I need to convert a dataURL to a File object in Javascript in order to send it over using AJAX. Is it possible? If yes, please tell me how.
6 Answers
If you need to send it over ajax, then there's no need to use a File object, only Blob and FormData objects are needed.
As I sidenote, why don't you just send the base64 string to the server over ajax and convert it to binary server-side, using PHP's base64_decode for example? Anyway, the standard-compliant code from this answer works in Chrome 13 and WebKit nightlies:
function dataURItoBlob(dataURI) {
// convert base64 to raw binary data held in a string
// doesn't handle URLEncoded DataURIs - see SO answer #6850276 for code that does this
var byteString = atob(dataURI.split(',')[1]);
// separate out the mime component
var mimeString = dataURI.split(',')[0].split(':')[1].split(';')[0];
// write the bytes of the string to an ArrayBuffer
var ab = new ArrayBuffer(byteString.length);
var ia = new Uint8Array(ab);
for (var i = 0; i < byteString.length; i++) {
ia[i] = byteString.charCodeAt(i);
}
//Old Code
//write the ArrayBuffer to a blob, and you're done
//var bb = new BlobBuilder();
//bb.append(ab);
//return bb.getBlob(mimeString);
//New Code
return new Blob([ab], {type: mimeString});
}
Then just append the blob to a new FormData object and post it to your server using ajax:
var blob = dataURItoBlob(someDataUrl);
var fd = new FormData(document.forms[0]);
var xhr = new XMLHttpRequest();
fd.append("myFile", blob);
xhr.open('POST', '/', true);
xhr.send(fd);
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1Thanks for your answer, however, I have already made something like that and it works fine. Its a canvas based image resizer, watermarker and uploader. Waiting for a project to use it on– kapv89Sep 1, 2011 at 18:02
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2Hi, just thought to mention I have a slightly modernized version available at nixtu.info/2013/06/how-to-upload-canvas-data-to-server.html . Jun 20, 2013 at 17:51
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5BlobBuilder is now deprecated and does not work anymore in Chrome ! May 13, 2015 at 17:24
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1This post uses deprecated elements such as BlobBuilder, see @cuixiping's answer for a working solution.– vishJun 29, 2015 at 5:38
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2It's worth noting that the base64 encoding of a file is often substantially larger than the actual file, which means a lot more data is transmitted when using base64 as compared to
multipart/form-data, which is what you get when you useFile.– SumitAug 30, 2018 at 17:39
The BlobBuilder is deprecated and should no longer be used. Use Blob instead of old BlobBuilder. The code is very clean and simple.
File object is inherit from Blob object. You can use both of them with FormData object.
function dataURLtoBlob(dataurl) {
var arr = dataurl.split(','), mime = arr[0].match(/:(.*?);/)[1],
bstr = atob(arr[1]), n = bstr.length, u8arr = new Uint8Array(n);
while(n--){
u8arr[n] = bstr.charCodeAt(n);
}
return new Blob([u8arr], {type:mime});
}
use dataURLtoBlob() function to convert dataURL to blob and send ajax to server.
for example:
var dataurl = 'data:text/plain;base64,aGVsbG8gd29ybGQ=';
var blob = dataURLtoBlob(dataurl);
var fd = new FormData();
fd.append("file", blob, "hello.txt");
var xhr = new XMLHttpRequest();
xhr.open('POST', '/server.php', true);
xhr.onload = function(){
alert('upload complete');
};
xhr.send(fd);
Another way:
You can also use fetch to convert an url to a file object (file object has name/fileName property, this is different from blob object)
The code is very short and easy to use. (works in Chrome and Firefox)
//load src and convert to a File instance object
//work for any type of src, not only image src.
