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I'm getting an exception saying Java URI Syntax Exception "java.io.IOException: java.net.URISyntaxException: Invalid % sequence: %wl in query at index 88:" when i try to connect from my android application.

It seems to be throwing the exception where in the URL it says "%wl" and following is the URL. is there a work around for this.

http://192.168.111.111:9000/RB/db.svc/upd?LinkId=184617ED1F21&IPs=fe80::1a46:17ff:feed:1f21%wlan0,192.168.1.127,&MNo=0771111111&sPin=000&Status=0
  • URLEncoder.encode to encode url queryString – ρяσѕρєя K Jan 8 '13 at 11:54
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If you want to use % in your URL the first you need to do is to encode it.

So first you need to replace that % with %25 in your string ....1f21%wlan0... with .....1f21%25wlan0.... before connecting.

You can use the following code for encoding the URL in Java

String encodedUrl = java.net.URLEncoder.encode(<your_url>,"UTF-8"); 

Have a look at the below links for more information.

1.How to encode url in java

2.URL encoding character reference

UPDATE :

If you don't want to use URL encoder then you can try this out :

yourURL.replaceAll("%", "%25");

It is fine here to replace a single special character, but it would be a tedious task to do like this if you have many special characters that require proper URL encoding.

| improve this answer | |
  • so you mean first to replace and then to encode the url? and when I do it it gives me a malformed url exception – Mr.Noob Jan 8 '13 at 12:08
  • if your are encoding it with URLEncoder then no need to replace, it will be automatically replaced. – Abubakkar Jan 8 '13 at 12:16
  • then there must be some problem with your actual url – Abubakkar Jan 8 '13 at 13:39
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    Managed to work it out. I just replaced the "%" with "%25" manually and it worked. did not need to use the URLEncoder at all. – Mr.Noob Jan 8 '13 at 14:53
  • I replaced "%" with "%25", it worked fine. This is what i used , [myURL.replaceAll("%", "%25")]. Hope, it will be useful for someone. Thanks – Nandagopal T Feb 12 '13 at 5:47

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