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I´m reading Kevin Yank´s book "PHP and MySQL Novice to Ninja 5th edition", and found an error there in the code, and would like someone to help me out with it, maybe is a silly typo...?

I´m trying to follow the author´s example of creating and accessing a database of jokes. I´m learning how to join two databases to show with php a list of all the jokes. I have two databases joke and author. I´ve got this:

try{ 
    $sql = 'SELECT joke.id, joketext, jokedate, name, email
    FROM joke INNER JOIN author
    ON authorid = author.id';
    $result = $pdo->query($sql);
}
catch (PDOException $e)
{
    $error = 'Error: ' . $e->getMessage();
    include 'error.html.php';
    exit();
}

foreach ($result as $row)
{
    $jokes[] = array(
    'id' => $row['id'], 
    'text' => $row['joketext'], 
    'date' => $row['jokedate'],
    'name' => $row['name'],
    'email' => $row['email']
    );
}
include 'jokes.html.php';

Now, all was working ok, until I´ve replaced the simple code to select the database information from just one table, to the INNER JOIN code. This is the book´s code, wich I´ve followed.

In the jokes.html.php file, I´ve got this (wich I think is what´s giving me the error):

    foreach($jokes as $joke): 
      <form action="?deletejoke" method="post">
  <?php 
      echo 'id. ';
  echo htmlspecialchars($joke['id'], ENT_QUOTES, 'UTF-8');
  echo htmlspecialchars($joke['date'], ENT_QUOTES, 'UTF-8');
  echo htmlspecialchars($joke['text'], ENT_QUOTES, 'UTF-8'); 
  echo htmlspecialchars($joke['name'], ENT_QUOTES, 'UTF-8');
      echo htmlspecialchars($joke['email'], ENT_QUOTES, 'UTF-8');
  ?>
  <input type="hidden" name="id" value="<?php echo $joke['id'];?>">
  <input type="submit" value="Borrar">
  ?>
  <br></form>
<?php endforeach; ?>

Now, the error that throws me is:

Notice: Undefined variable: jokes in C:\xampp\htdocs\workspace1\jokes.html.php on line 10

Warning: Invalid argument supplied for foreach() in C:\xampp\htdocs\workspace1\jokes.html.php on line 10

Line 10 of jokes.html.php is:

foreach($jokes as $joke):

I´m trying to get more information about foreach() but I can´t spot the error... If anyone could help me out a bit (or maybe a clue!) I would be very grateful. Thanks!!! Rosamunda

UPDATE:

As the result of the query (trying it directely from phpmyadmin) was zero, so there were no database results for that query. I´ve decided to manually add one result doing this:

INSERT INTO joke SET
joketext = 'this is a new joke....',
jokedate = '2012-01-01',
authorid = 1;

Now, the errors have dissapear, and that single results does show.

What I don´t understand is:

Why didn´t just no result showed up, instead of those errors?

How do you manage these situations? I mean, it can happen that a query just have no results at all, is it common to result in those errors?

One of your helpful comments says that $result is empty... so why when the query isn´t zero those errors won´t show up?

Thanks again for your help!!! Rosamunda

share|improve this question
1  
Can you run the SQL straight in the database, and see if it works? –  andrewsi Jul 11 '12 at 14:26
1  
What is the output if you run print_r($jokes); right after your foreach ($result as $row) loop? –  Andrew Jul 11 '12 at 14:29
1  
Try echoing the SQL and then copying/pasting into the database to see what the resultset looks like. –  Pete Jul 11 '12 at 14:29
1  
This might not solve the problem but try giving aliases to your tables like SELECT joke.id, joketext, jokedate, name, email FROM joke j INNER JOIN author a ON j.authorid = a.id –  Karthik Jul 11 '12 at 14:31
1  
It sounds like $result is empty. Just before your foreach($result... loop, print_r($result); ... You are never initializing the $jokes array, and if your query result is empty, it will never be set, thus the notice that you're getting. –  dleiftah Jul 11 '12 at 18:02

1 Answer 1

up vote 1 down vote accepted

I´ve found the answer in a SitePoint forum (the Book´s forum), and I thought that it would be nice to post the question here, just in case anyone wonders, or just in case anyone out there happens to have the same problem.

It is because of your php settings to show Notices and Warnings. The notice/warning is valid because you were attempting to use the $jokes variable before you declared/assigned a value to it. You can solve this by putting $jokes = array(); before PHP Code:

foreach ($result as $row) 
{ 
    $jokes[] = array( 
    'id' => $row['id'],  
    'text' => $row['joketext'],  
    'date' => $row['jokedate'], 
    'name' => $row['name'], 
    'email' => $row['email'] 
    ); 
}  

That will at least declare the $jokes variable for in the event that there are zero results.

So, I think the conclusion (please correct me if I´m wrong here!) is that you should always declare any variable that you pretend to use, just in case it happens to have no results. Because if it is empty it will show a nasty error message that will freak you out.

And to declare a variable you use $variablename = array().

share|improve this answer
    
This would cause a warning, not an error. –  Cole Johnson Jul 12 '12 at 0:40
    
Yes, the error was a "warning" and a "notice". –  Rosamunda Jul 13 '12 at 12:11

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