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2

You need to change the request header to make this work. ajax.setRequestHeader("Content-type", "multipart/form-data");


2

You want to rename something, what you cant. $_FILE['uploaded']['name'] is the original file name of clients machine. So there will be no file like C:\tmp\abc.png on your server box, what means, you can not rename that. Anyway, whats the point of this line of rename? If you want to rename it, do it in the move_uploaded_file function.


1

I think you do not give static extension of image file when you rename a file and you do not change the extension of the image during file uploading.


1

The content type header needs to be set to multipart/form-data. So the server knows what kind of data it is expecting. This will work in Internet Explorer ajax.setRequestHeader("Content-type", "multipart/form-data"); But adding this in Firefox or Chrome results in losing post data in PHP. Now the server knows that it can expect some complex form data ...


1

Very few websites use those headers, your back-end probably just sends a 200 even though the request was successful in inserting data. About your second question, the reason your alert is triggered four times is because onreadystatechanged is called four times, each with a different readyState: Server connection established request received processing ...


1

As far as I know, core-xhr is a low level element, and the body object on it's conf doesn't accept a JS object but the string body you want to use. For the use you describe, you could try core-ajax, a higher level element that can be configured with an object. Doc on core-ajax: https://www.polymer-project.org/docs/elements/core-elements.html#core-ajax. ...


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This code should do the trick. Sorry was a long time ago and I thought that IE9 also could upload using XHR (It should, but this is the Iframe option). It does the following: Add a file input to your page (can also be done in HTML) Put that file selector in a form add credentials to the form Submit the form to the iframe and use its page as return value. ...


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This is because $http is using the keys of the params object as the query string keys, so when you define an object literal inline, like you did, the string paramName1 became the actual key. If you want to use the value of paramName1 to be the key, prepare your params object like so: var params = {}; params[paramName1] = paramValue1; params[paramName2] = ...



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