Only a few week age, I established a simple plugin for myself to showing the social share button in menu. Referred to Building Your Own Social Sharing Plugin for WordPress.

Then, the plugin was successful created. But I have a question of the syntax why If I added the below syntax in the program the checked="checked" will showing twice.

echo "<input type='checkbox' name='social-share' value='1' " . checked(1, get_option('social-share'), true) ." /> "; 

After that, I found another code to prevent this happen.

?>
  <input type="checkbox" name="social-share" value="1" <?php checked(1, get_option('social-share'), true); ?> /> Check for Yes
<?php

and Function Reference/checked displaying checked='checked'

checked( '1', get_option( 'wwo_enable_'.$lrole ), false )

I wondered if anyone can tell me why using HTML format to show the <?php checked(1, get_option('social-share-wechat'), true); ?> syntax will not show twice?

up vote 0 down vote accepted

You were seeing unexpected results because you were echoing a function that was already generating output.

The third argument for checked() is 'echo' which determines whether the function should output a value or return it instead. You needed the function to return a value in the context you were using it in.

echo '<input type="checkbox" name="social-share" value="1" ' . checked( 1, get_option( 'social-share' ), false ) . '/>'; 

https://codex.wordpress.org/Function_Reference/checked

The code you replaced it with handles things differently:

<input type="checkbox" name="social-share" value="1" <?php checked(1, get_option('social-share'), true); ?> />

Here you're no longer echoing the result of checked() therefore you do want it to generate output so it's correct to set the third argument to true.

  • Hi @Nathan Dawson, thank you for your response. Do you mean echo the checked( 1, get_option( 'social-share' ), true ) will return another echo result so that it will display checked="checked" twice? – Ilove112 May 18 '17 at 3:01
  • When you set the third argument, echo, to true in checked() it's going to output the checked string. You were using it in an echo statement so you needed the value to be returned, not output. – Nathan Dawson May 18 '17 at 3:07
  • I got it. Thanks a lot. – Ilove112 May 18 '17 at 3:46

Will you please try below thing:

<input type="checkbox" name="social-share" value="1" <?php if ( 1 == get_option('social-share') ) echo 'checked="checked"'; ?> >
  • The code you've posted is the whole reason the checked() function exists. – Nathan Dawson May 17 '17 at 13:51

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