假如一个事物在A状态时时间是a,在B状态时时间是b,在C状态时时间是c,按顺序流下来有A,B,C3个状态现在怎么判断(b-a)或(c-a)等的时间大于多少个工作日,工作日就是周一到周五,不包括周六周日,怎么写过程或函数啊,痛苦,新手求教?
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存储过程,请参考:
- SQL code
CREATE OR REPLACE FUNCTION APPS.SGDF_WORK_DAY( START_DATE IN DATE ,END_DATE IN DATE ) RETURN NUMBER IS DAY_COUNT NUMBER :=0 ; BEGINDECLARE V_DAy NUMBER :=0; v_start_date date ;beginv_start_date:=start_date ;while v_start_date <= end_date loopSELECT TO_CHAR(v_start_date,'D') INTO V_DAY FROM DUAL;IF (V_DAY!='1') and (v_day!='7') THENDAY_COUNT := DAY_COUNT +1 ;END IF ; v_start_date :=v_start_date + 1 ;end loop;RETURN(DAY_COUNT);EXCEPTION WHEN NO_DATA_FOUND THENRETURN '0';end; END ;
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给个列子
- SQL code
DECLARE v_date char(8);v_int int;v_sum int;v_sql varchar2(200);beginv_date := '20120201';v_sum := 0;while (to_date('20120207','yyyymmdd')-to_date(v_date,'yyyymmdd')>0)loop v_sql :='select to_char(to_date('''||v_date||''',''yyyymmdd''),''D'') from dual';execute immediate v_sql into v_int;if v_int <>7 and v_int <>1 thenv_sum := v_sum+1;end if; v_date := to_char(to_date(v_date,'yyyymmdd')+1,'yyyymmdd');end loop;dbms_output.put_line(v_sum);end;