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I have the following xml file code (from a page flip) and want to know if I can use a php while loop to generate the code in the xml file instead of manually having to type out from pages/ab74 to pages/ab98?

<page src="pages/ab62.jpg"/>
<page src="pages/ab63.jpg"/>
<page src="pages/ab64.jpg"/>
<page src="pages/ab65.jpg"/>
<page src="pages/ab66.jpg"/>
<page src="pages/ab67.jpg"/>
<page src="pages/ab68.jpg"/>
<page src="pages/ab69.jpg"/>
<page src="pages/ab70.jpg"/>
<page src="pages/ab71.jpg"/>
<page src="pages/ab72.jpg"/>
<page src="pages/ab73.jpg"/>
<page src="pages/ab74.jpg"/>

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closed as not a real question by hakre, Lusitanian, Jocelyn, Andrew, ЯegDwight Sep 24 '12 at 21:55

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Hi, welcome to SO. I'm a bit confused by your question... where are your page src urls coming from? Do you want to generate/save xml files or serve xml to the browser? – will-hart Sep 23 '12 at 21:30
    
Hi, I am doing a brochure page flip for a client and to display all pages of the brochure the pageflip im using requires each page to be listed as above in an xml file. But I wanted to use a php loop in the xml file to save me having to list out pages 1-98. Is this possible and if so, could you tell me how as this is all very new to me and I really appreciate your help. Do I also need to add an xml doctype etc? – Rob Harris Sep 24 '12 at 18:04

Absolutely. If you want to do it on a constant basis, you'll have to set the content-type to xml and use a URL Rewrite to allow your file.xml to point to an actual .php file.

<?php for ($i = 74; $i <= 98; $i++): ?>
<page src="pages/ab<?php echo $i; ?>.jpg"/>
<?php endfor; ?>
share|improve this answer
    
Hi, I am doing a brochure page flip for a client and to display all pages of the brochure the pageflip im using requires each page to be listed as above in an xml file. But I wanted to use a php loop in the xml file to save me having to list out pages 1-98. Is this possible and if so, could you tell me how as this is all very new to me and I really appreciate your help. Do I also need to add an xml doctype etc? – Rob Harris Sep 24 '12 at 18:06

To answer your question literally, yes it's possible. If this is all your XML is (which it shouldn't be because it's lacking a root node), then you just need to use a for() loop. Otherwise, have a look at the PHP SimpleXML library.

share|improve this answer
    
Hi, I am doing a brochure page flip for a client and to display all pages of the brochure the pageflip im using requires each page to be listed as above in an xml file. But I wanted to use a php loop in the xml file to save me having to list out pages 1-98. Is this possible and if so, could you tell me how as this is all very new to me and I really appreciate your help. Do I also need to add an xml doctype etc? – Rob Harris Sep 24 '12 at 18:07

did you mean that?:

<?php
for($i=75;$i<=98;$i++)
{
    echo '<page src="pages/ab' . $i . '.jpg"/>' . "\n";
}
share|improve this answer

That is just some output operation:

$image = "<page src=\"pages/ab%d.jpg\"/>\n";
foreach (range(62, 74) as $number) {
    printf($image, $number);
}
share|improve this answer
    
Hi, I am doing a brochure page flip for a client and to display all pages of the brochure the pageflip im using requires each page to be listed as above in an xml file. But I wanted to use a php loop in the xml file to save me having to list out pages 1-98. Is this possible and if so, could you tell me how as this is all very new to me and I really appreciate your help. Do I also need to add an xml doctype etc? – Rob Harris Sep 24 '12 at 18:05
    
@RobHarris: Please stop spamming. And if it's your job, do your job. Do you want training? – hakre Sep 24 '12 at 18:13
    
sorry, not spamming, didnt know if I had to reply to each individual - sorry new to this ! – Rob Harris Sep 24 '12 at 18:41

You can simply do this

$page = "<page src=\"pages/ab%d.jpg\"/>";
for($i = 62 ; $i <= 98; $i++)
{
    printf($page,$i);
}

Full Example Creating Page Flip Config File

$xmlFile = "xml/Pages.xml";
$xml = '<content width="600" height="800" bgcolor="cccccc" loadercolor="ffffff" panelcolor="3a6dac" buttoncolor="3a6dac" textcolor="d0e5f7">';
$page = "<page src=\"pages/ab%d.jpg\"/>\n";
for($i = 62 ; $i <= 98; $i++)
{
    $xml .= sprintf($page,$i);
}
$xml .= '</content>' ;
$xml = new SimpleXMLElement($xml);
$xml->saveXML($xmlFile);
share|improve this answer
    
many thanks for all your replies - it really helps when starting out – Rob Harris Sep 24 '12 at 17:32
    
You are welcome. .. – Baba Sep 24 '12 at 18:03

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