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You can't access the Hangout URL from the button once clicked. it creates a fresh Hangout every time, and keeps it's location to itself. A better process would be to create a Hangout event far in the future and get the resulting Hangout URL. Write your Javascript to use AJAX to Ping a server that emails you that a person is going to the hangout, and then ...


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there is currently no way using the sites api. google sites does supoort page level permissions for years now but unfortunately the api was never updated by google to allow this.


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Another answer could be to have the first link in the anchor tag and other ones in the click handler, like this: <a id="resource-link" href="http://www.site1.com" target="_blank">My Link</a> <script type="text/javascript"> document.getElementById("resource-link").addEventListener("click", function(e){ ...


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You could change the element from an anchor to a span and style it to look like a link: head <style> #resource-link{ color: blue; cursor: pointer; text-decoration: underline; } </style> body <span id="resource-link">My Link</span> <script type="text/javascript"> ...


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Is your site shared publicly? Go to your Site's Sharing and Permissions settings (open the site while logged in, click the gear a the top right and select Manage Site near the bottom of the list. Select Sharing and Permissions at the right) and select the top level of the site listing. Then select the first item in the Who Has Access list and make sure you ...


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Some time ago I wrote a class for myself to handle OAuth2 authentication with Google APIs. It might serve as an example for you. And, yes, you need to register an "application", but that is just to get the client id/secret. Some notes: The class uses the 'offline' access type to obtain credentials that can be stored and re-used in the future. The settings ...


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You can determine the size of the display via CSS Media Queries. For example, adding this to your CSS causes the form to display differently depending on the device's screen size: @media only screen and (min-device-width: 413px) and (max-device-width: 415px) { /* iPhone 6+ */ #main, #dialog { zoom: 3; background: red; } } @media only screen and ...


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You should have an array of images After the form is submitted you can use random for the index of the array images Sample Code var arrayImglocation = ['img1.jpg','img2.jpg']; var rand = arrayImglocation[Math.floor(Math.random() * arrayImglocation.length)];



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