mysql - sql 找出2個數據庫的差異表名
問題描述
同一個數據庫,本地51張表和遠程49張表,有差異數據表。如何通過一條SQL來快速找出這些表的名字。
SQL:
USE performance_schema;SELECT t1.OBJECT_SCHEMA,t1.OBJECT_NAME,t2.OBJECT_SCHEMA,t2.OBJECT_NAMEFROM `table_io_waits_summary_by_table` t1 RIGHT JOIN `table_io_waits_summary_by_table` t2 ON t1.OBJECT_NAME = t2.OBJECT_NAMEWHERE t1.OBJECT_SCHEMA=’db1_local’ AND t2.OBJECT_SCHEMA=’db2_remote’;
結果集只有49張,無法羅列出差異的表明。使用了 LEFT OUTER JOIN 還是一樣。
驗證是存在差異的:
SELECT OBJECT_NAMEFROM table_io_waits_summary_by_table WHERE OBJECT_SCHEMA=’db1_local’ AND OBJECT_NAME NOT IN (SELECT OBJECT_NAME FROM table_io_waits_summary_by_table WHERE OBJECT_SCHEMA=’db2_remote’ )
問題解答
回答1:試試這個:
USE performance_schema;SELECT t1.*FROM `table_io_waits_summary_by_table` t1 LEFT JOIN `table_io_waits_summary_by_table` t2 ON t1.OBJECT_NAME = t2.OBJECT_NAME AND t2.OBJECT_SCHEMA=’db2_remote’WHERE t1.OBJECT_SCHEMA=’db1_local’ AND t2.OBJECT_NAME IS NULL;
其實你的第一個SQL只要將對t2的限制提到連接條件中就行了,將t2.OBJECT_SCHEMA=’db2_remote’寫在where條件里面RIGHT JOIN就變成了INNER JOIN ~
相關文章:
1. javascript - sublime快鍵鍵問題2. javascript - immutable配合react提升性能?3. css - 寫頁面遇到個布局問題,求大佬們幫解答,在線等,急!~4. javascript - nodejs關于進程間發送句柄的一點疑問5. Apache 已經把網站根目錄的改為allow from all了,但是服務器還是不能訪問?6. 實現bing搜索工具urlAPI提交7. 配置Apache時,添加對PHP的支持時語法錯誤8. vue.js - Vue 如何像Angular.js watch 一樣監聽數據變化9. javascript - 移動端上不能實現拖拽布局嗎?10. phpstudy8.1支持win11系統嗎?
網公網安備