mysql_fetch_array()期望参数1是资源问题
我不明白,我在这段代码中没有看到任何错误,但是有这个错误,请帮助:
mysql_fetch_array()期望参数1是资源问题
<?php
$con = mysql_connect("localhost","root","nitoryolai123$%^");
if (!$con)
{
die('Could not connect: ' . mysql_error());
}
mysql_select_db("school", $con);
$result = mysql_query("SELECT * FROM student WHERE IDNO=".$_GET['id']);
?>
<?php while ($row = mysql_fetch_array($result)) { ?>
<table class="a" border="0" align="center" cellpadding="0" cellspacing="1" bgcolor="#D3D3D3">
<tr>
<form name="formcheck" method="get" action="updateact.php" onsubmit="return formCheck(this);">
<td>
<table border="0" cellpadding="3" cellspacing="1" bgcolor="">
<tr>
<td colspan="16" height="25" style="background:#5C915C; color:white; border:white 1px solid; text-align: left"><strong><font size="2">Update Students</td>
<tr>
<td width="30" height="35"><font size="2">*I D Number:</td>
<td width="30"><input name="idnum" onkeypress="return isNumberKey(event)" type="text" maxlength="5" id='numbers'/ value="<?php echo $_GET['id']; ?>"></td>
</tr>
<tr>
<td width="30" height="35"><font size="2">*Year:</td>
<td width="30"><input name="yr" onkeypress="return isNumberKey(event)" type="text" maxlength="5" id='numbers'/ value="<?php echo $row["YEAR"]; ?>"></td>
<?php } ?>
我只是试图在表单中加载数据,但不知道为什么会出现该错误。这里可能有什么错误?
qq_花开花谢_03回答
-
慕桂英4014372
调用mysql_query之后,您没有执行错误检查:$result = mysql_query("SELECT * FROM student WHERE IDNO=".$_GET['id']);if (!$result) { // add this check. die('Invalid query: ' . mysql_error());}万一mysql_query失败,它将返回false一个boolean值。当您将此传递给mysql_fetch_array函数(期望使用mysql result object)时,我们会收到此错误。 -
开满天机
$id = intval($_GET['id']);$sql = "SELECT * FROM student WHERE IDNO=$id";$result = mysql_query($sql) or trigger_error(mysql_error().$sql);总是这样,它会告诉你什么地方不对 -
桃花长相依
确保查询成功运行,并且得到结果。您可以像这样检查:$result = mysql_query("SELECT * FROM student WHERE IDNO=".$_GET['id']) or die(mysql_error());if (is_resource($result)){ // your while loop and fetch array function here....}
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