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.

Whats the best way to store a linked list in a mysql database so that inserts are simple (i.e. you dont have to reindex a bunch of stuff every time) and such that the list can easily be pulled out in order.

share|improve this question
    
See also How do I sort a linked list in sql? It provides an example of sorting self-linked table with recursive CTE. –  Vadzim Sep 18 '14 at 9:05

11 Answers 11

up vote 18 down vote accepted

Store an integer column in your table called 'position'. Record a 0 for the first item in your list, a 1 for the second item, etc. Index that column in your database, and when you want to pull your values out, sort by that column.

 alter table linked_list add column position integer not null default 0;
 alter table linked_list add index position_index (position);
 select * from linked_list order by position;

To insert a value at index 3, modify the positions of rows 3 and above, and then insert:

 update linked_list set position = position + 1 where position >= 3;
 insert into linked_list (my_value, position) values ("new value", 3);
share|improve this answer
36  
This doesn't meet the requirement of not having to reindex a bunch of stuff every time you to an insert. If you have a large table and insert at the beginning, you are going to have to touch every record in order to modify it's position field. –  Michael May 10 '12 at 16:44

create a table with two self referencing columns PreviousID and NextID. If the item is the first thing in the list PreviousID will be null, if it is the last, NextID will be null. The SQL will look something like this:

create table tblDummy
{
     PKColumn     int     not null, 
     PreviousID     int     null, 
     DataColumn1     varchar(50)     not null, 
     DataColumn2     varchar(50)     not null,  
     DataColumn3     varchar(50)     not null, 
     DataColumn4     varchar(50)     not null, 
     DataColumn5     varchar(50)     not null, 
     DataColumn6     varchar(50)     not null, 
     DataColumn7     varchar(50)     not null, 
     NextID     int     null
}
share|improve this answer
4  
This was my first crack at a solution, however, it fails for the requirement that it be 'easily pulled out in order'. Our solution is the most like a linked list, but much harder to retrieve in order. –  user7116 Sep 15 '08 at 18:29
    
I think there is no magical solution that both doesn't require updating all the indexes and is easily ordered. It really comes down to how your database is going to be manipulated most often. Will most changes be mid linked-list or will most data be appended to the end. –  Krustal May 26 '13 at 1:38
1  
Why have both PreviousID and NextID? Having only one of them, you can infer the other: foo.previous_id = bar_id => bar.next_id = foo_id. –  Panagiotis Panagi Mar 19 at 9:18

Using Adrian's solution, but instead of incrementing by 1, increment by 10 or even 100. Then insertions can be calculated at half of the difference of what you're inserting between without having to update everything below the insertion. Pick a number large enough to handle your average number of insertions - if its too small then you'll have to fall back to updating all rows with a higher position during an insertion.

share|improve this answer
8  
Reminds me of my days programming BASIC when line numbers were multiples of 10. –  StephenPaulger Feb 9 '11 at 16:48
    
I've seen this done many times with older programs. I think its a good solution. –  Azmisov Aug 28 '12 at 16:50
    
I initially disliked this solution because it seems inelegant. But whatever, its effective and efficient, and frankly pretty clever. It handles insertions and deletions very quickly for the most part, and handles retrieval of the entire list very quickly, too. –  sh1ftst0rm Jul 31 '13 at 12:17

The simplest option would be creating a table with a row per list item, a column for the item position, and columns for other data in the item. Then you can use ORDER BY on the position column to retrieve in the desired order.

create table linked_list
(   list_id   integer not null
,   position  integer not null 
,   data      varchar(100) not null
);
alter table linked_list add primary key ( list_id, position );

To manipulate the list just update the position and then insert/delete records as needed. So to insert an item into list 1 at index 3:

begin transaction;

update linked_list set position = position + 1 where position >= 3 and list_id = 1;

insert into linked_list (list_id, position, data)
values (1, 3, "some data");

commit;

Since operations on the list can require multiple commands (eg an insert will require an INSERT and an UPDATE), ensure you always perform the commands within a transaction.

A variation of this simple option is to have position incrementing by some factor for each item, say 100, so that when you perform an INSERT you don't always need to renumber the position of the following elements. However, this requires a little more effort to work out when to increment the following elements, so you lose simplicity but gain performance if you will have many inserts.

Depending on your requirements other options might appeal, such as:

  • If you want to perform lots of manipulations on the list and not many retrievals you may prefer to have an ID column pointing to the next item in the list, instead of using a position column. Then you need to iterative logic in the retrieval of the list in order to get the items in order. This can be relatively easily implemented in a stored proc.

  • If you have many lists, a quick way to serialise and deserialise your list to text/binary, and you only ever want to store and retrieve the entire list, then store the entire list as a single value in a single column. Probably not what you're asking for here though.

share|improve this answer

A linked list can be stored using recursive pointers in the table. This is very much the same hierarchies are stored in Sql and this is using the recursive association pattern.

You can learn more about it here.

I hope this helps.

share|improve this answer

There are a few approaches I can think of right off, each with differing levels of complexity and flexibility. I'm assuming your goal is to preserve an order in retrieval, rather than requiring storage as an actual linked list.

