如何查找相同列表中的电子邮件?
How to find which emails are in the same lists?
我有 11 个表 [email1, email2, email3, ... email11]
<?php
$con = mysql_connect("localhost", "root", "");
$db = mysql_select_db("email-db", $con);
$sql = "SELECT Contact_Email FROM email1, email2, email3, email4, email5";
$result = mysql_query($sql);
while ($row = mysql_fetch_array($result)) {
?>
<tr>
<td><? echo $row['Contact_Email']; ?></td>
<td><? echo '<br>'; ?></td>
</tr>
<? } ?>
我实际上想对所有表中的所有电子邮件执行 select 操作,并在所有表上使用 join。怎么做到的?
MySQL UNION 运算符允许您将来自多个表的两个或多个结果集组合成一个结果集
SELECT Contact_Email FROM email1
UNION
SELECT Contact_Email FROM email2
UNION
SELECT Contact_Email FROM email3
.
.
UNION
SELECT Contact_Email FROM email11
默认情况下,UNION 运算符会从结果中删除重复行,即使您没有明确使用 DISTINCT 运算符也是如此。
自从社区投票决定关闭副本后
这里是 4 个表的示例,如果需要,您可以将其扩展到 11 个。抱歉,但我没有调试这段代码,我想主要障碍是 mysql 从数据库中获取正确值的查询。
而且您绝对应该停止使用 mysql* 功能!
$sql ="SELECT t.Contact_Email,
e1.Contact_Email email1,
e2.Contact_Email email2,
e3.Contact_Email email3,
e4.Contact_Email email4
FROM (
SELECT e.Contact_Email FROM email1 e
UNION ALL
SELECT e.Contact_Email FROM email2 e
UNION ALL
SELECT e.Contact_Email FROM email3 e
UNION ALL
SELECT e.Contact_Email FROM email4 e
) t
LEFT JOIN email1 e1
ON t.Contact_Email = e1.Contact_Email
LEFT JOIN email2 e2
ON t.Contact_Email = e2.Contact_Email
LEFT JOIN email3 e3
ON t.Contact_Email = e3.Contact_Email
LEFT JOIN email4 e4
ON t.Contact_Email = e4.Contact_Email";
echo '<table><thead><tr><th>Email</th>';
for ($i=1;$i<5; $i++){
echo "<th>email $i</th>";
}
echo '</tr></thead><tbody>';
$result = mysql_query($sql);
while ($row = mysql_fetch_array($result)) {
echo '<tr><td>'.$row['Contact_Email'].'</td>';
for ($i=1;$i<5; $i++){
echo '<td>'.(empty($row['email'.$i])?'no':'yes').'</td>';
}
echo '</tr>';
}
echo '</tbody></table>';
UPDATE 使用相同的查询,但将输出部分更改为:
echo '<table><thead><tr><th>Email</th>';
for ($i=1;$i<5; $i++){
echo "<th>email $i</th>";
}
echo "<th>Total (yes)</th>";
echo "<th>Total (no)</th>";
echo '</tr></thead><tbody>';
$result = mysql_query($sql);
while ($row = mysql_fetch_array($result)) {
$yesCount = 0;
$noCount = 0;
echo '<tr><td>'.$row['Contact_Email'].'</td>';
for ($i=1;$i<5; $i++){
echo '<td>'.(empty($row['email'.$i])?'no':'yes').'</td>';
if (empty($row['email'.$i])) {
$noCount++;
} else {
$yesCount++;
}
}
echo '<th>'.$yesCount.'</th>';
echo '<th>'.$noCount.'</th>';
echo '</tr>';
}
echo '</tbody></table>';
我有 11 个表 [email1, email2, email3, ... email11]
<?php
$con = mysql_connect("localhost", "root", "");
$db = mysql_select_db("email-db", $con);
$sql = "SELECT Contact_Email FROM email1, email2, email3, email4, email5";
$result = mysql_query($sql);
while ($row = mysql_fetch_array($result)) {
?>
<tr>
<td><? echo $row['Contact_Email']; ?></td>
<td><? echo '<br>'; ?></td>
</tr>
<? } ?>
我实际上想对所有表中的所有电子邮件执行 select 操作,并在所有表上使用 join。怎么做到的?
MySQL UNION 运算符允许您将来自多个表的两个或多个结果集组合成一个结果集
SELECT Contact_Email FROM email1
UNION
SELECT Contact_Email FROM email2
UNION
SELECT Contact_Email FROM email3
.
.
UNION
SELECT Contact_Email FROM email11
默认情况下,UNION 运算符会从结果中删除重复行,即使您没有明确使用 DISTINCT 运算符也是如此。
自从社区投票决定关闭副本后
这里是 4 个表的示例,如果需要,您可以将其扩展到 11 个。抱歉,但我没有调试这段代码,我想主要障碍是 mysql 从数据库中获取正确值的查询。
而且您绝对应该停止使用 mysql* 功能!
$sql ="SELECT t.Contact_Email,
e1.Contact_Email email1,
e2.Contact_Email email2,
e3.Contact_Email email3,
e4.Contact_Email email4
FROM (
SELECT e.Contact_Email FROM email1 e
UNION ALL
SELECT e.Contact_Email FROM email2 e
UNION ALL
SELECT e.Contact_Email FROM email3 e
UNION ALL
SELECT e.Contact_Email FROM email4 e
) t
LEFT JOIN email1 e1
ON t.Contact_Email = e1.Contact_Email
LEFT JOIN email2 e2
ON t.Contact_Email = e2.Contact_Email
LEFT JOIN email3 e3
ON t.Contact_Email = e3.Contact_Email
LEFT JOIN email4 e4
ON t.Contact_Email = e4.Contact_Email";
echo '<table><thead><tr><th>Email</th>';
for ($i=1;$i<5; $i++){
echo "<th>email $i</th>";
}
echo '</tr></thead><tbody>';
$result = mysql_query($sql);
while ($row = mysql_fetch_array($result)) {
echo '<tr><td>'.$row['Contact_Email'].'</td>';
for ($i=1;$i<5; $i++){
echo '<td>'.(empty($row['email'.$i])?'no':'yes').'</td>';
}
echo '</tr>';
}
echo '</tbody></table>';
UPDATE 使用相同的查询,但将输出部分更改为:
echo '<table><thead><tr><th>Email</th>';
for ($i=1;$i<5; $i++){
echo "<th>email $i</th>";
}
echo "<th>Total (yes)</th>";
echo "<th>Total (no)</th>";
echo '</tr></thead><tbody>';
$result = mysql_query($sql);
while ($row = mysql_fetch_array($result)) {
$yesCount = 0;
$noCount = 0;
echo '<tr><td>'.$row['Contact_Email'].'</td>';
for ($i=1;$i<5; $i++){
echo '<td>'.(empty($row['email'.$i])?'no':'yes').'</td>';
if (empty($row['email'.$i])) {
$noCount++;
} else {
$yesCount++;
}
}
echo '<th>'.$yesCount.'</th>';
echo '<th>'.$noCount.'</th>';
echo '</tr>';
}
echo '</tbody></table>';