テーブル作成
create table integers (i integer NOT NULL PRIMARY KEY);
データ投入
insert into integers (i) values (0);
insert into integers (i) values (1);
insert into integers (i) values (2);
insert into integers (i) values (3);
insert into integers (i) values (4);
insert into integers (i) values (5);
insert into integers (i) values (6);
insert into integers (i) values (7);
insert into integers (i) values (8);
insert into integers (i) values (9);
とりあえず連続した2桁の整数データを30個生成してみる
select 10*t.i+u.i as days
From integers as u
CROSS JOIN integers as t
WHERE
10*t.i+u.i BETWEEN 0 AND 29
order
by days
とりあえず連続した3桁を90個にしてみる
select 100*t.i+10*t.i+u.i as days
From integers as u
CROSS JOIN integers as t
WHERE
10*t.i+10*t.i+u.i BETWEEN 0 AND 89order
by days
2007-01-01から連続した日付を31日分取得する
select to_date('2007-01-01','YYYY-MM-DD')+10*t.i+u.i as days
From integers as u
CROSS JOIN integers as t
WHERE
10*t.i+u.i BETWEEN 0 AND 30
order
by days
ふむふむ。PHPで開始日とその月の日数を入れてやればいろいろ使えそうだにゃ(=゚Д゚=))