Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a table like this:

+--------+---------------+--------------+---------------+
|   id   |   firstname   |   lastname   |   foods       |
+--------+---------------+--------------+---------------+
|   1    |   James       |   Bonds      |   BBQ         |
|   2    |   James       |   Bonds      |   Hamburger   |
|   3    |   James       |   Bonds      |   Pizza       |
|   4    |   David       |   Smith      |   BBQ         |
|   5    |   David       |   Smith      |   Pizza       |
+--------+---------------+--------------+---------------+

This is my code when inserting to database:

if($_POST["Submit"]=="Submit"){
for ($i=0; $i<sizeof($checkbox);$i++){
$sql="INSERT INTO tbl_info VALUES ('NULL', '$fname','$lname', '".$checkbox[$i]."')";
$result=mysql_query($sql);
 }
}

Or is it possible to make it like this:

+--------+---------------+--------------+---------------+
|   id   |   firstname   |   lastname   |   foods       |
+--------+---------------+--------------+---------------+
|   1    |   James       |   Bonds      |   BBQ         |
|   1    |   James       |   Bonds      |   Hamburger   |
|   1    |   James       |   Bonds      |   Pizza       |
|   2    |   David       |   Smith      |   BBQ         |
|   2    |   David       |   Smith      |   Pizza       |
+--------+---------------+--------------+---------------+

The 'foods' column is a check box value so it came up redundant(if the user selected 10 check box value it will also produce 10 rows with the same first name and so on).

The problem is if I need to alter the information of the user, I have to alter it 1 by 1 and that's so wrong. And if I am going to delete the users information, the training column values should also be deleted all at once.(I must not use implode or explode). I'm sorry. new to php.

Thanks in advance.

share|improve this question

4 Answers 4

You should have three tables:

Person Table (person_id, firstname, lastname)

Food Table (food_id, name)

PersonFood Table (person_id, food_id)

When you are inserting a records, enter the person details to the person table. Have the food details stored in the food table. When a person likes a food, add a record to the PersonFood table which will contain the person_id and the food_id. This way, when a person detail changes you only need to change the record in the person table. When retrieving results you can have a join query.

This type of normalization form is called Third normal form

share|improve this answer
    
I have already done 3 tables and I think I'm stuck in where to put the JOIN statement. this is the statement I going to use: SELECT person.firstname, person.lastname, food.name FROM personfood JOIN person ON personfood.person_id = person.person_id JOIN food ON personfood.food_id = food.food_id –  MAXIMUM Dec 24 '12 at 3:24
    
Your sql query is correct. What is the problem? –  janith Dec 24 '12 at 3:30
    
I've already done this. thanks a lot. but my last problem is when I add new values, nothing happens in the display. others game me this statement: $sql = "INSERT INTO FoodFavorites (person_id, food_id) VALUES ($person_id, $food_id)"; for the 3rd table when I will add new value. but there's an error. undefined variable in $person_id and food_id. –  MAXIMUM Dec 24 '12 at 5:40

I'd have a FOOD table with items. If a PERSON can only have one favorite, then a foreign key to FOOD is sufficient. If there can be many favorites, then a JOIN table is needed.

share|improve this answer

This is N:N relationship.

N people exists

N types of food exists

Any person can want any food.

The problem with the table you've written is this:

  1. Lets say you delete James Bonds. Hamburger is now deleted from the table. But Hamburgers still exist but in your table it looks like it doesn't (Understood?)

  2. Lets say I select everyone who likes Pizza and Hamburger. James Bonds name will appear twice which is wrong because he's one person

.... I could go on pointing out methods with the concept you've described above.

How to normalize it

You should have 3 tables

Person (person_id, firstname, lastname)

Food (food_id, name)

PersonFood_Join (person_id, food_id)

where (and I hope you know foreign keys)

PersonFood_Join(person_id) is a foreign key to Person(person_id)

Food_Join(food_id) is a foreign key to Food(food_id).

As the food data is static (bunch of checkboxes) its easy to insert them and keep them permanently there.

Adding 1 row per person removes all the anomalies pointed above (note now only one copy of a person's name and one copy of food exists so no duplication)

Here is an article on Normal Forms

share|improve this answer
    
Thank... but now if I add another information, nothing happens in the PersonFood_Join. I think it will an INSERT statement. But I don't know how to do that. thanks in advance –  MAXIMUM Dec 24 '12 at 13:02
    
You have to write 2 insert statements. INSERT into Person. INSERT INTO PersonFood_Join. Use the id generated from the first in the second insert. Though this is more complex its logically better –  Carl Saldanha Dec 24 '12 at 13:20
    
Can you please show the code... because this codes doesn't work and $sql4 = "INSERT INTO PersonFood_Join (food_id) (SELECT food_id FROM Food)";(this code copy the inserted id). It is because I think that the Food table accepts multiple values at the same time which my code can't do. –  MAXIMUM Dec 25 '12 at 2:36

When normalizing tables you need to ask yourself: How many kinds of data am I dealing with?

In this case you have two kinds of data: A person's name, and a food item. It is possible to break it up even further by saying that a person's name consists of a first name and a last name, but for this let us just say that two kinds of data is enough.

So, we need a table for persons, foods and then one table to bring it all together. So, something like this:

Person
+--------+---------------+--------------+
|   id   |   firstname   |   lastname   |
+--------+---------------+--------------+
|   1    |   James       |   Bonds      |
|   2    |   David       |   Smith      |
+--------+---------------+--------------+
Food
+--------+---------------+
|   id   |   name        |
+--------+---------------+
|   1    |   BBQ         |
|   2    |   Hamburger   |
|   3    |   Pizza       |
+--------+---------------+
FoodFavorites
+--------+---------------+--------------+
|   id   |   person_id   |   food_id    |
+--------+---------------+--------------+
|   1    |   1           |   1          |
|   2    |   1           |   2          |
|   3    |   1           |   3          |
|   4    |   2           |   1          |
|   5    |   2           |   3          |
+--------+---------------+--------------+

And you can insert new values like this:

$sql = "INSERT INTO FoodFavorites (person_id, food_id) VALUES ($person_id, $food_id)";
share|improve this answer
    
I got error on the the INSERT statement. undefined variable person_id and food_id. –  MAXIMUM Dec 24 '12 at 5:18
1  
What do you think the error means? –  Sverri M. Olsen Dec 24 '12 at 6:46
    
I need to declare that variables with POST or something and their value must come from the id of person table and food table. –  MAXIMUM Dec 24 '12 at 8:46

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.