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'm developing a database structure which consists of assets which travel between a couple of locations. I want to make a reservation system for these assets. If assets don't travel between the different locations it's very easy to get the availability: just check how many reservations for a certain day exists and substract them from the normally available number assets.

available = Normal.Available - already reserved

But the complicating factor is the fact people can travel between different locations. A customer can pick up an asset at Location A and drop it of at Location B. For instance pickup on september 13th 10:00am dropoff at LocB september 13th 13:00.

If I now want to have the available assets at Location B at 13:00 this is the normal available number +1 because of the asset which travelled from A->B. The availability at location A is one less then normal, obviously.

How can I graph these movements in a database structure?
The entities are clear: Assets, locations, bookings and Customers. The difficulty lies within getting the availability at the different locations at different times.

share|improve this question
    
Say each asset is available for 15 reservation per day. this means that you have 15 instances of that asset. Do You maintain each instance individually in asset table or One asset with number of available instances as field in asset table? –  Tassadaque Sep 13 '13 at 20:38
    
We have multiple assets available which can be rented out during the day (or even overnight). Standard we have lets say 3 assets available per location. I don't know what is wise to do. Maybe it's better to have a table with availability per asset. –  stUrb Sep 13 '13 at 20:44
add comment

3 Answers

up vote 2 down vote accepted
assets
    id              unsigned int(P)
    description     varchar(200)

+----+-------------+
| id | description |
+----+-------------+
|  1 | Widget A    |
| .. | ........... |
+----+-------------+

See PHP's crypt() function for hashing the password.

customers
    id              unsigned int(P)
    first_name      varchar(50)
    middle_name     varchar(50) // Allow NULL
    last_name       varchar(50)
    email           varchar(255)
    username        varchar(32)
    password        varbinary(255) // hashed
    ...

+----+------------+-------------+-----------+----------------------------+-----------+----------+-----+
| id | first_name | middle_name | last_name | email                      | username  | password | ... |
+----+------------+-------------+-----------+----------------------------+-----------+----------+-----+
|  1 | John       | Quincy      | Public    | jqp@privacy.com            | johnqball | xxxxxxxx | ... |
|  2 | Jane       | NULL        | Doe       | ladyinred@chrisdeburgh.com | janeykins | xxxxxxxx | ... |
| .. | .......... | ........... | ......... | .......................... | ......... | .......  | ... |
+----+------------+-------------+-----------+----------------------------+-----------+----------+-----+

locations
    id              unsigned int(P)
    description     varchar(200)

+----+-------------+
| id | description |
+----+-------------+
|  1 | Facility A  |
|  2 | Facility B  |
| .. | ........... |
+----+-------------+

reservations
    id              unsigned int(P)
    asset_id        unsigned int(F assets.id)
    customer_id     unsigned int(F customers.id)
    from_id         unsigned int(F locations.id)
    to_id           unsigned int(F locations.id)
    beg             datetime
    end             datetime

+----+-------------+----------+---------+-------+---------------------+---------------------+
| id | customer_id | asset_id | from_id | to_id |         beg         |         end         |
+----+-------------+----------+---------+-------+---------------------+---------------------+
|  1 |           1 |        1 |       1 |     2 | 2013-09-13 03:00:00 | 2013-09-13 14:00:00 |
|  1 |           1 |        1 |       2 |     1 | 2013-09-14 19:00:00 | 2013-09-15 07:00:00 |
|  1 |           1 |        1 |       1 |     2 | 2013-09-15 10:00:00 | 2013-09-15 17:00:00 |
|  1 |           1 |        1 |       2 |     1 | 2013-09-16 08:00:00 | 2013-09-16 13:00:00 |
|  1 |           1 |        1 |       1 |     2 | 2013-09-17 10:00:00 | 2013-09-17 17:00:00 |
| .. | ........... | ........ | ....... | ..... | ................... | ................... |
+----+-------------+----------+---------+-------+---------------------+---------------------+

To find out what's available right now at Facility A:

SELECT DISTINCT asset_id, * FROM reservations
WHERE to_id = 1 AND
    beg > NOW()
ORDER BY beg, end

To find out what's available tomorrow at 15:00 at Facility B:

$target_datetime = '2013-09-14 15:00:00';
SELECT DISTINCT asset_id, * FROM reservations
WHERE to_id = 2 AND
    beg > $target_datetime
ORDER BY beg, end
share|improve this answer
    
Here you have only one reservation per asset he may have many reservation per asset at the same time as I understand –  Tassadaque Sep 13 '13 at 20:53
    
@Tassadaque with the solution of Benny Hill every asset would have an own row in the asset table. –  stUrb Sep 13 '13 at 20:55
1  
@stUrb - I added some data to the reservations table and modified the queries to only return one result. –  Benny Hill Sep 13 '13 at 21:17
1  
@stUrb - I updated the SQL. Sorry about the edits, work keeps interrupting me :-) By adding the DISTINCT I insure we will only see each asset listed once which is what I was thinking when I added the LIMIT (but was obviously wrong!). –  Benny Hill Sep 13 '13 at 21:33
1  
That should do the trick indeed! Thanks for the help! This sounds pretty solid and workable! Thank you. –  stUrb Sep 13 '13 at 21:38
show 4 more comments

What I see is 4 entities to start with : Asset, Location, Customer and Booking. Use Booking to show what time what asset is booked by a customer from one location to another.

share|improve this answer
    
Yeah I normalized those entities already; but the difficulty lies in getting the availability on different times on the different locations. –  stUrb Sep 13 '13 at 20:24
    
@stUrb Just count the number of assets dropped at a location minus the ones picked up from there before the time of interest. –  Terje D. Sep 13 '13 at 20:51
add comment

if you maintaining each asset availability as asset Instance then you may create a table AssetInstances(AssetInstanceID,AssetID)

the reservation table would be

AssetMovement(AssetInstanceID, FromLocationID,ToLocationID,StartMovementTime,EndMovementTime,CustomerID)

Now ToLocation is the current place of instance you can get the location wise instance count based on max(movementtime) group by AssetID ToLocationID will be null in case of asset is in transit

In case you are maintaining one asset per row there is no instance table then AssetMovement table may be like

AssetMovement(AssetID, FromLocationID,ToLocationID,StartMovementTime,EndMovementTime,CustomerID,IsCurrentReservation)

Now if asset is picked by customer from location A IsCurrenReservation will be true and when he drop and location B IsCurrenReservation still remains true. Now say it is again picked from Location B then IsCurrenReservation will be true for this and previous entery's IsCurrenReservation will be false. Now in query with IsCurrenReservation= true will give you the current number of assets per location. and if TolocationID is null and IsCurrentReservation=true will give you number of reservation at any time. This may not be an ideal solution but looks like it will work

share|improve this answer
add comment

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.