I am developing ajax Based Search , This is demo of how it will be. I am faceing Problem in returning result. I need to show the Result 2 times. But its only showing once. Below is my HTML code
我正在开发基于ajax的搜索,这是它的演示。我正在面临返回结果的问题。我需要显示结果2次。但它只显示一次。下面是我的HTML代码
<form action="" method="post" id="demoform">
<select style="width:250px;padding:5px 0px;color:#f1eedb;" name="product" class="product">
<option>TENNIS</option>
<option>FOOTBALL</option>
<option>SWIMMING</option>
</select>
</form>
<div id="result">Display Result Here</div>
I Using The Below Ajax Script to Retrieve Data :-
我使用下面的Ajax脚本检索数据:-。
$(".product").change(function(){
$.ajax({
type : 'POST',
url : 'post.php',
dataType : 'json',
data: {
product : $(".product option:selected").text(),
},
success : function(data){
$('#result').removeClass().addClass((data.error === true) ? 'error' : 'success')
.html(data.msg).show();
if (data.error === true)
$('#demoForm').show();
},
error : function(XMLHttpRequest, textStatus, errorThrown) {
$('#result').removeClass().addClass('error')
.text('There was an error.').show(500);
$('#demoForm').show();
}
});
});
The post.php file has the following code :-
这个职位。php文件有以下代码:-
<?php
require('connect.php');
$get_select = $_POST[product];
if($get_product!='FOOTBALL'){
$return['error'] = true;
return['msg'] = 'Incorrect Selection';
echo json_encode(return);
}
else {
$return['error'] = false;
$i=0;
while($i<2) {
return['msg'] = $get_product;
}
echo json_encode(return);//Returns only one result.
}
?>
I need to show the result Two times as "CRICKET CRICKET", but its only showing once. What should i do to get both the result.
我需要显示两次结果作为“板球板球”,但它只显示一次。我该怎么做才能得到两个结果。
2 个解决方案
#1
0
Is it possible that this line is confusing php:
这条线可能会让php感到困惑:
while($i<2) {
return['msg'] = $get_product;
}而($i<2) {return['msg'] = $get_product;}
Should it be $return? Using a reserved word like 'return' is a tad iffy too.
它应该返回美元吗?使用“return”这样的保留字也有点不确定。
#2
0
Please change the following code:
请更改以下代码:
else {
$i=0;
$messageToReturn = "";
while($i<2) {
$messageToReturn .= $get_product; //Append to your variable
}
return json_encode($messageToReturn); //Returns the result
}
I would suggest to change the while to a for loop. In that case you will get this:
我建议把时间改为for循环。在这种情况下,你会得到:
else {
$messageToReturn = "";
for($i = 0; $i < 2; $i++)
{
$messageToReturn .= $get_product; //Append to your variable
}
return json_encode($messageToReturn);
If you know the times you need to repeat, use a for loop. The while is never ending. So you can get a possible stack overflow...
如果您知道需要重复的时间,请使用for循环。这段时间永远不会结束。所以你可以得到一个可能的堆栈溢出……
#1
0
Is it possible that this line is confusing php:
这条线可能会让php感到困惑:
while($i<2) {
return['msg'] = $get_product;
}而($i<2) {return['msg'] = $get_product;}
Should it be $return? Using a reserved word like 'return' is a tad iffy too.
它应该返回美元吗?使用“return”这样的保留字也有点不确定。
#2
0
Please change the following code:
请更改以下代码:
else {
$i=0;
$messageToReturn = "";
while($i<2) {
$messageToReturn .= $get_product; //Append to your variable
}
return json_encode($messageToReturn); //Returns the result
}
I would suggest to change the while to a for loop. In that case you will get this:
我建议把时间改为for循环。在这种情况下,你会得到:
else {
$messageToReturn = "";
for($i = 0; $i < 2; $i++)
{
$messageToReturn .= $get_product; //Append to your variable
}
return json_encode($messageToReturn);
If you know the times you need to repeat, use a for loop. The while is never ending. So you can get a possible stack overflow...
如果您知道需要重复的时间,请使用for循环。这段时间永远不会结束。所以你可以得到一个可能的堆栈溢出……