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        在非对象上调用成员函数 bind_param().mysqli

        Call to a member function bind_param() on a non-object. mysqli(在非对象上调用成员函数 bind_param().mysqli)
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                1. 本文介绍了在非对象上调用成员函数 bind_param().mysqli的处理方法,对大家解决问题具有一定的参考价值,需要的朋友们下面随着跟版网的小编来一起学习吧!

                  问题描述

                  这是我的 php 代码:

                  include ("dbinfo.php");if(isset($_POST['editsave'])){$edittitle=$_POST["edittitle"];$editurl=$_POST["editurl"];$editdesc=$_POST["editdesc"];$editid=$_POST["editid"];$mysqli = $GLOBALS['dbc'];$stmt = $mysqli->prepare("更新链接 SET title = ?,描述 = ?哪里 id = ?");$stmt->bind_param('ssd',$_POST['edittitle'],$_POST['editdesc'],$_POST['editid']);$stmt->执行();$stmt->close();}

                  这是我的表格:

                   <form role="form" action="edit.php" method="post"><div class="form-group"><label for="title">标题</label>
                  <input type="hidden" name="editid" value="<?echo $id; ?>"><button type="submit" name="editsave" class="btn btn-primary">保存更改</button></div></表格>

                  当我按下提交时,我得到这个:

                  致命错误:在第 27 行的/storage/content/x/xxx/中的非对象上调用成员函数 bind_param().

                  第 27 行是:

                  $stmt->bind_param('ssd',

                  我不熟悉mysqli.我已经尝试解决这个问题几天了,但我快疯了.

                  解决方案

                  这表示里面的查询 mysqli::prepare() 导致错误.

                  根据文档:

                  <块引用>

                  mysqli_prepare() 返回一个语句对象,如果发生错误则返回 FALSE.

                  尝试正确转义 desc,这是 MySQL 中的保留关键字( 不是正确转义):

                  $stmt = $mysqli->prepare('UPDATE links SET title = ?, `desc` = ? WHERE id = ?');

                  This is my php code:

                  include ("dbinfo.php");
                  
                  if(isset($_POST['editsave'])){
                  $edittitle=$_POST["edittitle"];
                  $editurl=$_POST["editurl"];
                  $editdesc=$_POST["editdesc"];
                  $editid=$_POST["editid"];
                  
                  $mysqli = $GLOBALS['dbc'];
                  $stmt = $mysqli->prepare("UPDATE links SET title = ?, 
                    desc = ? 
                    WHERE id = ?");
                  $stmt->bind_param('ssd',
                    $_POST['edittitle'],
                    $_POST['editdesc'],
                    $_POST['editid']);
                  $stmt->execute();
                  $stmt->close();
                  }
                  

                  This is my form:

                      <form role="form" action="edit.php" method="post">
                      <div class="form-group">
                        <label for="title">Title</label>
                        <input type="text" name="edittitle" class="form-control" id="title" placeholder="Enter title" maxlength="70" value="<?php echo ($title); ?>">
                      </div>
                      <div class="form-group">
                        <label for="url">URL</label>
                        <input type="text" name="editurl" class="form-control" id="url" value="<?php echo ($url); ?>" disabled>
                      </div>
                      <div class="form-group">
                        <label for="desc">Description</label><small> (max 500 characters)</small>
                        <textarea class="form-control" name="editdesc" id="desc" rows="5" maxlength="500"><?php echo ($desc); ?></textarea>
                      </div>
                      <div>
                        <input type="hidden" name="editid" value="<? echo $id; ?>">
                        <button type="submit" name="editsave" class="btn btn-primary">Save changes</button>
                      </div>
                    </form>
                  

                  When i press submit i get this:

                  Fatal error: Call to a member function bind_param() on a non-object in /storage/content/x/xxx/ on line 27.

                  Line 27 is:

                  $stmt->bind_param('ssd',
                  

                  I'm not familiar with mysqli. I have tried to fix the problem for a few days now and I'm getting crazy.

                  解决方案

                  This means that the query inside mysqli::prepare() resulted in an error.

                  According to the doc:

                  mysqli_prepare() returns a statement object or FALSE if an error occurred.

                  Try to properly escape desc, which is a reserved keyword in MySQL ( is not proper escaping):

                  $stmt = $mysqli->prepare('UPDATE links SET title = ?, `desc` = ? WHERE id = ?');
                  

                  这篇关于在非对象上调用成员函数 bind_param().mysqli的文章就介绍到这了,希望我们推荐的答案对大家有所帮助,也希望大家多多支持跟版网!

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