我想在我的网站上使用Jquery Croppie插件为用​​户裁剪图像,但是我遇到了这个问题,我写的代码未在Croppie Site中显示为示例

这是我的代码

HTML代码

<input type="file" id="upload" value="Choose a file">
<button class="upload-result">Result</button>
<div class="upload-msg">
   Upload a file to start cropping
</div>
<div id="upload-demo"></div>

JS代码
$uploadCrop = $('#upload-demo').croppie({
   viewport: {
      width: 200,
      height: 200,
      type: 'circle'
   },
   boundary: {
      width: 300,
      height: 300
   }
});

注意:我已将我的网站与jquery,croppie.js和croppie.css链接

最佳答案

试试吧,它对我有用。
我使用PHP保存图像。

<?php
    if(isset($_POST['imagebase64'])){
        $data = $_POST['imagebase64'];

        list($type, $data) = explode(';', $data);
        list(, $data)      = explode(',', $data);
        $data = base64_decode($data);

        file_put_contents('image64.png', $data);
    }
?>
<!DOCTYPE html>
<html lang="pt-br">
<head>
<meta charset="utf-8">
<title>Test</title>
<link href="croppie.css" rel="stylesheet" type="text/css">
<script type="text/javascript" src="jquery-1.11.3.min.js"></script>
<script type="text/javascript" src="croppie.js"></script>
<script type="text/javascript">
$( document ).ready(function() {
    var $uploadCrop;

    function readFile(input) {
        if (input.files && input.files[0]) {
            var reader = new FileReader();
            reader.onload = function (e) {
                $uploadCrop.croppie('bind', {
                    url: e.target.result
                });
                $('.upload-demo').addClass('ready');
            }
            reader.readAsDataURL(input.files[0]);
        }
    }

    $uploadCrop = $('#upload-demo').croppie({
        viewport: {
            width: 200,
            height: 200,
            type: 'circle'
        },
        boundary: {
            width: 300,
            height: 300
        }
    });

    $('#upload').on('change', function () { readFile(this); });
    $('.upload-result').on('click', function (ev) {
        $uploadCrop.croppie('result', {
            type: 'canvas',
            size: 'original'
        }).then(function (resp) {
            $('#imagebase64').val(resp);
            $('#form').submit();
        });
    });

});
</script>
</head>
<body>
<form action="test-image.php" id="form" method="post">
<input type="file" id="upload" value="Choose a file">
<div id="upload-demo"></div>
<input type="hidden" id="imagebase64" name="imagebase64">
<a href="#" class="upload-result">Send</a>
</form>
</body>
</html>

一个JSFiddle link

关于javascript - jQuery插件Croppie裁剪图像错误,我们在Stack Overflow上找到一个类似的问题:https://stackoverflow.com/questions/34237020/

10-11 15:28