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I am using the following code to convert a date in the format mm/dd/yy to show November, 19, 2008

echo date('F d, Y', strtotime('{$month}/{$day}/{$year}'));

In my database I have the values for $month, $day and $year stored as an INT.

When I add the variables into the date function, the output is wrong. I am getting an unexpected date. The date I have in the system is 2/1/1977 but the output gives December 31, 1969.

any ideas?

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What is the output, and what where you expecting? –  kevin cline Mar 28 '11 at 19:18
    
@pekka check again. thanks –  AAA Mar 28 '11 at 19:25

1 Answer 1

up vote 3 down vote accepted

I think the problem isyour single quotes around the string in strtotime

Single quotes wont parse and put in the variables value, it will be exactly that literal. you want to use doubles

$month = 1; $day = 2; $year = 2000;
echo date('F d, Y', strtotime("$month/$day/$year")); 
echo '    {$month}/{$day}/{$year}';  //gives exactly whats between the single quotes

Output :

January 02, 2000    {$month}/{$day}/{$year}

EDIT

for($=0;$i<count($month);$i++)
   echo date('F d, Y', strtotime($month[$i].'/'.$day[$i].'/'.$year[$i])) . '<br />'; 
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Thanks. that was it. –  AAA Mar 28 '11 at 19:27
    
How can i repeat this function for each row of users? –  AAA Mar 28 '11 at 19:34
1  
these users and their birthdays are in an array? –  jon_darkstar Mar 28 '11 at 19:37
    
No, the are stored seperately. I have 3 data fields: month, day, year. so each of them hold a number.. –  AAA Mar 28 '11 at 19:37
1  
so month day and year are parallel arrays? –  jon_darkstar Mar 28 '11 at 19:39

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