
    
        foreach ($result as $row)
        {
          $employers[] = array(
          'id' => $row['id'],
          'name' => $row['name'],
          'city' => $row['city'],
          'state' => $row['state'],
          'started' => $row['started'],
          'ended' => $row['ended'],
          'title' => $row['title'],
          'duty' => $row['duty']
          );
        }
    

    The View

    <section id="employers">
        <h2>Employers</h2>
        <ul>
            <?php foreach ($employers as $employer): ?>
            <li>
                <?php htmlout($employer['id']); ?>
                <?php htmlout($employer['name']); ?>
                <?php htmlout($employer['city']); ?>
                <?php htmlout($employer['state']); ?>
                <?php htmlout($employer['duty']); ?>
           </li>
           <?php endforeach; ?>
        </ul>
        </section>
    
  • share|improve this question

    1 Answer 1

    If you want to group all your duties for each employee, you should modify your loop. Here an example

    // Initialize employers
    $employers = array();
    
    // The current employee ID
    $employeeId = false;
    
    // The current new employee
    $newEmployee = false;
    
    // Loop on each line of employee-duty
    foreach ($result as $row)
    {
        // Check if we have to add a new employee
        if ($employeeId == false || $row['id'] != $employeeId)
        {
            // Store previous employee if exists
            if ($newEmployee != false)
                $employers[] = $newEmployee;
    
            // Create new employee
            $newEmployee = array(
                'id' => $row['id'],
                'name' => $row['name'],
                'city' => $row['city'],
                'state' => $row['state'],
                'started' => $row['started'],
                'ended' => $row['ended'],
                'title' => $row['title'],
                'duty' => array()
            );
    
            // Set the new employee ID
            $employeeId = $row['id'];
        }
    
        // In all case, add the duty
        $newEmployee['duty'][] = $row['duty'];
    }
    
    // Save the last employee that will not be saved in the loop
    if ($newEmployee != false)
        $employers[] = $newEmployee;
    

    At the end of this code, you will have all employee (unique) with all duties in the duty entry.

    Important: Another solution will be to modify your SQL query, and use a group by and aggregate functions to do the stuff on the SQL server side. This will simplify the code in the PHP side.

    good luck.

    share|improve this answer

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