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I want to have multiple linked list in a SQL table, using MySQL and SQLAlchemy (0.7). All lists with it's first node with parent being 0, and ends with child being 0. The id represents the list, and not the indevidiual element. The element is identified by PK

With some omitted syntax (not relevant to the problem) it should look something like this:

id(INT, PK)
content (TEXT)
parent(INT, FK(id), PK)
child(INT, FK(id), PK)

As the table has multiple linked lists how can return the entire list from the database I select a specific ID and parent is 0?

For example:

SELECT * FROM ... WHERE id = 3 AND parent = 0   
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I don't understand. Is id the unique identifier of one particular linked list, or of one particular element? And what would you like to extract: All elements of a list? Or all elements of a list in the correct order? –  jogojapan Mar 7 '12 at 10:58
    
The is is unique to the element, I'll update the question to reflect this. –  Chrizmo Mar 7 '12 at 11:00
    
In retrospecr; that was a bad idea so the ID identities the entire list. –  Chrizmo Mar 7 '12 at 11:07
    
Right, and then extracting the entire list is trivial, isn't it? You just do SELECT * FROM table WHERE id = 3;, no? That would give you the elements in random order. Putting them in order would be more difficult, though. I guess it would involve issuing one SQL query for every element, each time setting id to whatever the child field of the previous element contained. –  jogojapan Mar 7 '12 at 11:46
    
You raise a good point, I could SELECT * FROM table WHERE... put it in a dict and traverse it sort of recursively. Then the order of the items wouldn't matter. –  Chrizmo Mar 7 '12 at 12:01

1 Answer 1

Given that you have multiple linked lists stored in the same table, I assume that you store either the HEAD and/or the TAIL of those in some other tables. Few ideas:

1) Keep the linked list: The first big improvement (also proposed in the comments) from the data-querying perspective would be to have some common identifier (lets call it ListID) of all the nodes in the same list. Here there are few options:

  • If each list is referenced only from one object (data row) [I would even phrase the question like "Does the list belong to a single object?], then this ListID could simply be the (primary) identifier of the holder object with the ForeignKey on top to ensure data integrity. In this case, querying all list is very simple. In fact, you can define the relationship and navigate it like my_object.my_list_items.
  • If the list is used/referenced by multiple objects, then one could create another table which will consist only of one column ListID (PK), and each Node/Item will again have a ForeignKey to it, or something similar
  • Else, large lists can be loaded in two queries/SQL statements:
    1. query the HEAD/TAIL by its ID
    2. query the whole list based on received ListID of the HEAD/TAIL
      In fact, this can be done with one query like the one below (Single-query example), which is more efficient from the IO perspective, but doing it in two steps has the advantage that you immediately have a reference to the HEAD (or TAIL) node.

Single-query example:

# single-query using join (not tested)
Head = alias(Node)
qry = session.query(Node).join(Head, Node.ListID == Head.ListID).filter(Head.ID == head_node_id)

Iin any case, in order to traverse the linked list, you would have to get the HEAD/TAIL by its ID, then traverse as usual.
Note: Here I am not certain if SA would recognize that the reference objects are already loaded into session, or will issue other SQL statements for each of these, which will defeat the purpose of bulk loading.


2) Replace linked list with Ordering List extension:
Please read the Ordering List documentation. It well might be that Ordering List implementation will be good enough for you to use instead of the linked list

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Thanks for the feedback, after my conversation @jogojapan earlier I changed the the each list element is identified. When it comes to HEADS and TAILS this is 0 which is immutable and in the same table. The way lists are identified is like how you purposed with separate table containing this information that I've called meta. Seems like we've had similar ideas. –  Chrizmo Mar 9 '12 at 9:18
    
@Chrizmo: do you have a row in this table with the PK=0? Or you do not enforce ForeignKey constraints? –  van Mar 9 '12 at 9:27
    
I enforce ForeignKey constraints and I have PK=0. –  Chrizmo Mar 9 '12 at 10:13

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