or a horse!
-Original Message-
From: CPT John W. Holmes [mailto:[EMAIL PROTECTED]
Sent: Tuesday, November 04, 2003 1:31 PM
To: Robert Sossomon; [EMAIL PROTECTED]
Subject: Re: [PHP-DB] Query Error
From: "Robert Sossomon" <[EMAIL PROTECTED]>
> The err
From: "Robert Sossomon" <[EMAIL PROTECTED]>
> The errors as it prints are:
>
> The query I just ran was: select * from GCN_items where `item_num` =
> '%fm-a294%'
> The query I just ran was: Resource id #2
> 0
Those aren't errors; it's just what you asked the script to display. Your
query simply
t Sossomon; [EMAIL PROTECTED]
Subject: Re: [PHP-DB] Query Error
From: "Robert Sossomon" <[EMAIL PROTECTED]>
> And here is the additem.php file where it check for the info in the
> field and it is erroring out.
It would be rather useful to know the error...
> $get_
From: "Robert Sossomon" <[EMAIL PROTECTED]>
> And here is the additem.php file where it check for the info in the
> field and it is erroring out.
It would be rather useful to know the error...
> $get_iteminfo = "select * from GCN_items where 'item_num' LIKE
> '%$_POST[sel_item_id]%'";
Take aw
If it's on MySQL, then the problem is that it doesn't support nested queries
:)
If it's on something else, i'm afraid i don't know :/
Back to MySQL, you can get around that by doing your "select author_code
from authorxcat" component query, then put the results into 'x', 'y', 'z'
format, then do
if you are using mysql, it doesn't support the sub-select.
"Wilmar Perez"
Echo your INSERT statement, so that you know what it looks like, if you
have the values you expect, field names are spelled correctly. that you're
not inserting char into int, etc.
Use mysql_errno() and mysql_err() (Check those against manual to determine
what error you are getting. Use mysql_
On Sunday 05 May 2002 14:44, erich wrote:
> when i perform query an mysql db, to insert a new record, the PHP says:
>
> Warning: Supplied argument is not a valid MySQL result resource in
> g:\wwwroot\phpusermanager-1.0\add_order.php on line 24
>
> the snippet is as follows
> // connect to the dat
Did you type this out or cut/paste? There was a comma missing between >>>
state"\"zip <<<. Should work when you add the comma.
Add a WHERE condition for the update, otherwise every row will be set to
these values.
Common practice is to use single quotes around the char variables, saves a
lot
Ok jas
> Ok what is wrong with this sql statement?
> $sql = "UPDATE $table_name SET
> c_name=\"$c_name\",s_addy=\"$s_addy\",city=\"$city\",state=\"state\"zip=\"zi
> p\",phone="\$phone\"";
insufficient checking:
comma missing between state and zip
" incorrectly escaped before phone
...
> I have
Try putting single quotes around your variables in your update statement
instead of the escaped double quotes, they are easier to read.
Also, were you wanting to update all entries in that table to the same,
c_name, s_addy, city, state, zip and phone? If not, you will need to
add 'where id=$
Looks fine, now retrieve the rows from the query.
> -Original Message-
> From: Randy Johnson [mailto:[EMAIL PROTECTED]]
> Sent: Thursday, January 25, 2001 12:46 PM
> To: [EMAIL PROTECTED]
> Subject: [PHP-DB] query error
>
>
> When I run any kind of query this is the value of result
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