1

我正在尝试created_at从数据库表中获取字段,但它引发了以下错误:

内部存储的日期/时间/时间戳值无法转换为 DateTime:'

厨师

' [wrapped: DateTime::__construct(): 解析时间字符串失败(

厨师

) 在位置 0 (<):意外字符]

获取日期的代码:

foreach ($pager->getResults() as $row):
         ?>
        <tr>
          <td><?php echo $row->getTitle()  ?></td>
          <td><?php echo ($row->getStatus()) ? 'Active' : 'Inactive' ?></td>
          <td><?php echo date(sfConfig::get('app_display_alternate_format_for_date'), strtotime($row->getCreatedAt())) ?></td>
          <td>
          </td>
        </tr>

日期配置:

'app_display_alternate_format_for_date' => 'MdY'

以 DB 格式保存的日期:

2017-09-15 08:08:02

BaseModel 中的基本 getCreatedAt 函数:

public function getCreatedAt($format = 'Y-m-d H:i:s')
    {
        if ($this->created_at === null) {
            return null;
        }


        if ($this->created_at === '0000-00-00 00:00:00') {
            // while technically this is not a default value of NULL,
            // this seems to be closest in meaning.
            return null;
        } else {
            try {
                $dt = new DateTime($this->created_at);
            } catch (Exception $x) {
                throw new PropelException("Internally stored date/time/timestamp value could not be converted to DateTime: " . var_export($this->created_at, true), $x);
            }
        }

        if ($format === null) {
            // Because propel.useDateTimeClass is TRUE, we return a DateTime object.
            return $dt;
        } elseif (strpos($format, '%') !== false) {
            return strftime($format, $dt->format('U'));
        } else {
            return $dt->format($format);
        }
    }
4

1 回答 1

1

首先,异常看起来像是Cook在字段中找到了字符串。我会在排除这种可能性var_dump($this->created_at);exit;之前加一行。new DateTime($this->created_at)

一旦您确定不是这种情况,请尝试给出字符串的格式。而不是new DateTime()使用:

$dt = date_create_from_format('Y-m-d H:i:s', $this->created_at);

或更好:

$dt = date_create_from_format($format, $this->created_at);
于 2018-07-12T07:56:42.257 回答