Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm attempting to create a page that displays and refreshes an image from a webcam (camimg.jpg), but displays a static image (notlive.jpg) if the image hasn't been updated recently. I've found the AJAXCam script, which serves the purpose of reloading the "live" image at a set interval (15 secs), yet with no Javascript experience I can't figure out how to determine when the image was last updated in order to decide whether or not camimg.jpg or notlive.jpg should be displayed.

My limited experience with programming has me thinking it should be something along the lines of:

pageLoaded = time page loaded in browser
imageUpdated = time the image was uploaded to server

if imageUpdated is not within 20 seconds of pageLoaded:
    display notlive.jpg
else:
    run AJAXCam

The AJAXCam code (initially called by <body onLoad="holdUp()">) is as follows:

<script type="text/javascript">
<!--
//
//AJAXCam v0.8b (c) 2005 Douglas Turecek http://www.ajaxcam.com
//
function holdUp()
{
//
// This function is first called either by an onLoad event in the <body> tag
// or some other event, like onClick.
//
// Set the value of refreshFreq to how often (in seconds)
// you want the picture to refresh
//
refreshFreq=15;
//
//after the refresh time elapses, go and update the picture
//
setTimeout("freshPic()", refreshFreq*1000);
}

function freshPic()
{
//
// Get the source value for the picture
// e.g. http://www.mysite.com/doug.jpg and
//
var currentPath=document.campic.src;
//
// Declare a new array to put the trimmed part of the source
// value in
//
var trimmedPath=new Array();
//
// Take everything before a question mark in the source value
// and put it in the array we created e.g. doug.jpg?0.32234 becomes
// doug.jpg (with the 0.32234 going into the second array spot
//
trimmedPath=currentPath.split("?");
//
// Take the source value and tack a qustion mark followed by a random number
// This makes the browser treat it as a new image and not use the cached copy
//
document.campic.src = trimmedPath[0] + "?" + Math.random();
//
// Go back and wait again.
holdUp();
}

// -->
</script>

Is what I'm trying to accomplish even possible? And if so, how would I go about implementing it? Thanks in advance for the help!

share|improve this question
    
For those who may find this question and face a similar problem, I've found cavemonkey50's Webcam Update Script. Combining his PHP with the script for AJAXCam delivers exactly the result I originally intended. –  bobby Oct 11 '10 at 20:05

1 Answer 1

up vote 1 down vote accepted

There is no way to do it in javascript.

Your only option is, in case you have access to server side languages like PHP you can send a simple HEAD request and check Last Modified header of the image then report it back to the browser via Ajax.

share|improve this answer
    
Thanks for your input! –  bobby Oct 11 '10 at 19:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.