我在一个表中有 7 条记录,但我只想选择按日期 DESC 排序的最后 5 条记录。我想在按日期 ASC 排序的表中显示这些记录。
我的代码:
$select_record = mysqli_query($con, "select * from table order by date DESC limit 5");
while($row=mysqli_fetch_array($select_record)){
$date = $row['date'];
echo "<tr><td>$date<br></td></tr>";
像这样在我的表中记录
Date
2014-05-15
2014-04-15
2014-06-15
2014-02-15
2014-07-15
2014-01-15
2014-03-15
我的代码给了我这样的结果
Date
2014-07-15
2014-06-15
2014-05-15
2014-04-15
2014-03-15
但我想要这样的结果
Date
2014-03-15
2014-04-15
2014-05-15
2014-06-15
2014-07-15
我正在尝试将照片上传到服务器表单img标签,但我做不到。请帮助。首先,我从网络摄像头拍摄照片,然后将其上传到网络服务器上。当我从网络摄像头捕捉照片时,它会通过javascript方法getelementbyId在屏幕上显示。现在,我想编码它将被上传到我的Web服务器。请先谢谢.....我的代码如下:
//script_photo.js
var photoButton = document.getElementById('snapPicture');
photoButton.addEventListener('click', picCapture, false);
navigator.getUserMedia ||
(navigator.getUserMedia = navigator.mozGetUserMedia ||
navigator.webkitGetUserMedia || navigator.msGetUserMedia);
if (navigator.getUserMedia) {
navigator.getUserMedia({video:true,audio:false}, onSuccess, onError);
} else{
alert('Your browser isnt supported');
}
function onSuccess(stream) {
vidContainer = document.getElementById('webcam');
var vidStream;
if (window.webkitURL){
vidStream = window.webkitURL.createObjectURL(stream);
}else{
vidStream = stream;
}
vidContainer.autoplay = true;
vidContainer.src = vidStream;
}
function onError(){
alert('Houston, we have a problem');
}
function picCapture(){
var picture = document.getElementById('capture'),
context = picture.getContext('2d');
picture.width = "600";
picture.height = "400";
context.drawImage(vidContainer, …