Question

我已经从SQL调用数据并通过id选择然后我想使用来自＆＃34; mysqli_fetch_array＆＃34;的数据。行[1]进行一些计算。

但不知何故，在第14行，$ row [1]无法获得进行计算的日期。

的index.php

<?php
$con = mysqli_connect('localhost','root','','test2');
$query = mysqli_query($con,"SELECT * FROM count") or 
die(mysqli_error($con));


while( $row = mysqli_fetch_array($query))
  echo "$row[id]. $row[quantity] <a href='edit.php?edit=$row[id]'>Draw 
Patrs<br />";
?>

edit.php

<?php

if( isset($_GET['edit']) )
{
    $id = $_GET['edit'];
    $con = mysqli_connect('localhost','root','','test2');
    $query = mysqli_query($con,"SELECT * FROM count WHERE id='$id'");
    $row = mysqli_fetch_array($query);
}   

if( isset($_POST['drawquantity']) )
{
    $drawquantity = $_POST['drawquantity'];
    $newquantity = $row[1]-$drawquantity;
    $id      = $_POST['id'];
    $sql     = "UPDATE count SET quantity='$newquantity' WHERE id='$id'";
    $con = mysqli_connect('localhost','root','','test2');
    $res     = mysqli_query($con,$sql) 
                                or die("Could not update".mysql_error());
    echo "<meta http-equiv='refresh' content='0;url=index.php'>";

}

?>
<form action="edit.php" method="POST">
How mant you will take away: <input type="text" name="drawquantity" value="" 
placeholder="<?php echo $row[1]; ?>"><br />

<input type="hidden" name="id" value="<?php echo $row[0]; ?>">
<input type="submit" value=" Update "/>
</form>

Answer 1

<?php

if( isset($_GET['edit']) )
{
    $id = $_GET['edit'];
    $con = mysqli_connect('localhost','root','','test2');
    $query = mysqli_query($con,"SELECT * FROM count WHERE id='$id'");
    $row = mysqli_fetch_array($query);
}   

if( isset($_POST['drawquantity']) )
{
    $drawquantity = $_POST['drawquantity'];
    $newquantity = $row[1]-$drawquantity;
    $id      = $_POST['id'];
    $sql     = "UPDATE count SET quantity='$newquantity' WHERE id='$id'";
    $con = mysqli_connect('localhost','root','','test2');
    $res     = mysqli_query($con,$sql) 
                            or die("Could not update".mysql_error());
    echo "<meta http-equiv='refresh' content='0;url=index.php'>";

}

?>
<form action="edit.php?edit=<?=$_GET['edit']?>" method="POST">
How mant you will take away: <input type="text" name="drawquantity" value="" 
placeholder="<?php echo $row[1]; ?>"><br />

<input type="hidden" name="id" value="<?php echo $row[0]; ?>">
<input type="submit" value=" Update "/>
</form>

改变正在行动

缺少SQL的变量数据

1 个答案: