I have put together what I think is a simple addition to a php form-processing script (to insert data in a database, after sending it through to an email).
For some reason, I always get the error message, and the actual input of the data never gets through to the database. I've added the query to the output, and all the received values seem alright.
Thanks in advance.
// username, passw, database are all defined earlier in code.
// all the variables are taken out of form inputs (and they all arrive fine by email.
mysql_connect(localhost,$username,$password);
#mysql_select_db($database) or die( "Unable to select database");
//inserting data order
$order = "INSERT INTO flights('restime', 'flyfrom', 'flyto', 'dateoutbound', 'outboundflex', 'datereturn', 'returnflex', 'pax', 'klasse', 'name', 'email', 'phone', 'comments', 'status') VALUES('$date', '$fly_from', '$fly_to', '$date_outbound', '$outbound_flex', '$date_return', '$return_flex', '$pax', '$class', '$name', '$email', '$phone', '$comments', '1')";
//declare in the order variable
$result = mysql_query($order); //order executes
if($result){
echo("<br>Input data is succeed");
} else{
echo("<br>Input data is fail");
echo $order;
}
Thanks a lot in advance.
Database configuration setting must be like below
$link=mysql_connect(localhost,$username,$password);
#mysql_select_db($database,$link) or die( "Unable to select database");
After this you can write your insert query and etc....
You should not use the single quotes for fields in the query. if you use the backticks, then you don't get error. Just like the following
You must use the mysql_error() function to check the error in the query. Check the below code.
I have found one more issue. You have to use single quotes around the hostname in mysql_connect function. This also may cause error.
I have used the following code. It is working fine for me.
<?php mysql_connect('localhost','root','');
#mysql_select_db('test') or die( "Unable to select database");
//inserting data order
$order = "INSERT INTO testone (`restime`, `flyfrom`, `flyto`, `dateoutbound`, `outboundflex`, `datereturn`, `returnflex`, `pax`, `klasse`, `name`, `email`, `phone`, `comments`, `status`) VALUES('$date', '$fly_from', '$fly_to', '$date_outbound', '$outbound_flex', '$date_return', '$return_flex', '$pax', '$class', '$name', '$email', '$phone', '$comments', '1')";
//declare in the order variable
$result = mysql_query($order) or die(mysql_error()); //order executes
if($result){
echo("<br>Input data is succeed");
} else{
echo("<br>Input data is fail");
echo $order;
}
error is in this query :
$order = "INSERT INTO flights('restime', 'flyfrom', 'flyto', 'dateoutbound', 'outboundflex', 'datereturn', 'returnflex', 'pax', 'klasse', 'name', 'email', 'phone', 'comments', 'status') VALUES('$date', '$fly_from', '$fly_to', '$date_outbound', '$outbound_flex', '$date_return', '$return_flex', '$pax', '$class', '$name', '$email', '$phone', '$comments', '1')";
You are using ' in-spite of using ` for the column name in the table.
use this query and i am sure it will run great
$order = "INSERT INTO testone (`restime`, `flyfrom`, `flyto`, `dateoutbound`, `outboundflex`, `datereturn`, `returnflex`, `pax`, `klasse`, `name`, `email`, `phone`, `comments`, `status`) VALUES('$date', '$fly_from', '$fly_to', '$date_outbound', '$outbound_flex', '$date_return', '$return_flex', '$pax', '$class', '$name', '$email', '$phone', '$comments', '1')";
:)
Related
I'm trying to connect an html form to a mysql database through php. This is my code for the php script:
include_once('db_connect.php');
if(isset($_REQUEST['submit'])) {
$lokotitle=$_POST['lokotitle'];
$description=$_POST['description'];
$category=$_POST['category'];
$showyourname=$_POST['showyourname'];
$yourname=$_POST['yourname'];
$lat=$_POST['lat'];
$lng=$_POST['lng'];
// Will add form validation here
if ($errorMessage != "" ) {
echo "<p class='message'>" .$errorMessage. "</p>" ;
}
else{
//Inserting record in table using INSERT query
$insqDbtb="INSERT INTO `new_loko`.`web_form`
(`lokotitle`, `description`, `category`, `showyourname`, `yourname`, `lat`, `lng`) VALUES ('$lokotitle', '$description', '$category', '$showyourname', '$yourname', '$lat', '$lng')";
mysqli_query($link,$insqDbtb) or die(mysqli_error($link));
?>
<script type="text/javascript">window.location = "submit_success.php";</script>
<?php
}
}
My include_once('db_connect.php') is properly working, but the php simply runs this part, checks that the connection is working, which it is, and then stops without actually uploading the data to the database. I can't figure out what's wrong with the code. Also, I had this working earlier and am not sure why it no longer is.
Thanks in advance for the much needed help.
declare your $errorMessage with empty then change value as per validations.
<?php
include_once('db_connect.php');
if(isset($_REQUEST['submit'])) {
$lokotitle=$_POST['lokotitle'];
$description=$_POST['description'];
$category=$_POST['category'];
$showyourname=$_POST['showyourname'];
$yourname=$_POST['yourname'];
$lat=$_POST['lat'];
$lng=$_POST['lng'];
$errorMessage="";
/* some validation
if(validation)
$errorMessage="some message";
-------------------
-------------------
-------------------
// Will add form validation here
*/
if ($errorMessage != "" ) {
echo "<p class='message'>" .$errorMessage. "</p>" ;
}
else{
//Inserting record in table using INSERT query
$insqDbtb="INSERT INTO `new_loko`.`web_form`
(`lokotitle`, `description`, `category`, `showyourname`, `yourname`, `lat`, `lng`) VALUES ('$lokotitle', '$description', '$category', '$showyourname', '$yourname', '$lat', '$lng')";
mysqli_query($link,$insqDbtb) or die(mysqli_error($link));
?>
<script type="text/javascript">window.location = "submit_success.php";</script>
<?php
}
}
?>
It looks like you may have some extra `s in your call database.table call
yours
$insqDbtb="INSERT INTO `new_loko`.`web_form`
(`lokotitle`, `description`, `category`, `showyourname`, `yourname`, `lat`, `lng`) VALUES ('$lokotitle', '$description', '$category', '$showyourname', '$yourname', '$lat', '$lng')";
mysqli_query($link,$insqDbtb) or die(mysqli_error($link));
try this:
$insqDbtb="INSERT INTO `new_loko.web_form`
(`lokotitle`, `description`, `category`, `showyourname`, `yourname`, `lat`, `lng`) VALUES ('$lokotitle', '$description', '$category', '$showyourname', '$yourname', '$lat', '$lng')";
mysqli_query($link,$insqDbtb) or die(mysqli_error($link));
I am using a simple php script to insert data into database but it's failing. The query just doesn't become successful without showing a single error which is why I am unable to figure out the problem. Some expert here help me please.
echo $name." ".$email." ".$pass." ".$phone." ".$area." ".$specialization." ".$city." ".$latitude." ".$longitude;
The result of echo is normal - without any null elements.
$query = mysqli_query($conn, "INSERT INTO users (name, email, pass, phone, area, specialization, hospital, city, latitude, longitude)
VALUES ('$name', '$email', '$pass', '$phone', '$area', '$specialization', '$hospital', '$city', '$latitude', '$longitude') ");
if ($query) {
echo "Status: Registeration Successful!";
// creating directory for user and storing dummy profile picture
//mkdir('../profiles/'.$email_trim, 0777);
//$result_copy = copy("img/dp.jpg.jpg", "../profiles/".$email_trim."/dp.jpg.jpg");
} else {
echo "Status: Err";
}
This "Status: Err" is always printed. I don't know why.
P.S I have double checked the database the field labels are fine.
UPDATE 1:
I added the
die(mysqli_error($conn));
statement and it says "DUPLICATE ENTRY '0' FOR KEY PRIMARY'.
PROBLEM AND SOLUTION:
The issue was that I had an 'id' field which was primary key of the table but it was not set to AUTO_INCREMENT. So, whenever I tried to insert a new record, I was actually inserting entries with duplicate PKs which was the issue. I change it to AUTO_INCREMENT and it solved the problem.
It seems you try to insert a new element with a PK = 0, but there is already a record with this key !
What is the primary key of your table ? Do you use an "id" field which is not shown in your insert statement ? Is this field AUTO_INCREMENT ?
It would be helpful to see the structure of your 'users' table.
