12

I am trying to insert date into mysql but everytime it fails and comes out as 0000-00-00 in phpmyadmin

My date format is like 2012-08-06 (yyyy-mm-dd) and the date field type in database is date.

$date = "2012-08-06";
mysql_query("INSERT INTO data_table (title, date_of_event) 
             VALUES('". $_POST['post_title'] ."',
                    '". $date ."')") or die(mysql_error()); 

tried changing - to / or removing them, it doesn't work.

6
  • 2
    I suggest using timestamps (time()) instead of date. and use the date() function to convert it to any format when displaying.
    – MakuraYami
    Aug 6 '12 at 11:19
  • 3
    you have two problems (sql injection vulnerability and usage of an old, soon to be deprecated extension) that can be both solved if you switch to PDO (or mysqli)
    – mishu
    Aug 6 '12 at 11:19
  • @MakuraYami Why is that ? can you explain a little ?
    – xperator
    Aug 6 '12 at 11:32
  • @mishu yes I am aware of both problems :) it's just I found about PDO and mysqli yesterday and I want to finish up the coding then convert the extension and fix security problems.
    – xperator
    Aug 6 '12 at 11:34
  • 2
    @xperator, When you use timestamp it saves your time as a int. which will never give problems as you are having now. and it has the advantage of being able to be written out in ANY date format without any risky string-to-date functions.
    – MakuraYami
    Aug 6 '12 at 11:45
15

try

$date = "2012-08-06";
$date=date("Y-m-d",strtotime($date));
3
  • I agree with @Mike here, what's the difference between the two? codepad.org/KFF4pi5u (except for making the script a bit more complicated)
    – mishu
    Aug 6 '12 at 11:23
  • Well in past I encountered with same problem, and the way i did work. Again, I just tried to insert date as xperator did, the date was inserted. @xperator, will you mind printing the sql statement?
    – WatsMyName
    Aug 6 '12 at 11:26
  • This answer is nonsense -- it makes no change to the string. No one should be implementing this non-solution. Code-only answers are low value on Stack Overflow because they do very little to educate/empower thousands of future researchers. Aug 15 '20 at 12:23
14

try CAST function in MySQL:

mysql_query("INSERT INTO data_table (title, date_of_event)
VALUES('". $_POST['post_title'] ."',
CAST('". $date ."' AS DATE))") or die(mysql_error()); 
4
  • try again there was one extra comma
    – Omesh
    Aug 6 '12 at 11:22
  • whats is the exact data type of your field date_of_event?
    – Omesh
    Aug 6 '12 at 11:26
  • oops I had a tiny problem with that comma. fixed and works now :)
    – xperator
    Aug 6 '12 at 11:31
  • A prepared statement should be used for security/stability. This snippet should not be used in any professional code. Aug 15 '20 at 12:27
2

Unless you want to insert different dates than "today", you can use CURDATE():

$sql = 'INSERT INTO data_tables (title, date_of_event) VALUES ("%s", CURDATE())';
$sql = sprintf ($sql, $_POST['post_title']);

PS! Please do not forget to sanitize your MySQL input, especially via mysql_real_escape_string ()

2
  • No it's not the current date, today date was just an example :)
    – xperator
    Aug 6 '12 at 11:22
  • A prepared statement should be used for security/stability. This snippet should not be used in any professional code. Aug 15 '20 at 12:26
0

try converting the date first.

$date = "2012-08-06";

mysql_query("INSERT INTO data_table (title, date_of_event)
               VALUES('" . $_POST['post_title'] . "',
                      '" . $date . "')") 
           or die(mysql_error());
1
  • 1
    A prepared statement should be used for security/stability. This snippet should not be used in any professional code. Aug 15 '20 at 12:25
0

How to debug SQL queries when you stuck

Print you query and run it directly in mysql or phpMyAdmin

$date = "2012-08-06";
$query= "INSERT INTO data_table (title, date_of_event) 
             VALUES('". $_POST['post_title'] ."',
                    '". $date ."')";
echo $query;
mysql_query($query) or die(mysql_error()); 

that way you can make sure that the problem is not in your PHP-script, but in your SQL-query

How to submit questions on SQ-queries

Make sure that you provided enough closure

  • Table schema
  • Query
  • Error message is any
1
  • A prepared statement should be used for security/stability. This snippet should not be used in any professional code. Aug 15 '20 at 12:24
-1
$date=$year."-".$month."-".$day; 
$new_date=date('Y-m-d', strtotime($dob)); 
$status=0;  
$insert_date = date("Y-m-d H:i:s");  
$latest_insert_id=0; 

$insertSql="insert into participationDetail (formId,name,city,emailId,dob,mobile,status,social_media1,social_media2,visa_status,tnc_status,data,gender,insertDate)values('".$formid."','".$name."','".$city."','".$email."','".$new_date."','".$mobile."','".$status."','".$link1."','".$link2."','".$visa_check."','".$tnc_check."','".json_encode($detail_arr,JSON_HEX_APOS)."','".$gender."','".$insert_date."')";
1
  • A prepared statement should be used for security/stability. This snippet should not be used in any professional code. Furthermore, code-only answers are low value on Stack Overflow because they do very little to educate/empower thousands of future researchers. Aug 15 '20 at 12:26

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