//return a promise that resolves with a File instance
function srcToFile(src, fileName, mimeType){
return (fetch(src)
.then(function(res){return res.arrayBuffer();})
.then(function(buf){return new File([buf], fileName, {type:mimeType});})
);
}
Usage example 1: Just convert to file object
srcToFile(
'data:text/plain;base64,aGVsbG8gd29ybGQ=',
'hello.txt',
'text/plain'
)
.then(function(file){
console.log(file);
})
Usage example 2: Convert to file object and upload to server
srcToFile(
'data:text/plain;base64,aGVsbG8gd29ybGQ=',
'hello.txt',
'text/plain'
)
.then(function(file){
console.log(file);
var fd = new FormData();
fd.append("file", file);
return fetch('/server.php', {method:'POST', body:fd});
})
.then(function(res){
return res.text();
})
.then(console.log)
.catch(console.error)
;
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2I really enjoyed your answer as it's neat and clean, but I really can figure out the usage of ArrayBuffer in other answers. Would you please explain the usage if ArrayBuffer and why it's not used here?– AliSep 8, 2015 at 14:15
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In case you didn't check out the Mozilla Developer Network reference, fetch is an experimental feature and is not recommended for use in production code. Too bad, looks cool.– jocassidJul 28, 2019 at 1:01
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To create a blob from a dataURL:
const response = await fetch(dataURL);
const blob = await response.blob();
To create a file from a blob:
const file = new File(
[blob],
"fileName.jpg",
{
type: "image/jpeg",
lastModified: new Date()
}
);
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6No need for 2 awaits and nesting.
await fetch(src).then(it => it.blob())Nov 4, 2021 at 14:20 -
1@StevenSpungin Better yet, break the code onto two explicit lines, as I've done as an edit to the answer. Mixing
awaitandthenoften leads to confusion and arguably isn't much better than nestingawaits. We don't have to write it on one line.– ggorlenMay 19 at 22:23 -
You can still put the .then on another line, and it is also arguably better to not create an itermediate variable and const declaration. May 20 at 0:03
If you really want to convert the dataURL into File object.
You need to convert the dataURL into Blob then convert the Blob into File.
The function is from answer by Matthew. (https://stackoverflow.com/a/7261048/13647044)
function dataURItoBlob(dataURI) {
// convert base64 to raw binary data held in a string
// doesn't handle URLEncoded DataURIs - see SO answer #6850276 for code that does this
var byteString = atob(dataURI.split(',')[1]);
// separate out the mime component
var mimeString = dataURI.split(',')[0].split(':')[1].split(';')[0];
// write the bytes of the string to an ArrayBuffer
var ab = new ArrayBuffer(byteString.length);
var ia = new Uint8Array(ab);
for (var i = 0; i < byteString.length; i++) {
ia[i] = byteString.charCodeAt(i);
}
return new Blob([ab], { type: mimeString });
}
const blob = dataURItoBlob(url);
const resultFile = new File([blob], "file_name");
Other than that, you can have options on the File Object initialised. Reference to File() constructor.
const resultFile = new File([blob], "file_name",{type:file.type,lastModified:1597081051454});
The type should be [MIME][1] type(i.e. image/jpeg) and last modified value in my example is equivalent to Mon Aug 10 2020 19:37:31 GMT+0200 (Eastern European Standard Time)
In Latest browsers:
const dataURLtoBlob = (dataURL) => {
fetch(dataURL)
.then(res => res.blob())
.then(blob => console.log(blob))
.catch(err => console.log(err))
}
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Basically the same as this answer, except in a confusing function that only logs the blob to the console rather than return it.– ggorlenMay 19 at 22:27
After some research I arrived on this one:
function dataURItoBlob(dataURI) {
// convert base64 to raw binary data held in a string
// doesn't handle URLEncoded DataURIs - see SO answer #6850276 for code that does this
var byteString = atob(dataURI.split(',')[1]);
// separate out the mime component
var mimeString = dataURI.split(',')[0].split(':')[1].split(';')[0];
// write the bytes of the string to an ArrayBuffer
var ab = new ArrayBuffer(byteString.length);
var dw = new DataView(ab);
for(var i = 0; i < byteString.length; i++) {
dw.setUint8(i, byteString.charCodeAt(i));
}
// write the ArrayBuffer to a blob, and you're done
return new Blob([ab], {type: mimeString});
}
module.exports = dataURItoBlob;
formDatain your script/page?