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mysql count 为null时,显示0

魏N来 人气:0

mysql count 为null时,显示0

1.使用ifnull

ifnull(字段名,目标值)

SELECT a.*,IFNULL(r.count,0) from (SELECT act_id,poster_id,type,style_type,status,status_time,title,content,images,start_time,end_time,district_id,address,lon_map,lat_map,person_num,person_name,person_phone,person_wx_id,reward_min,reward_max,cost_type,meal_svc,taxi_svc,hair_length,hair_handle,remark,is_over,create_time,note 
FROM activity WHERE poster_id = 3055808629673784641 ORDER BY create_time DESC limit 0,20) a LEFT JOIN (SELECT count(1) count,act_id
                            FROM activity_user u
                            where  u.user_status in ('YBM', 'YTG', 'YQR')
                            GROUP BY u.act_id) r on a.act_id = r.act_id

2.运行结果

mysql让count为0的记录也显示出来

在mysql 下执行如下命令

select use_city,count(*) from data where os="Windows 2003 Std" group by use_city;

得到的结果为:

+-----------+----------+
| use_city | count(*) |
+-----------+----------+
| Beijing | 2 |
| Chengdu | 2 |
| Chongqing | 1 |
| Dalian | 2 |
| Fuzhou | 2 |
| Guangzhou | 2 |
| Hangzhou | 2 |
| Nanjing | 2 |
| Shanghai | 21 |
| Shenyang | 5 |
| Wuhan | 1 |
+-----------+----------+
11 rows in set (0.01 sec)

共有11条记录,问题是其中有一个城市“Tianjing”是没有记录符合的,怎么让他显示成

+-----------+----------+
| use_city | count(*) |
+-----------+----------+
| Beijing | 2 |
| Chengdu | 2 |
| Chongqing | 1 |
| Dalian | 2 |
| Fuzhou | 2 |
| Guangzhou | 2 |
| Hangzhou | 2 |
| Nanjing | 2 |
| Shanghai | 21 |
| Tianjing | 0 |
| Shenyang | 5 |
| Wuhan | 1 |
+-----------+----------+

让它count为0的记录也显示出来,做法如下:

SELECT
use_city,
COUNT(CASE WHEN os='Windows 2003 Std' THEN 1 ELSE NULL END)
FROM
data
GROUP BY
use_city

以上为个人经验,希望能给大家一个参考,也希望大家多多支持。 

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