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Kindly do have a look at below mentioned SQL:

$sql ="INSERT INTO
    demo_participant
    (name, meeting_id_id, password, user_view__url, key, contact_no, email)
    VALUES
    ('$part_name', (SELECT id FROM demo_meeting WHERE meetingID = '$mtngid'),
    '$attendee_password', '$join_url', $getit_part['data'], '$pr_mobile',
    '$pr_email')";

My problem is the above statement is working fine without key and its associated value $getit_part['data']

But whenever I am trying to store key value I am getting the error i.e:

Parse error: syntax error, unexpected '' (T_ENCAPSED_AND_WHITESPACE), expecting identifier (T_STRING) or variable (T_VARIABLE) or number (T_NUM_STRING) in /opt/lampp/htdocs/UI/user/joinmeeting.php on line 86

And when I am storing the value of $getit_part['data'] in another variable like $key then I am getting:

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'key,contact_no,email) VALUES('Rohitn',(SELECT id FROM demo_meeting WHERE ' at line 1

I know I am doing some syntax error but unable to debug it.

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Can you simply Echo the $sql and show it ? –  Bhavin Rana Aug 9 '12 at 6:58
    
i am showing the echo only –  user1481793 Aug 9 '12 at 7:08

3 Answers 3

up vote 4 down vote accepted

key is a reserved word in MySQL. escape it with backticks

`key`

and you can't combine select and values. Try

INSERT INTO demo_participant(name, 
                             meeting_id_id, 
                             password, 
                             user_view__url, 
                             `key`, 
                             contact_no,
                             email)
SELECT '$part_name', 
       id, 
       '$attendee_password',
       '$join_url',
       '$getit_part['data']',
       '$pr_mobile',
       '$pr_email'
FROM demo_meeting
WHERE meetingID = '$mtngid'
share|improve this answer
    
<br /> <b>Parse error</b>: syntax error, unexpected '' (T_ENCAPSED_AND_WHITESPACE), expecting identifier (T_STRING) or variable (T_VARIABLE) or number (T_NUM_STRING) in <b>/opt/lampp/htdocs/UI/user/joinmeeting.php</b> on line <b>87</b><br /> –  user1481793 Aug 9 '12 at 7:04
    
enclose $getit_part['data'] in {} like in Tomak's answer. –  juergen d Aug 9 '12 at 7:09
    
yeah got it now thanks juergen d and JYelton –  user1481793 Aug 9 '12 at 7:11

Encapsulate your array with curly braces:

$sql ="INSERT INTO
    demo_participant
    (name, meeting_id_id, password, user_view__url, key, contact_no, email)
    VALUES
    ('$part_name', (SELECT id FROM demo_meeting WHERE meetingID = '$mtngid'),
    '$attendee_password', '$join_url', {$getit_part['data']}, '$pr_mobile',
    '$pr_email')";

See Example #4 on PHP Array Documentation:

As in Perl, you can access a value from the array inside double quotes. However, with PHP you'll need to enclose your array between curly braces.

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I'll leave this answer here, but @juergen is correct; the embedded SELECT needs to be rewritten as in his example. –  JYelton Aug 9 '12 at 7:05

First error: You can put only simple variables like $key into SQL code. All expressions like array references ($getit_part['data']) need to be enclosed in {} for PHP to evaluate and substitute result as variables into SQL.

Second error: SQL syntax doesn't allow to put subqueries into VALUES clause of INSERT statement. Try using INSERT ... SELECT ... syntax instead, e.g.:

INSERT INTO dest (col1, col2)
SELECT val1, (SELECT val2 FROM table2 WHERE ...)

Notice that there's no FROM clause. You don't have to add it. It always selects single row this way.

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