我目前正在尝试通过PHP执行存储过程(两个INSERTS和一个SELECT)。存储过程有效(不会抛出任何错误)。甚至将值插入给定的表中。我们将结果存储在JSON对象中,但它返回一个空数组。当我们执行仅包含SELECT的存储过程时,它返回正确的值。我们的表中已经更改了所有名称(可能已经错过了一些但我们的代码运行)。任何人都可以解释为什么我们的阵列没有填充?
这是我们的存储过程
ALTER procedure
As
BEGIN
INSERT INTO TABLE1
(Loan_ID, Doc_ID, Borrower_Name, Docs_Drawn, Funder, First_Payment, Interest_Rate, Loan_Amount)
Select Loan_ID,
(SELECT (COUNT(*)) FROM TABLE WHERE A.Loan_ID = Loan_ID) AS Doc_ID,
Borrower ,[Date_Docs_Drawn]
,[Funder]
,[Payment_Date]
,[Interest_Rate]
,[Loan_Amount] from VIEW A
INSERT INTO TABLE2
(Loan_ID, Submitted_By, Event_Class, Event_Type, Event_Date, Doc_ID)
SELECT A.[Loan_ID],
'Program' AS Submitted_By
,'Collateral' AS Event_Class
, 'Outstanding' AS Event_Type
, CURRENT_TIMESTAMP AS Event_Date
, Doc_ID
FROM TABLE1 AS A
WHERE NOT (A.Loan_ID = ANY (SELECT Loan_ID FROM TABLE2))
SELECT [Loan_ID],[Doc_ID],[Borrower_Name]
,[Funder]
,[Docs_Drawn]
,[First_Payment]
,[Loan_Amount]
,[Interest_Rate]
FROM TABLE1
WHERE Loan_ID <> ALL
(SELECT Loan_ID FROM TABLE2
WHERE Event_Type <> 'Outstanding')
ORDER BY Funder
END
这是我们PHP的粗略草图
$query = "exec storedProcedure";
$result=sqlsrv_query($conn, $query);
$table = array();
while($row = sqlsrv_fetch_array($result)) {
$table[] = $row;
}
echo json_encode($table);
答案 0 :(得分:2)
尝试在存储过程中使用SET NOCOUNT ON。您可能受到从SQL Server PHP驱动程序返回到PHP的结果的限制,因此您无法从SELECT语句中获取数据。