我正在尝试使用PHP / MySQL填充输入字段,并在此处找到Drew Wilson的jQuery Autosuggest插件:http://tips4php.net/2010/09/ajax-autocomplete-with-jquery-and-php/
我收到此错误:警告:mysql_fetch_array():提供的参数不是第21行的有效MySQL结果资源
这是我的代码:
$con = mysql_connect("localhost","username","password");
if (!$con) {
die('Could not connect: ' . mysql_error());
}
mysql_select_db("my_db", $con);
$counter='0';
echo "{";
echo "query:'$query',";
echo "suggestions:[";
$res = mysql_query("SELECT airport, code FROM iata_airport_codes where name like '$query%' ORDER BY airport desc");
while($row = mysql_fetch_array($res)) {
$counter++;
if ($counter > 1) {
echo ",";
}
$airport=$row["airport"];
$code=$row["code"];
echo "'$airport', ('$code')";
}
echo "],}";
mysql_close($con);
我在这里缺少什么?看不出我做错了什么。
提前致谢!
答案 0 :(得分:2)
Warning: mysql_fetch_array(): supplied argument is not a valid MySQL result resource on line 21
始终表示SQL查询中存在错误。尝试打印myqsl_error()内容。
你应该使用json_encode()不要自己打印json。
答案 1 :(得分:1)
显示错误:
mysql_query("SELECT airport, code FROM iata_airport_codes where name like '$query%' ORDER BY airport desc") or die(mysql_error());