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.

A noob question. I'm putting together my first database and have the following design problem: I have a class which defines a book (e.g. it's title) and a class which defines a page (e.g. it's design).

The table for the class book would look so:

Title        | PAGE1        | PAGE2        | PAGE3
Book-One     | SAMPLE1-UUID | SAMPLE2-UUID | SAMPLE3-UUID
Book-Two     | SAMPLE4-UUID | SAMPLE5-UUID | SAMPLE6-UUID

The table for the class page:

UUID         | FONT         | CONTENTS etc.
SAMPLE1-UUID | Times        | Example
SAMPLE2-UUID | Arial        | Example Two
SAMPLE3-UUID | Verdena      | Example Three

Now, as each page is unique and can't be re-used in another book, I can't use a many-to-many relationship for Pages. I could use Foreign-Key to link the two tables, i.e. link SAMPLE1-UUID of the Books Table with the SAMPLE1-UUID of the Pages Table. This has the advantage of not creating the same entry twice.

However, I don't like the idea of having a fixed amount of rows for my pages. In the above example for the class Book, I'd have to define a certain set of Pages, like PAGE1, PAGE2, PAGE3, PAGE4, ... PAGE99. Ideally, all I need is a flexible list of pages for my book class, like so:

Name         | Pages
Book-One     | "SAMPLE1-UUID, SAMPLE2-UUID"
Book-Two     | "SAMPLE4-UUID, SAMPLE5-UUID, SAMPLE6-UUID"

Pages would be a simple CharField and its contents would be a list. But then I have the problem that the two tables are not linked anymore and that I'd have to create each entry twice (i.e. I would have to enter SAMPLE1-UUID in both the pages and books table).

Is there another way to design this database? Thanks for any suggestion!

share|improve this question

3 Answers 3

up vote 5 down vote accepted

I'll suggest you don't have the pages as columns:

The table for the class book would look so with book only information:

Title        | ISBN         
Book-One     | XXXXXXXXXXXX 
Book-Two     | YYYYYYYYYYYY 

The table for the class page:

BOOKID       |PAGE_NUM | FONT         | CONTENTS
1            |1        | Times        | Example
1            |2        | Arial        | Example Two
2            |1        | Verdena      | Example Three

Your class design would look something like:

class Book(models.Model):
    title = models.CharField(max_length=100)
    isbn = models.CharField(max_length=100)

class Page(models.Model):
    book = models.ForeignKey(Book)
    page_num = models.IntegerField()
    font = models.charField(max_length=100)
    content = models.TextField()

You can go ahead and have contraints so that a book and page_num does not repeat for instance but this can be a good start.

share|improve this answer
    
Thanks Keni. My only problem is when I log into my Django Admin interface, I won't see what pages are in each book. Daniel Roseman suggested using my_book.page_set.all() but I'm not sure how this would translate in this case. Can I add this to my admin.py? Regardless of the admin interface, how would you get a list of all pages for the book with the ID 1? Thanks so much for your help, very much appreciated! –  n.evermind Jan 16 '12 at 16:31
1  
@n.evermind admin.StackedInline is what you're looking for. Django documentation –  juliomalegria Jan 16 '12 at 17:07

I would do it like this:

class Book(models.Model):
    name=models.CharField(max_length=....)

class Page(models.Model):
    book=models.ForeignKey(Book)
    number=models.PositiveIntegerField()

I don't understand your book table example: Do you want a column for page1 and an other column for page2? That looks very strange.

share|improve this answer
    
Thanks Guettli. Yes, ideally I would like to have a table which lists all pages and their layout attributes - no matter what book they are in. E.g. if I have two books and each as got 5 pages, my pages table will have 10 entries. Or is this bad data base design too? Thanks for your help! –  n.evermind Jan 16 '12 at 16:21

You've misunderstood how a foreign key works. It's not a "fixed amount of rows" - just the opposite, in fact.

As guettli shows in his answer, a ForeignKey field is a one-to-many relationship, defined on the "many" side. That is, with the ForeignKey defined on Page pointing at Book, each Page has one Book, but a Book has as many Pages as you like.

So, using the Django ORM, if you have a book object and you want to get all its pages, you just do my_book.page_set.all().

share|improve this answer
    
Thanks!! Yes, I messed up the "many" side with the "one" side. How helpful. Makes much more sense now. So in other words, when I enter a book in my database, I don't care about its pages. My only problem now: If I have a look at a book in my django admin database interface, I won't see what pages it has got. Or can I add this via book.page_set.all()? In any case, thanks so much for your help! –  n.evermind Jan 16 '12 at 16:19
1  
For the change form, you can use inline modeladmin to show/edit all pages for a book. –  Daniel Roseman Jan 16 '12 at 16:37

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.