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DONOR
donor-nic----username-----status
111----------ali----------available
222---------usman--------notavailable

another is

DONATION
donation_id------donor_nic-----date---
1----------------111----------2012/03/04
2---------------111-----------2012/06/07
3----------------111---------2012/07/08
4----------------222---------2012/03/03

now i want to update the date if it is already exits corresponding to donor_nic if date does not exists i want to insert that new date,.

i am using this query to fetching all dates according to corresponding donor_nic

SELECT donor.donor_nic, donation.lastdonationdate
FROM donor
JOIN donation ON donor.donor_nic = donation.donor_nic
WHERE username = 'ali'
GROUP BY donation.lastdonationdate

now this query works in phpmyadmin.. but when i use this in my page.. it does not match date.. i am matching date like this

   $sql= SELECT donor.donor_nic, donation.lastdonationdate
    FROM donor
    JOIN donation ON donor.donor_nic = donation.donor_nic
    WHERE username = 'ali'
    GROUP BY donation.lastdonationdate

$res=mysql_query($sql, $con);

if($res == $date)
{
echo "update";
}
else
{
echo "insert";
}

but this thing didnt work.. may be i am making mistake in conditional (if-else) statment.. plz help me what should i do.. thanks in advance

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closed as too localized by Matt Ball, hakre, tereško, PeeHaa, vascowhite May 30 '12 at 14:27

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

    
"Didn't work" is never a sufficient problem description. Have you tried using a debugger to step through your code? –  Matt Ball Apr 11 '12 at 13:52
    
no.. i am new in php .. i dun know about "debugger".. my query proper runs in phpmyadmin but when i run my page it always return "update" .. even if i enter new date –  maham Apr 11 '12 at 13:55

2 Answers 2

The problem is your $res variable is a result set object and not a string or date value. Also where did you define $date?

If you want to get an individual result from your query, use:

$res=mysql_result(mysql_query($sql, $con),0,1);

This will return the second column from the first row of your result, ( that is what the ,0,1 define as arguments to the mysql_result function) which I think is the date you are looking for.

check the docs for mysql_result: http://php.net/manual/en/function.mysql-result.php

mysql_query always returns an array, not a particular value. Assuming your $date varialble is in the right format the above should work.

EDIT

Also you need to change the way you define $SQL, put quotes around it, like this:

$sql= "SELECT donor.donor_nic, donation.lastdonationdate
    FROM donor
    JOIN donation ON donor.donor_nic = donation.donor_nic
    WHERE username = 'ali'
    GROUP BY donation.lastdonationdate";
share|improve this answer
    
$sql= SELECT donor.donor_nic, donation.lastdonationdate FROM donor JOIN donation ON donor.donor_nic = donation.donor_nic WHERE username = 'ali' GROUP BY donation.lastdonationdate $res=mysql_query($sql, $con); if($res == $date) { echo "update"; } else { echo "insert"; } –  maham Apr 11 '12 at 14:01
    
i put $res=mysql_result(mysql_query($sql, $con),0,1); but it again return "update" even i enter new date,, and i have declared variable date ... $date= $_REQUEST['lastdonationdate'] ::( –  maham Apr 11 '12 at 14:03
    
you should debug your code, put echo $res.' -- '.$date; on the line after $res=mysql_result(mysql_query($sql, $con),0,1); and it will display the two values you are comparing. You will also be able to see if you are getting the correct data from the server. –  jeffery_the_wind Apr 11 '12 at 14:13
    
Oh, also it looks like you aren't putting your $SQL string in quotes, see my updated answer. –  jeffery_the_wind Apr 11 '12 at 14:14
    
i have put strings.. i also put code u mentioned above.. it shows only 1 date i-e the first one in the record.. if u see ablove code.. it shows """---2012/03/04....""" and my new date.. it does not show all dates and still return "updated"... :( @jeffery –  maham Apr 11 '12 at 14:32

For the solution I have set to variables - the nic to test again and the date to test against, set at the top of the script. Has been edited where I felt needed but basically the script sets to variables (which you can update to be retrieved via form or whatever). Then builds the first mysql query, which will return an array of the required nic and date. A loop within a loop is required to grab the values returned. The values (and keys) and stored in there own arrays, which we then search upon using our pre determined variables, and you are informed if the insert/update was successful. Obviously requires work, but gets the job done.

$nic = "111";
$date2add = "14/12/13";

$sql="SELECT donor.donor-nic, donation.date
FROM donor
JOIN donation ON donor.donor-nic = donation.donor-nic
WHERE username = 'ali'
GROUP BY donation.date";

$res=mysqli_query($mysqli, $sql);

//may need error checking here to verify that $res has data.
$row = mysqli_fetch_array($res, MYSQLI_ASSOC);

//initiate a loop to select values
while ($row = mysqli_fetch_array($res, MYSQLI_ASSOC)) {
    //initiate a loop to store values into an array so that we can compare against later.
foreach ($row as $keys => $val) {
    echo "<br />$keys...$val<br />";
    $keysar[] = $keys;
    $valsar[] = $val;
}
}


 //using values above we will search the $valsar (created in the above loop) for $date2add (the date req. to be searched against)
if (in_array($date2add, $valsar) == $date2add) {
$sql = "UPDATE donation SET date = '$date2add' WHERE nic='$nic'";
$res = mysqli_query($mysqli, $sql) or trigger_error("Query: $sql\n<br />MySQL   Error: " . mysqli_error($mysqli));
if ($res) {
    echo "Record  updated correctly<br />";
} else {
    echo "failed  to update<br />";
}
} else {
  //these variables will have to set from somewhere if the script will insert correctly.
$sql = 'INSERT INTO donation ("$donation_id", "$nic", "$date")';
$res = mysqli_query($mysqli, $sql);
if (mysqli_affected_rows($mysqli) == 1) {
    echo "it inserted correctly<br />";
} else {
    echo "failed  to insert<br />";
}
}
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