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.

Hi I've a HTML with links to differents albums, and I would like just click on a simple link to see the first picture from the gallery and then navigate. the problem is that each album is inside from other HTML .. in the galleries.html are just the links to albums.

Example: galleries.html

 <td><a href="albumprueba.php"><img   src="album_prueba1/001.jpg" alt="image19" width="91%" height="56" /></a></td>
            <td><a href="albumprueba2.html"><img    src="album_prueba2/40.jpg" alt="image20" width="99%" height="60"/></a></td>

PHP of a gallery:

     <a  class="fancyboxi" data-fancybox-group="gallery" title="Laurea" 
href="album_prueba1/<?php echo $archivos[$imagen_a_empezar]?>">
<img  src="album_prueba1/<?php echo $archivos[$imagen_a_empezar]?>" alt=""   width="19%"/></a>

any idea?

share|improve this question

1 Answer 1

up vote 1 down vote accepted

index.htm

<html>
<head>
    <title></title>
    <link href="jquery.fancybox-1.3.4.css" rel="stylesheet" type="text/css" />
    <script type="text/javascript" src="http://code.jquery.com/jquery-1.8.2.js"></script>
    <script src="jquery.fancybox-1.3.4.js" type="text/javascript"></script>
</head>
<body>
<a href="#" id="manualCall1">Gallery 1</a><br/>
<a href="#" id="manualCall2">Gallery 2</a>
<script type="text/javascript">
    $(document).ready(function () {
        $("#manualCall1").click(function () {
            $.getJSON('gallery1.json', function (data) {
                $.fancybox(data, {
                    'index': $(this).data('index'),
                    'padding': 0,
                    'transitionIn': 'none',
                    'transitionOut': 'none',
                    'type': 'image',
                    'changeFade': 0
                });
            });
        });
        $("#manualCall2").click(function () {
            $.getJSON('gallery2.json', function (data) {
                $.fancybox(data, {
                    'index': $(this).data('index'),
                    'padding': 0,
                    'transitionIn': 'none',
                    'transitionOut': 'none',
                    'type': 'image',
                    'changeFade': 0
                });
            });
        });
    });
</script>
</body>
</html>

gallery1.json

[{
    "href" : "https://lh5.googleusercontent.com/-uK9RF21pLaw/T0-bfLydozI/AAAAAAAAG2Q/CHSPYlMM5hA/w339-h225-n-k/_DSC1774_DRI_PS_small.jpg", 
    "title" : "image title 1"
}, {
    "href" : "https://lh4.googleusercontent.com/-B9Fop2ZofLI/T5JZiYzoZKI/AAAAAAAAH5M/0X6lYTa8LAs/w402-h266-n-k/_DSC8800-HDR_corrected_PS_small.jpg",
    "title" : "image title 2"
}, {
    "href" : "https://lh6.googleusercontent.com/-MtVcdgn6ZA0/T6LSPnrxfbI/AAAAAAAAIP8/g_BubTeiVbY/w467-h310-n-k/_DSC3079_DRI_PS_transf_small.jpg",
    "title" : "image title 3"
}]

gallery2.json

[{
    "href" : "https://lh4.googleusercontent.com/-PmHloor5LiU/T7K0_5nq55I/AAAAAAAAIcI/qz8NYty16Yo/w400-h248-n-k/_DSC3336_DRI_PS_defish_small.jpg", 
    "title" : "image title 2 1"
}, {
    "href" : "https://lh3.googleusercontent.com/-Okzptj_C2cI/T76BCKM4asI/AAAAAAAAKSE/gvPy2sKdbmU/w386-h254-n-k/_DSC3533_DRI_PS_defish_small.jpg",
    "title" : "image title 2 2"
}, {
    "href" : "https://lh6.googleusercontent.com/-snm10rkSqDo/T94UWhaFGjI/AAAAAAAALAk/X7b5dVcSKb4/w412-h273-n-k/_DSC3440_DRI_PS_defish_small.jpg",
    "title" : "image title 2 3"
}]
share|improve this answer
    
in the example is when you have the images in the same html,no? –  berti Nov 29 '12 at 23:02
    
You can get content of different html with Ajax and place it to same html of your page –  Web Developer Nov 29 '12 at 23:05
    
mmm sorry but i'm a beginner and i don't understand.. :S –  berti Nov 29 '12 at 23:08
    
I changed my answer –  Web Developer Nov 29 '12 at 23:25
    
I'm continuing without understand.. :( , inside the DIV I should put all the link albums? –  berti Nov 29 '12 at 23:30

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.