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I am using the following code in my add user form:

<input type="text" size="50" name="name" 
value="{if isset($post.name)}{$post.name}{elseif isset($details.name)}{$details.name}{/if}" />

However the form returns blank in case of any error(PHP validation) but it should show post value($post.name)

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Are you assigning anything to $post.name and $details.name? I'm assuming they're arrays, so are you assigning anything to $post and $details, for that matter? Smarty (at least for version 2, not so sure about version 3) doesn't have a $post variable, but it does have $smarty.post –  GordonM May 24 '11 at 20:52
    
@GordonM yes i am assigning details in case of editing form, so should i update $post with $smarty.post ? –  seoppc May 24 '11 at 21:30
    
Your if statement should indeed work. What happens if you just use {$post.name} and {$details.name}? Can you included your php assignments? –  Paul DelRe May 24 '11 at 21:37

1 Answer 1

i have solved the issue mysql, it should be $smarty.post.name instead of $post.name , thanks for your support.

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