我有3张桌子:
tb_document
============================
|document_id|document_title|
============================
| 1 | A |
| 2 | B |
| 3 | C |
============================
tb_wrapper_scho tb_wrapper_li
============================= =============================
|id_scho|data_title|doc_name| |id_sli |data_title|doc_name|
============================= =============================
| 1 | TitleA | A | | 1 | TitleB | B |
| 2 | TitleC | C | =============================
=============================
我想从data_title和tb_wrapper_scho tb_wrapper_li获得doc_name document_title tb_document $title SELECT
tb_document.document_title,
tb_wrapper_scho.data_title,
tb_wrapper_scho.doc_name,
tb_wrapper_li.data_title,
tb_wrapper_li.doc_name
FROM
INNER JOIN tb_wrapper_scho ON tb_document.document_title = tb_wrapper_scho.doc_name
INNER JOIN tb_wrapper_li ON tb_document.document_title = tb_wrapper_li.doc_name
WHERE
document_id = '$doc_id'
while ($row = mysql_fetch_array($sql)) {
$title = $row['data_title'];
print_r($title);
}
{{1}} }
这是查询:
{{1}}
{{1}}
它给我空白的结果。请帮帮我..谢谢:)
答案 0 :(得分:0)
您缺少tb_document子句中的FROM表。试试这个:
SELECT
d.document_title,
s.data_title,
s.doc_name,
i.data_title,
i.doc_name
FROM tb_document d
INNER JOIN tb_wrapper_scho s ON d.document_title = s.doc_name
INNER JOIN tb_wrapper_li i ON d.document_title =i.doc_name
WHERE
document_id = '$doc_id'
答案 1 :(得分:0)
SELECT
tb_document.document_title,
tb_wrapper_scho.data_title,
tb_wrapper_scho.doc_name,
tb_wrapper_li.data_title,
tb_wrapper_li.doc_name
FROM tb_document
left outer JOIN tb_wrapper_scho ON tb_document.document_title = tb_wrapper_scho.doc_name
left outer JOIN tb_wrapper_li ON tb_document.document_title = tb_wrapper_li.doc_name
WHERE
document_id = '$doc_id'
答案 2 :(得分:0)
我知道,你喜欢它吗?
SELECT * FROM
(SELECT * FROM tb_document as tbDoc INNER JOIN tb_wrapper_scho as tbScho
ON tbDoc.document_title = tbScho.doc_name
UNION
SELECT * FROM tb_document as tbDoc INNER JOIN tb_wrapper_li as tblI
ON tbDoc.document_title = tblI.doc_name)threeTableJoin ORDER BY `document_id` ASC
答案 3 :(得分:0)
由于您的表包含具有相同名称的列,因此在使用别名检索数据时,您必须将列名更改为不同的名称。因此结果数组必须包含每个值的唯一索引。所以你的查询必须是
SELECT
d.document_title as document_title,
s.data_title as scho_data_title,
s.doc_name as scho_doc_name,
li.data_title as li_data_title,
li.doc_name as li_data_name
FROM
tb_document d
LEFT JOIN tb_wrapper_scho s ON d.document_title = s.doc_name
LEFT JOIN tb_wrapper_li li ON li.doc_name = d.document_title
WHERE
d.document_id = '$doc_id'
答案 4 :(得分:0)
SELECT
tb_document.document_title,
tb_wrapper_scho.data_title,
tb_wrapper_scho.doc_name,
tb_wrapper_li.data_title,
tb_wrapper_li.doc_name
FROM tb_document AS tb_document
LEFT JOIN tb_wrapper_scho AS tb_wrapper_scho ON (tb_wrapper_scho.doc_name=tb_document.document_title)
LEFT JOIN tb_wrapper_li AS tb_wrapper_li ON (tb_wrapper_li.doc_name=tb_document.document_title)
WHERE tb_document.document_id = intval($doc_id);
有什么好处吗?
你也可以查看mysql_query的结果,mysql_fetch_array()应该返回TRUE。