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I'm trying to upload a csv file to my mysql table with php.

I heard about the inline command but the problem is that the csv date format is dd/mm/yyyy and the mysql format is yyyy-mm-dd.

I tried almost every Date convert function but it doesn't worked out. always see 0000-00-00 on the Mysql Table.

How can I convert it correctly?

This is the last thing I tried:

($date[0] is the date cell in the csv. - 26/05/2016, and the second column in the mysql is the date)

while ($data = fgetcsv($handle, 1000, ",")) 
    {
        $date = strtotime($data[0]); 
        $newDate = date("d-m-Y", strtotime($data[0]));
        $trydate = date("Y-m-d", strtotime($newDate));
        echo $newDate . "<br>". $date. "<br>" . $data[0] . "<br>". $trydate. "<br>";
        $import="INSERT INTO `testresult` (cityid, date, testnum,result) VALUES('$data[1]','$newDate','$data[3]','$data[2]')";

        mysqli_query($con,$import) or die(mysql_error());
    }

The output was:

01-01-1970
(blank)
26/05/2015
1970-01-01
0
2

strtotime waiting an input an expected format.

You need to split your string, and create a Y-m-d fromat from it, or you can use the DateTime object.

$dateString = '11/05/2016';
$Date = DateTime::createFromFormat('d/m/Y', $dateString, new DateTimeZone(('UTC')));
echo $Date->format('Y-m-d');

OUTPUT

2016-05-11 

With strtotime

$string = '26/05/2016';
$trydate = date("Y-m-d", strtotime(substr($string, -4) . "-" . substr($string, 3, 2) . "-" . substr($string, 0, 2)));
echo $trydate;

Result are the same.

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  • I whole heartedly approve of using the DateTime object :)
    – Catharsis
    May 11 '16 at 9:59
  • @Catharsis I am working on a project where I should use dates what is out of the range of unix timestamp. So this was my first time when I am using DateTime. I can't believe that I could live without it. The other advantage is the DateTimeZone thing. Love it :)
    – vaso123
    May 11 '16 at 10:02
  • @lolka_bolka Thanks! It worked... I also tried with explode ("/" etc.) and It wored too. but I'm curious..is there a way to do that if I don't know the date format in the csv? I mean kind of universal converting?
    – Dvir Naim
    May 11 '16 at 10:16
  • There is no universal solution. You can use the substr thing always, when date is in dd[any separator]mm[any separator]yyyy so only the separator could change. What substr things do? Get the last 4 string, add a - thne get the 5,6 chars add - string and get the first 2 chars. If this was your question. strtotime waiting yyyy-mm-dd fromat, (or Y-m-d H:i:s)
    – vaso123
    May 11 '16 at 10:19
  • got it.. any way - Thank you very very much!! :) :) :)
    – Dvir Naim
    May 11 '16 at 10:21
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I believe you need to convert the / to - so that strtotime understands the format..

for example

while(...) {
    $date = date('Y-m-d', strtotime(str_replace('/', '-', $data[0])));
    echo $date;
    $import = "...";
}
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You need to use the SET clause, along with a variable to reference the contents of the row at that column. In your column list, you assign your date column to a variable name. You can then use it in your SET statement.

LOAD DATA LOCAL INFILE 'file.csv' INTO TABLE testresult
FIELDS TERMINATED BY ','
ENCLOSED BY '"'
LINES TERMINATED BY '\n'
(cityid, @var1, testnum,result)
set dateOfBirth = STR_TO_DATE(@var1, '%d/%m/%y')

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