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I have this following date format as my input

Sat 15 June

Is it possible to convert to

2013-06-15

I have used explode functions and done it. But its a long procedure though. I have also tried this:

date("Y-m-d",strtotime($input_date));

But this wont work properly...

Is there any direct function in PHP to convert into MySql date format ??? Or any built in function in php/ conversion function ????

Thanks in advance...

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2  
and where is the year in Sat 15 June ! –  6339 May 2 '13 at 10:12
    
PHP doesn't know which year to use. It was Sat 15 June back in 2002 as well, so try specifying the year. –  ɴ ᴀ ᴛ ʜ May 2 '13 at 10:15
    
No year is given as input, It must be the present year .... –  Manoj K May 2 '13 at 10:15
1  
Could you please define "not working properly"? What unexpected results are you getting? –  Lix May 2 '13 at 10:18
3  
@all until such time as the OP provides sufficient information to afford a proper answer it would be best practice not to "answer". r̶e̶p̶e̶a̶t̶i̶n̶g̶ regurgitating the same code only serves to waste everyones time who read through questions and effectively constitutes spam. –  Emissary May 2 '13 at 12:19

2 Answers 2

This outputs 2013-06-15 at my end.

<?php
$input_date = "Sat 15 June";
$formatted_date = date("Y-m-d",strtotime($input_date));
echo $formatted_date;
?>

Note that there might be some confusion about the year, since $input_date doesn't contain a year. I think PHP will use the current year. Be careful.

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1  
This code is identical to the code the OP has given... How is this an answer? –  Lix May 2 '13 at 10:17
1  
@Lix Well, then the answer is that his code is fine. The problem might lie somewhere else. "Not working properly" isn't much of a problem description anyway. –  jimmy May 2 '13 at 10:42
2  
"The problem might lie somewhere else" is not an answer. –  Lix May 2 '13 at 11:06
1  
I did describe what is wrong with your answer. There is nothing wrong with the code - as others have said - that code is correct. What's wrong with the answer is that "It works for me" is not a helpful answer. It would however, have been a helpful comment. –  Lix May 2 '13 at 11:21
1  
@Lix "Somehere else" as in a part of the code not shown in the question. Anyway, I see your point. But given the phrasing of the question, this is the only answer we can give, as shown by the other 2 answers. –  jimmy May 2 '13 at 11:32

Check this one,

echo date("Y-m-d",strtotime("Thu 2 May"));

If you do not supply year in strtotime() function, it will take current year as the year value.

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@the_down_voted_person please explain error in this code. –  6339 May 2 '13 at 10:54
    
Same as the rest of these answers - you are simply posting the exact same code the OP is already using. No additional information or help is offered - you might have just copied the code from the question... –  Lix May 2 '13 at 11:07
3  
Your answer is not wrong - it is also not helpful as no additional information/explanations are given.."It works for me" is not a helpful answer. It would however, have been a helpful comment. –  Lix May 2 '13 at 11:22
1  
You might think so - I do not. This is the reason for my downvote. –  Lix May 2 '13 at 11:33
3  
Prob is the OP not responding and people answering anyway instead of waiting for clarification. –  Pekka 웃 May 2 '13 at 14:20

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