我正在尝试在数据库中创建一个检入/检出表.我的签到表格可以正常工作,将时间插入了我的数据库.当我尝试签出时出现问题.第一次进入时一切都很好…
但是当我尝试签入并再次签出时,会发生这种情况…
到目前为止一切都很好,但是当我结帐时…
当前,我的代码更新所有匹配child_id的out列和totalTime列.
这是我的代码:
// Select the correct child from the database
$sql_childID = "SELECT id FROM child
WHERE firstName = '$childFirstName'
AND lastName = '$childLastName'";
$result = $pdo->query($sql_childID);
$row = $result->fetch();
$var = $row['id'];
// Insert the check out time for the child
$query = "UPDATE checkinout
SET `out` = :NowTime
WHERE child_id = $var
AND `in` IS NOT NULL";
$statement = $pdo->prepare($query);
$statement->bindValue(':NowTime', date("YmjHis"));
$statement->execute();
// Select check in time for specified child
$sql_inTime = "SELECT `in` FROM checkinout
WHERE child_id = $var";
$inResult = $pdo->query($sql_inTime);
$inRow = $inResult->fetch();
$inTime = strtotime($inRow['in']);
// Select the check out time for specified child
$sql_outTime = "SELECT `out` FROM checkinout
WHERE child_id = $var";
$outResult = $pdo->query($sql_outTime);
$outRow = $outResult->fetch();
$outTime = strtotime($outRow['out']);
// Find total hours
$totalTime = abs($outTime - $inTime)/(60*60);
// Update totalHours column for specified child
$queryTotalTime = "UPDATE checkinout
SET totalTime = :totalTime
WHERE child_id = $var
AND 'out' IS NOT NULL";
$statement = $pdo->prepare($queryTotalTime);
$statement->bindValue(':totalTime', $totalTime);
$statement->execute();
解决方法:
我认为您可以使用TIMESTAMPDIFF
在第一条更新语句中完成所有这些工作,而不用用PHP计算总时间:
UPDATE checkinout
SET
out = Now(),
totalTime = TIMESTAMPDIFF(SECOND, `in`, Now()) / 3600
WHERE
child_id = $var
AND out IS NULL
WHERE out IS NULL条件将仅更新out列中尚无值的行.