substring_index套娃解决
select age, count(age) FROM (select substring_index(substring_index(profile,',',-2),',',1) "age" from user_submit) t group by age order by age desc
select age, count(age) FROM (select substring_index(substring_index(profile,',',-2),',',1) "age" from user_submit) t group by age order by age desc
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