Oracle 正则表达式从上次出现拆分字符串 [英] Oracle regular expression split string from last occurence

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问题描述

我还在学习oracle中的正则表达式我卡在中间,下面是我的示例代码:

I am still learning regexp in oracle I am stuck in middle, below is my sample code:

with t(val)
as
(
  --format: xyz_year_month_date
  select 'my_new_table_2015_06_31' from dual
  union all
  select 'my_new_table_temp_2016_06_31' from dual
 )
 select reverse(regexp_substr(reverse(val),'[^_]+',1,4)) col4,
 reverse(regexp_substr(reverse(val),'[^_]+',1,3)) col3,
 reverse(regexp_substr(reverse(val),'[^_]+',1,2)) col2,
 reverse(regexp_substr(reverse(val),'[^_]+',1,1)) col1
 from t;

Output:
COL4 COL3 COL2 COL1
table 2015 06 31
temp 2016 06 31

Expected output:
COL4 COL3 COL2 COL1
my_new_table 2015 06 31
my_new_table_temp 2016 06 31

提前致谢.

推荐答案

你可以通过提取不同的捕获组(用圆括号 () 括起来)来做到这一点:

You can do it without the double reverse by extracting different capture groups (surrounded in round () brackets):

WITH t ( VAL ) AS (
  SELECT 'my_new_table_2015_06_31' FROM DUAL UNION ALL
  SELECT 'my_new_table_temp_2016_06_31' FROM DUAL
)
SELECT REGEXP_SUBSTR( val, '^(.*)_([^_]+)_([^_]+)_([^_]+)$', 1, 1, NULL, 1 ) AS COL4,
       REGEXP_SUBSTR( val, '^(.*)_([^_]+)_([^_]+)_([^_]+)$', 1, 1, NULL, 2 ) AS COL3,
       REGEXP_SUBSTR( val, '^(.*)_([^_]+)_([^_]+)_([^_]+)$', 1, 1, NULL, 3 ) AS COL2,
       REGEXP_SUBSTR( val, '^(.*)_([^_]+)_([^_]+)_([^_]+)$', 1, 1, NULL, 4 ) AS COL1
FROM   t

您甚至可以通过使用以下命令来使正则表达式更简单:

You could even make the regular expression much simpler by just using:

'^(.+)_(.+)_(.+)_(.+)$'

第一个 .+ 是贪婪的,所以它会尽可能多地匹配,直到只剩下足够的字符串用于第 2 到第 4 个捕获组的最小匹配.

The first .+ is greedy so it will match as much as possible until there is only enough of the string left for the minimum matches on the 2nd - 4th capturing groups.

但是,您不需要正则表达式:

WITH t ( VAL ) AS (
  SELECT 'my_new_table_2015_06_31' FROM DUAL UNION ALL
  SELECT 'my_new_table_temp_2016_06_31' FROM DUAL
)
SELECT SUBSTR( val, 1,        pos1 - 1        ) AS col4,
       SUBSTR( val, pos1 + 1, pos2 - pos1 - 1 ) AS col3,
       SUBSTR( val, pos2 + 1, pos3 - pos2 - 1 ) AS col2,
       SUBSTR( val, pos3 + 1                  ) AS col1
FROM   (
  SELECT val,
         INSTR( val, '_', -1, 1 ) AS pos3,
         INSTR( val, '_', -1, 2 ) AS pos2,
         INSTR( val, '_', -1, 3 ) AS pos1
  FROM   t
);

这篇关于Oracle 正则表达式从上次出现拆分字符串的文章就介绍到这了,希望我们推荐的答案对大家有所帮助,也希望大家多多支持IT屋!

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