3

Question:

How to make a custom range type using time (or time with tz) as a base? What I have so far:

create time timerange as range (
    subtype = time,
    subtype_diff = ??? )

I think subtype_diff needs a function. For time types in pg, the minus function (difference) should work, but I can't seem to find the documentation that describes the correct syntax.

Background:

I am trying to make a scheduling app, where a service supplier would be able to show their availability and fees for different times of day, and a customer could see the price and book in real-time. The service supplier needs to be able to set different prices for different days or times of day. For example, a plumber might want, for a one hour visit:

  • $100 monday 0900-1800
  • $200 monday 1800-2200
  • $500 monday 2200-0000

To support this, the solution I am working on is as follows (any thoughts on better ways of doing this gratefully received)

I want to make a table that contains 'fee_rules'. I want to be able to lookup a given date, time and duration, and be able to check the associated fee based on a set of fee rules based on ranges. My proposed table schema:

  • id sequence
  • day_of_week integer [where 0 = Sunday, 1 = Monday..]
  • time_range [I want to make a custom time-range using only
    hours:minutes of the day]
  • fee integer
  • fee_schedule_id (foreign key) (reference to a specific supplier, who is the 'owner' of that specific fee rule)

An example of a fee rule would be as follows:

id     day_of_week    time_range     fee   fee_schedule_id

12     01              10:00-18:00   100   543

For a given date, I plan to calculate day_of_week (e.g. day_of_week=01 for 'Monday') and generate a time_range based on the start_time and duration of the proposed visit e.g. visit_range=10:00-11:00. I want to be able to search using postgresql's range operators, e.g.

  select fee where day_of_week = '01' and visit_range <@ (range is contained by)time_range and fee_schedule_id = 543 [reference to the specific supplier's fees]
3

1 Answer 1

6

per @a_horse_with_no_name and @pozs "I don't think you need the subtype_diff":

create type timerange as range (subtype = time);

create table schedule 
(
  id integer not null primary key,
  time_range timerange
);

insert into schedule 
values
(1, timerange(time '08:00', time '10:00', '[]')),
(2, timerange(time '10:00', time '12:00', '[]'));

select *
from schedule
where time_range @> time '09:00'

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.