17

我是 PHP 新手,并尝试创建以下内容,同时尽量减少所需的代码量。PHP 应该显示 100 的列表,如果数字是 /,则显示 3、5 或 3 和 5。如果不是,则不显示任何内容。

这是我到目前为止所得到的,但是任何帮助都会很棒,因为不确定 / by 3 和 5 位,如下所示。

<?php $var = range(0, 100); ?>
  <table>
<?php foreach ($var as &$number) {
 echo " <tr>
    <td>$number</td>
    <td>";

    if($number % 3 == 0)  {
    echo "BY3";
} elseif ($number % 5 == 0) {
    echo "BY5";
} elseif ($number % 3 and 5 == 0) {
        echo "BY3 AND 5";
}
 echo "</td></tr>";
}
?>

  </table>

谢谢

4

9 回答 9

37

不...您应该首先检查它是否可被 15 (3x5)(或 3 和 5)整除,然后您可以进行其他检查:

if($number % 15 == 0)  {
    echo "BY3 AND 5";
} elseif ($number % 5 == 0) {
    echo "BY5";
} elseif ($number % 3 == 0) {
    echo "BY3";
}
 echo "</td></tr>";

?>

因为每个可以被 15 整除的数字也可以被 3 和 5 整除。所以你的最后一次检查永远不会命中

于 2013-02-04T12:21:17.190 回答
4

如果我正确阅读了您的问题,那么您正在寻找:

if ($number % 3 == 0 && $number %5 == 0) {
        echo "BY3 AND 5";
} elseif ($number % 3 == 0)  {
    echo "BY3";
} elseif ($number % 5 == 0) {
    echo "BY5";
}

替代版本:

echo ($number % 3 ? ($number % 5 ? "BY3 and 5" : "BY 3") : ($number % 5 ? "BY 5" : ""));
于 2013-02-04T12:14:07.917 回答
2 
$num_count = 100;
    $div_3 = "Divisible by 3";
    $div_5 = "Divisible by 5";
    $div_both = "Divisible by 3 and 5";
    $not_div = "Not Divisible by 3 or 5";

    for($i=0;$i<=$num_count;$i++)
    {
        switch($i)
        {
            case ($i%15==0):
            echo $i." (".$div_both.")</br>";
            break;
            case ($i%3==0):
            echo $i." (".$div_3.")</br>";
            break;
            case ($i%5==0):
            echo $i." (".$div_5.")</br>";
            break;
            default:
            echo $i."</br>";
            break;
        }
    }
于 2014-11-16T10:46:34.737 回答
2

无需执行三个 if 语句:

echo "<table border='1'>";

for ($i = 1; $i <= 100; $i++) {

    echo "<tr><td>{$i}</td><td>";

    if ($i % 3 == 0) echo "BY3 ";
    if ($i % 5 == 0) echo "BY5";

    echo "</td></tr>\n";
}
echo "</table>";
于 2016-02-02T21:30:07.370 回答
1

更新代码如下

<?php $var = range(0, 100); ?>
<table>
<?php foreach ($var as &$number)
{
echo " <tr>
<td>$number</td>
<td>";

if($number % 3 == 0 &&  $number % 5 == 0) 
{
   echo "BY3 AND 5";
} 
elseif ($number % 5 == 0) 
{
echo "BY5";
}
elseif ($number % 3 == 0) 
{
    echo "BY3";
}
echo "</td></tr>";
}
?>

于 2013-02-04T12:16:25.243 回答
1 
<?php

if($number % 5 == 0 && $number % 3 == 0)  {
    echo "BY3 AND 5";
} elseif ($number % 5 == 0) {
    echo "BY5";
} elseif ($number % 3 == 0) {
    echo "BY3";
} else{
    echo "NOT BY3 OR 5";
}   
?>
于 2013-02-04T12:22:49.140 回答
1 
if($number % 15 == 0)  
{
     echo "Divisible by 3 and 5";
} 
elseif ($number % 5 == 0) 
{
    echo "Divisible by 5";
} 
elseif ($number % 3 == 0) 
{
 echo "Divisible by 3";
}
于 2013-02-04T12:36:21.113 回答
0

这是更整洁和完整的运行:

<?php

for ($i = 1; $i <= 100; $i++) { 
                if ($i % 15 == 0)
                {
                    echo"Divisible by 3 and 5</br>";
                }
                elseif ($i%3==0)
                {
                    echo"Divisible by 3</br>";
                }
                elseif ($i%5==0)
                {
                    echo"Divisible by 5</br>";
                }
                else
                {
                    echo $i,"</br>";
                }

}
?>
于 2018-12-27T09:25:14.033 回答
0 
      <?php

for ($i = 1; $i <= 100; $i++) {

    if ($i % 15 == 0) echo "This Number is Divisible by 3 and 5<br>";
    else if ($i % 3 == 0) echo "This Number is Divisible by 3 only<br>";
    else if ($i % 5 == 0) echo "This number is Divisible by 5 only<br>";
    else{
        echo "$i<br>";
    }

}

   ?>
于 2019-06-20T06:56:53.330 回答