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maybe this question is a bit noob style but I don't understand this JavaScript stuff. My question: how do I debug injected code of the following chrome extension example? The file popup.js executes send_links.js (this is the injected file, if I understand this correct). I would like to debug send_links.js. I cannot set any breakpoint because I cannot see send_links.js in the Developer Tools of Chrome. I tried the command "debugger;" in send_links.js but it does not work. "console.log("blah");" commands are ignored too.

Thank you!

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Are you sure you're looking at the right log? The background page, popup, and page with content script all have separate logs. If you put a console.log in your injected script and it doesn't show up in your page's console, you're either 1) not reaching the instruction in the code (e.g., due to a syntax error) or 2) you're not actually injecting your script. –  apsillers Jan 17 '13 at 18:25
    
The code is executed (the extension is working). But 2) is possible. Ok, how to do this? –  Brater Jan 17 '13 at 18:55

4 Answers 4

The debugger keyword will work if you open the Developer Tools for the current tab before you press the action button.

Also, if you want the script to display with its name, add the following line anywhere in send_links.js:

//@ sourceURL=send_links.js

Then the script will show up in the 'Content Scripts' tab of the Developer Tools of the current tab. There you can set breakpoints and such. But you need always to open the Developer Tools for the tab before pressing the button for this to work.

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All Injected Files or Content Scripts are Exposed to Page Developer Tools, You can set breakpoints and all regular stuff you do on regular Java Script Pages.

Image

All your console log(s) appear in the page they are injected.

Ex:

If i inject console.log(document.getElementsByTagName('body')[0].style); to http://www.google.co.in/, then i need to open devtools of http://www.google.co.in/ page and look in its console.

enter image description here

The Output appeared is similar to regular debugging result.

EDIT 1

They are exposed through chrome.tabs.executeScript() but indirectly, when you set debugger; command you can inspect code.

Demonstration

If some sample code injects

chrome.tabs.executeScript(35, {
    "code": "console.log('hi');debugger;//@ sourceURL=send_links.js"
});

debugger of page shows the script being injected.

enter image description here

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Does that include scripts that are injected using chrome.tabs.executeScript? I agree that the console output is there but it does not show the script itself. –  BeardFist Jan 18 '13 at 18:48
    
Yes, they can be if you use the //@ SourceURL convention. See my answer to this question. –  rsanchez Jan 19 '13 at 9:32
    
@rsanchez:Great +1 –  Sudarshan Jan 19 '13 at 10:12
    
@BeardFist:They are exposed to dev tools check my EDIT 1 –  Sudarshan Jan 19 '13 at 10:13
    
wouldn't that only work if the code was bug free? If there were any syntax errors it wouldn't execute debugger. –  BeardFist Jan 19 '13 at 15:54

I guess it's because you open the debugger tool on the tab and not on the extension. Right click on the icon of your extension and choose the Inspect popup menu item. You can find more informations on this page http://developer.chrome.com/extensions/tut_debugging.html

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I tried inspecting the "icon" but there is no inspection function. If I follow your link I reach the source popup.js - where I can step through but I don't reach send_links.js –  Brater Jan 17 '13 at 22:50

In this case the script is not injected until you open the popup. Once the popup window loads, it injects send_links.js, which in turn sends a message as soon as it is done getting the links. You could reverse this messaging and inject the file in the manifest:

"content_scripts": [{
  "matches": ["<all_urls>"],
  "js": ["send_links.js"]
}],

add an on message handler to send_links.js with support to send a response

chrome.extension.onMessage.addListener(function(message,sender,sendResponse){
  [...]
  sendResponse(links);
});

and then replace the onMessage handler and executeScript in the popup with a sendMessage callback

chrome.windows.getCurrent(function (currentWindow) {
  chrome.tabs.query({active: true, windowId: currentWindow.id},function(tab) {
    chrome.tabs.sendMessage(tab[0].id, {method: "getlinks"},function(links){
      for (var index in links) {
        allLinks.push(links[index]);
      }
      allLinks.sort();
      visibleLinks = allLinks;
      showLinks();
    });
  });
});

This arrangement will put send_links.js into every page so that you can debug it more easily. Once it is bug free you can switch back to programmatic injection because in cases like these it is more efficient. You can find the script under Sources > Content Scripts > One of them (plfdheimenpnchlahmhicnkejgmhjhom for example).

Edited source files

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instead of chrome.windows.getCurrent(function (currentWindow) {chrome.tabs.query({active: true, windowId: currentWindow.id} you could use chrome.tabs.query({active: true, currentWindow: true} which is a shorter version –  Sudarshan Jan 18 '13 at 18:53
    
@Sudarshan I agree, I just wanted to change as little of the code as possible and the example was using it like this. –  BeardFist Jan 18 '13 at 18:54

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