The simplest method would be to assign an ordinal value to each record in the table (e.g. 1, 2, 3, ...). Then, when you retrieve the records, specify an order-by on the ordinal column to get them back in order.

This approach also allows you to retrieve the records without regard to membership in a list, but allows for membership in only one list, and may require an additional "list id" column to indicate to which list the record belongs.

An slightly more elaborate, but also more flexible approach would be to store information about membership in a list or lists in a separate table. The table would need 3 columns: The list id, the ordinal value, and a foreign key pointer to the data record. Under this approach, the underlying data knows nothing about its membership in lists, and can easily be included in multiple lists.

share|improve this answer

I think its much simpler adding a created column of Datetime type and a position column of int, so now you can have duplicate positions, at the select statement use the order by position, created desc option and your list will be fetched in order.

share|improve this answer
1  
Should write out the SQL statement for this answer. –  Peter Nov 14 '12 at 21:05
2  
This would fail. Insert 2 records between positions n and n+1, you'll have to give both the position n but different time stamps. Now try to insert a third record in between the last inserted two! You can't because the time stamp is bigger than both. –  Basel Shishani Jan 5 '13 at 5:15

This post is old but still going to give my .02$. Updating every record in a table or record set sounds crazy to solve ordering. the amount of indexing also crazy, but it sounds like most have accepted it.

Crazy solution i came up with to reduce updates and indexing is to create two tables (and in most use cases you don's sort all records in just one table anyway). Table A to hold the records of the list being sorted and table B to group and hold a record of the order as a string. the order string represents an array that can be used to order the selected records either on the web server or browser layer of a webpage application.

Create Table A{
Id int primary key identity(1,1),
Data varchar(10) not null
B_Id int
}

Create Table B{
Id int primary key Identity(1,1),
GroupName varchat(10) not null,
Order varchar(max) null
}

The format of the order sting should be id, position and some separator to split() your string by. in the case of jQuery UI the .sortable('serialize') function outputs an order string for you that is POST friendly that includes the id and position of each record in the list.

The real magic is the way you choose to reorder the selected list using the saved ordering string. this will depend on the application you are building. here is an example again from jQuery to reorder the list of items: http://ovisdevelopment.com/oramincite/?p=155

share|improve this answer
    
Can you elaborate more, like an example of what the order be like? and the query to find the first 10 items from it? –  lulalala Apr 17 at 13:50

http://dba.stackexchange.com/questions/46238/linked-list-in-sql-and-trees suggests a trick of using floating-point position column for fast inserts and ordering.

It also mentions specialized SQL Server 2014 hierarchyid feature.

share|improve this answer

This is something I've been trying to figure out for a while myself. The best way I've found so far is to create a single table for the linked list using the following format (this is pseudo code):

LinkedList(

  • key1,
  • information,
  • key2

)

key1 is the starting point. Key2 is a foreign key linking to itself in the next column. So your columns will link something link something like this

col1

  • key1 = 0,
  • information= 'hello'
  • key2 = 1

Key1 is primary key of col1. key2 is a foreign key leading to the key1 of col2

col2

  • key1 = 1,
  • information= 'wassup'
  • key2 = null

key2 from col2 is set to null because it doesn't point to anything

When you first enter a column in for the table, you'll need to make sure key2 is set to null or you'll get an error. After you enter the second column, you can go back and set key2 of the first column to the primary key of the second column.

This makes the best method to enter many entries at a time, then go back and set the foreign keys accordingly (or build a GUI that just does that for you)

Here's some actual code I've prepared (all actual code worked on MSSQL. You may want to do some research for the version of SQL you are using!):

createtable.sql

create table linkedlist00 (

key1 int primary key not null identity(1,1),

info varchar(10),

key2 int

)

register_foreign_key.sql

alter table dbo.linkedlist00

add foreign key (key2) references dbo.linkedlist00(key1)

*I put them into two seperate files, because it has to be done in two steps. MSSQL won't let you do it in one step, because the table doesn't exist yet for the foreign key to reference.

Linked List is especially powerful in one-to-many relationships. So if you've ever wanted to make an array of foreign keys? Well this is one way to do it! You can make a primary table that points to the first column in the linked-list table, and then instead of the "information" field, you can use a foreign key to the desired information table.

Example:

Let's say you have a Bureaucracy that keeps forms.

Let's say they have a table called file cabinet

FileCabinet(

  • Cabinet ID (pk)
  • Files ID (fk) )

each column contains a primary key for the cabinet and a foreign key for the files. These files could be tax forms, health insurance papers, field trip permissions slips etc

Files(

  • Files ID (pk)

  • File ID (fk)

  • Next File ID (fk)

)

this serves as a container for the Files

File(

  • File ID (pk)

  • Information on the file

)

this is the specific file

There may be better ways to do this and there are, depending on your specific needs. The example just illustrates possible usage.

share|improve this answer

A list can be stored by having a column contain the offset (list index position) -- an insert in the middle is then incrementing all above the new parent and then doing an insert.

share|improve this answer

Your Answer

 
discard

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