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I am working on phonegap with an Android project. I want to upload a file that is stored in my sd card to a server.

I want to be able to get a file that is stored in my assets folder.

**FileTransfer.upload(imageURI, "http://http://192.168.1.214/MusicApplication/welcome.php", win, fail, options);**

then please suggest me what should imageURI in above function if my image is stored in assets folder.

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What's up with the display of this whole post as code? I tried editing it to add backquotes at the beginning and end of the HTML, but it didn't work. Is this a bug in our web application? –  Michael Crawford Aug 29 '11 at 7:23
    
No sir this is correct but we have to import some java script file. Sir please suggest me how can i access a image which is stored in my local file system. i am unable to give proper path of that image which is to be upload. i have stored my image file in the assets folder of my project. –  Pushpendra Kuntal Aug 29 '11 at 7:31
    
@Don Quixote Code samples are indented at 4 spaces from the left, so any text that you want not to include in the code block should be indented at less than that. –  luvieere Aug 29 '11 at 7:34
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2 Answers

up vote 1 down vote accepted

Take a look at this for Using External Storage.

Depending upon your API level, use getExternalFilesDir() or getExternalStorageDirectory() to find the file you are looking for.

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this is the solution of my problem:- var options = new FileUploadOptions(); options.fileKey="file"; options.fileName=document.getElementById('txtFileName').value; options.mimeType="audio/mpeg"; var params = new Object(); params.value1 = "test"; params.value2 = "param"; options.params = params; var ft = new FileTransfer(); ft.upload(fileName, "192.168.1.214/MusicApplication/upload.php";, win, fail, options); –  Pushpendra Kuntal Aug 30 '11 at 7:17
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his is the solution of my problem:-

var options = new FileUploadOptions();
 options.fileKey="file"; 
options.fileName=document.getElementById('txtFileName').value; options.mimeType="audio/mpeg"; var params = new Object();
 params.value1 = "test"; 
params.value2 = "param"; 
options.params = params; 
var ft = new FileTransfer();
 ft.upload(fileName, "192.168.1.214/MusicApplication/upload.php";, win, fail, options); 
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