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I use simple php MVC Framework, with simple CRUD Models.

Any methods can be added in models, so I can add complex methods with join sql-logic, but I'd like to try just CRUD methods, without joins.

So, for example, I want to add feature of adding photos to users' profiles.

I suggest 2 (+1) = 3 variations:

1. Keeping photos' ids in users table:

User model, and users table:

id | login | email | photos |

  • photos is array of photos' ids.

Photo model and photos table:

id | src

  • in photos table we keep only id and src of picture, and do not know whose picture it is

2. Keeping users' id in photos tables (as id of the user whose photo it is)

Model User and users table:

id | login | email

  • no information about photos is in this table

Model Photo and photos table:

id | src | user_id

  • information of user who owned this photo is kept so, if a user has 3 photos, there will be 3 records in this table

3. 3 tables way:

Table users

id | login | email (* no information about photos in this table)

Table photos

id | src (* no information about whose photo is)

Table user-photo

id | user_id | photo_id (* table of relations of photos)

I think, that the second way is simplier, because we shouldn't parse SQL arrays, it's just simple CRUD action.

But is the first way faster? In first way, when we want to fetch user's information, we know the ids of photos, and get photos from photos table by id - primary key. But in the second way, we get photos from photos table by user_id - not a primary key, so it should be slower.

What do you recommend? May be there is absolutely another solution for such a problem?

P.S. Sorry for messy explanation, I haven't asked questions in English for a while, so you are welcome to correct my bad English ;)

UPDATE: I've added the third variation. Is it the best?

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If you started with a single, big, ugly table with every column in it, then normalized it to 5NF, what would it look like? –  Mike Sherrill 'Cat Recall' Apr 15 '12 at 22:05
    
2 Catcall, sorry, but I do not understand, what do you mean? I know what is the fifth normal form, but do you mean I should normalize my structure to 5nf? –  Innuendo Apr 15 '12 at 22:58
1  
I mean, if you start with a single table that contains every attribute, then normalize to 5NF, what tables do you end up with? You said, "I didn't asked questions in English for a while, so you are welcome for correcting my bad English"; it should be "I haven't asked questions in English for a while, so you are welcome to correct my English." (And your English is really pretty good.) –  Mike Sherrill 'Cat Recall' Apr 15 '12 at 23:29
    
@Catcall. So, may be, I will end up with 3 tables: users, photos, user-photo-relations, won't I? And the third table contain a row for a user-photo relation (without arrays I mean). So, keeping relation in separate table is better than adding extra row in either users or photos table? P.S. Thank you, I've corrected those English mistakes. –  Innuendo Apr 15 '12 at 23:58
1  
@Innuendo: If you know what normal form is, you will not use first approach. It is horrible. Second seems better. –  LukLed Apr 16 '12 at 0:02

1 Answer 1

up vote 1 down vote accepted

Well, as you already seem to know, do not use the first option, it doesn't play well with SQL.

Between options 2 and 3, consider the following:

  • If each picture is only related to a single user, option 2 is good enough. Option 3 just adds unnecessary complexity.

  • If each picture can be related to more than one user, then you have to use option 3.

So, as far as I can tell, you're looking for option 2.

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