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I have a mySQL table with a text field named "body" and a title field named "title". I want to choose the first 100 characters of the text field "body" by like this:

$query="SELECT title, LEFT(body, 100) FROM table";
$result = mysql_query($query);

and then output the result in a web page:

while ($row = mysql_fetch_array($result)){
  echo "...html... {$row["title"]} ...html... {$row["body"]} ...html...";

but I get an error: "Notice: Undefined index: body in C:\wamp\www\index.php on line 299" Can somebody help? Thanks.

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You can see what's happening if you do print_r( $row ); (which, quite frankly, should instinctively be the first debugging step in all cases like this). –  Juhana Oct 10 '11 at 19:09
You are not escaping your echo'd output, use {hmtlentities($row['title'])} to prevent XSS attacks. –  Johan Oct 10 '11 at 19:19
thanks for the warning Johan but when I try this I get: ( ! ) Parse error: syntax error, unexpected T_ENCAPSED_AND_WHITESPACE, expecting T_STRING or T_VARIABLE or T_NUM_STRING in C:\wamp\www\index.php on line 287 –  Kostas Oct 10 '11 at 20:26

3 Answers 3

You need to rename your field with an alias when you apply functions like LEFT() to it, otherwise you have no easy way to reference it by name.

SELECT title, LEFT(body, 100) AS body FROM table
                              ^^^^^^^ give name to field

Now your reference to {$row["body"]} should work correctly.

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Thanks a alot, It works! –  Kostas Oct 10 '11 at 20:23

You have to name your field or access it with LEFT(body, 100) if you apply some function:

$query = "SELECT title, LEFT(body, 100) as body FROM table";
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thanks a lot for the answer –  Kostas Oct 10 '11 at 20:25

Doing that creates an unnamed column. Just add an alias:

$query="SELECT title, LEFT(body, 100) AS BODY FROM table";
$result = mysql_query($query);
share|improve this answer
thanks for the answer –  Kostas Oct 10 '11 at 20:25

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