sqlite删除与当前时间差值在10秒以上的记录,sqlite当前时间
sqlite> delete from test1 where julianday('now')*86400 -julianday(a_date)*
86400>10;sqlite的最小时间差的单位是天,当然是小数类型的,不是整型的,所以可以乘以86400(=24*3600)来计算相差的秒数
sqlite> select julianday('2016-05-31') - julianday('2016-06-01');
-1.0
sqlite> select julianday('2016-05-31') - julianday('2016-06-02');
-2.0
sqlite> select julianday('2016-06-11') - julianday('2016-06-02');
9.0
sqlite> select julianday('2016-06-01 13:00:00') - julianday('2016-06-01 12:00:
00');
0.0416666665114462
sqlite> select julianday('2016-06-01 12:00:20') - julianday('2016-06-01 12:00:
00');
0.000231481622904539
sqlite> select * from test1 order by a_date;
2016-04-23 17:43:35
2016-04-31 17:40:35
2016-05-26 19:40:35
2016-05-29 19:40:35
2016-05-30 19:40:35
2016-05-31 17:30:00
2016-05-31 17:30:01
2016-05-31 17:30:02
2016-05-31 17:30:03
2016-05-31 17:30:05
2016-05-31 17:30:15
2016-05-31 17:30:35
2016-05-31 17:40:35
2016-05-31 17:40:35
2016-05-31 19:40:35
2016-06-01 19:40:35
2016-12-01 19:40:35
sqlite> select * from test1 where julianday('now') -julianday(a_date)>1;
2016-05-26 19:40:35
2016-05-29 19:40:35
2016-04-31 17:40:35
2016-04-23 17:43:35
sqlite> select * from test1 where julianday('now')*86400 -julianday(a_date)
*86400>10;
2016-05-30 19:40:35
2016-05-26 19:40:35
2016-05-29 19:40:35
2016-04-31 17:40:35
2016-04-23 17:43:35
sqlite> delete from test1 where julianday('now')*86400 -julianday(a_date)*
86400>10;
sqlite> select * from test1 order by a_date;
2016-05-31 17:30:00
2016-05-31 17:30:01
2016-05-31 17:30:02
2016-05-31 17:30:03
2016-05-31 17:30:05
2016-05-31 17:30:15
2016-05-31 17:30:35
2016-05-31 17:40:35
2016-05-31 17:40:35
2016-05-31 19:40:35
2016-06-01 19:40:35
2016-12-01 19:40:35
sqlite>sqlite> create table test1(a_date date);有一点很重要:在真机上测试,无法这样删除记录!!!!!!!!!
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