select device_id,char_length(nick_name)-position("cba" in reverse(nick_name))-1 last_idx,mid(nick_name,length(nick_name)-position("cba" in reverse(nick_name))-1,100) check_str
from user_submit
where position("cba" in reverse(nick_name))!=0
order by device_id desc

position (str in strlist) 可以找出str在strlist的第一个位置 如果没有 返回0

reserve 对字符串进行逆转