我有一个来自服务器的图像,我正试图将其添加为图像标记,但我遇到了问题,以下是我的代码:

        $.ajax({
            type: "get",
            url: "SOME_IMAGE_URL",
            contentType: "image/png",
            success: function (data) {
           var img = new Image();
                var url = window.URL || window.webkitURL;
                img.src = url.createObjectURL(data);
            document.getElementById("createThingicon").appendChild(img);
            },
        });

当响应图像被附加到HTML时,它并没有显示,而是显示一个损坏的图像。我的代码中有什么问题吗?我硬编码了网址以便你能检查回复

最佳答案

$.ajax({
     type: "get",
     url: "Your_Remote_URL",
     mimeType: "text/plain; charset=x-user-defined",
     success: function (data) {

         $image = $('<img />').attr('src', 'data:image/png;base64,' + base64encode(data));
         $('#createThingicon').append($image);

     },
 });

function base64encode(str) {
    var CHARS = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/";
    var out = "", i = 0, len = str.length, c1, c2, c3;
    while (i < len) {
        c1 = str.charCodeAt(i++) & 0xff;
        if (i == len) {
            out += CHARS.charAt(c1 >> 2);
            out += CHARS.charAt((c1 & 0x3) << 4);
            out += "==";
            break;
        }
        c2 = str.charCodeAt(i++);
        if (i == len) {
            out += CHARS.charAt(c1 >> 2);
            out += CHARS.charAt(((c1 & 0x3)<< 4) | ((c2 & 0xF0) >> 4));
            out += CHARS.charAt((c2 & 0xF) << 2);
            out += "=";
            break;
        }
        c3 = str.charCodeAt(i++);
        out += CHARS.charAt(c1 >> 2);
        out += CHARS.charAt(((c1 & 0x3) << 4) | ((c2 & 0xF0) >> 4));
        out += CHARS.charAt(((c2 & 0xF) << 2) | ((c3 & 0xC0) >> 6));
        out += CHARS.charAt(c3 & 0x3F);
    }
    return out;
}

10-06 04:30
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