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Sorry let me revise. I have a three tables:

• EventID
• YearID
• id

• YearID
• Year

• EventID
• EventName
• EventType

i want to dispay a record from the three tables like so:

EventName - Year: Marathon - 2008

i linked it to a table called "members" which contains a ID number field (members-id)

so i can limit the results to members id = $un(which is a username from a session)

I need to join the three tables and limit the results to the specific ID number record

Here is my portion of the code:

$query =    "SELECT * FROM members JOIN events_year ON = ";
            "SELECT * FROM Event JOIN events_year ON Event.EventID = events_year.EventID WHERE username = '$un'";
            "SELECT * FROM Date JOIN events_year ON Date.YearID = events_year.YearID WHERE username = '$un'";

$results = mysql_query($query)
    or die(mysql_error());

    while ($row = mysql_fetch_array($results)) {
    echo $row['Year'];
    echo " - ";
    echo $row['Event'];
    echo "<br>";
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What are the table definitions? –  Mark Byers Sep 23 '11 at 12:04
What did you do to debug this yourself? Did you try printing/logging the contents of $row? –  Mat Sep 23 '11 at 12:04
You can't run three select queries like that –  Flukey Sep 23 '11 at 12:04
Any Help would be appreciated –  SebastianOpperman Sep 23 '11 at 12:05
Why do you title that with "SQL error"? There is no SQL error. –  glglgl Sep 23 '11 at 12:05

3 Answers 3

up vote 4 down vote accepted

the notices are almost self-explaining. There are no 'Year' and 'EventName' fields in the resultset. It's difficult (or: impossible) to tell why this happens as you haven't given your table-structure, but i guess this: 'Year' is a field of the date-table, 'EventName' is a field of the event-table - you're only selecting from members so this fields don't occur.

I don't understand why there are three sql-statements but only one is assigned to a variable - the other two are just standing there and do nothing. Please explain this and put more information into your question about what you're trying to achive, what your table-structure looks like and whats your expected result.

I think what you really wanted to do is some kind of joined query, so please take a look at the documentation to see how this works.

finally, i think your query should look like this:

  events_year ON =
  Event ON Event.EventID = events_year.EventID
  ´Date´ ON ´Date´.YearID = events_year.YearID
  members.username = '$un'
share|improve this answer
I am surprised you can have a table called 'Date' I thought this was a reserved word in MySQL. –  Flukey Sep 23 '11 at 12:19
edit: oh it appears you can. TIL. Although, I wouldn't recommend this as a good practice. –  Flukey Sep 23 '11 at 12:20

Does the field 'Year' exist in the query output ? I suspect not.

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Also you say in your title you are joining tables. You should perhaps do a little research on that because a 'join' might not be what you think it is. The 'join' keyword in your sql statements is important. –  Hugh Jones Sep 23 '11 at 12:09

the string $query is only using the first line of text:

    "SELECT * FROM members JOIN events_year ON = ";

and not the others.

The query itself is not returning any fields that are called Year or EventName.

Do a var_dump($row) to find out what is being returned.

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