Wild guess: looks like you may have defined an "id" column (or with whatever other name) which is primary key with default value "0", but it's not auto increment. That way you can insert 1 row and it will get "0" as "id" column's value, but you cannot insert another row because it will also try to use default value "0", which cannot happen as primary key has to be unique.
If that is the case, then please alter users table and make sure that the primary key column is also 'auto increment'.
Please check the proper error by adding below mentioned code inside else:
echo mysqli_errno($conn) . '----' . mysqli_error($conn);
<?php
if ($conn->query($sql) === TRUE) {
echo "New record created successfully";
} else {
echo "Error: " . $sql . "<br>" . $conn->error;
}
?>
$query = mysqli_query($conn, "INSERT INTO `users` (`name`, `email`, `pass`, `phone`, `area`, `specialization`, `hospital`, `city`, `latitude`, `longitude`)
VALUES ('$name', '$email', '$pass', '$phone', '$area', '$specialization', '$hospital', '$city', '$latitude', '$longitude') ") or die(mysqli_error());
$query = mysqli_query($conn, "INSERT INTO `users` (`name`, `email`, `pass`, `phone`, `area`, `specialization`, `hospital`, `city`, `latitude`, `longitude`)
VALUES ('$name', '$email', '$pass', '$phone', '$area', '$specialization', '$hospital', '$city', '$latitude', '$longitude') ");
use ` Tick maybe because there's some reserved word in your fields.
I think you doubled your close parenthesis and do not put $conn inside the query..
$query = "INSERT INTO users (name, email, pass, phone, area, specialization, hospital, city, latitude, longitude)
VALUES ('$name', '$email', '$pass', '$phone', '$area', '$specialization', '$hospital', '$city', '$latitude', '$longitude')";
mysqli_query($query, $conn);
Something like this. I hope this helps
I have following message box error, says Failed. these are my codes:
<?php
require('admin/connectdb.php');
if (isset($_POST['Sub']))
{
//get data from reservation form
$cutomername=$_POST['aname'];
$gender=$_POST['sex'];
$phoneno=$_POST['tel'];
$email=$_POST['email'];
$age=$_POST['age'];
$computerpart=$_POST['partcomp'];
$option1=$_POST['option1'];
$notes=$_POST['Notes'];
$query="INSERT INTO `assignmentwebprog`.`reservation` (`cumstomername`, `gender`, `phoneno`, `email`, `age`, `typeofcomputerpart`, `option`, `notes`)
VALUES ('$cutomername', '$gender', '$phoneno', '$email', '$age', '$computerpart', '$option1', '$notes')";
$qresult = mysql_query($query);
if ($qresult){
echo "<script type='text/javascript'>alert('submitted successfully!')</script>";
}
else
{
echo "<script type='text/javascript'>alert('failed!')</script>";
}
}
?>
up there is inserting value to phpmyadmin & every time i load/input then click enter then the page shows message box "failed"
these are my database:
<?php
$host="localhost"; // Host name
$username="root"; // username
$username="root"; // username
$db_name="assignmentwebprog"; //database name
$tbl_name="reservation";
// Replace database connect functions depending on database you are using.
mysql_connect("$host", "$username", "$password");
mysql_select_db("$db_name");
?>
currently my database is phpmyadmin, is there something missing with my code?
Check to see if the field in the database cumstomername is spelt correctly.
It should probably be customername
Passing the paramter
$cutomername=$_POST['aname'];
SQL
$query="INSERT INTO `assignmentwebprog`.`reservation` (`cumstomername`, `gender`, `phoneno`, `email`, `age`, `typeofcomputerpart`, `option`, `notes`)
VALUES ('$cutomername', '$gender', '$phoneno', '$email', '$age', '$computerpart', '$option1', '$notes')";
Change this line and try:
$qresult = mysql_query($query) or die(mysql_error());
check this :
$query="INSERT INTO reservation (cumstomername, gender, phoneno, email, age, typeofcomputerpart, option, notes)
VALUES ('$cutomername', '$gender', '$phoneno', '$email', '$age', '$computerpart', '$option1', '$notes')";
$qresult = mysql_query($query) or die(mysql_error());
You might have missing something in the $query which is mandatory for the table insertion.
First echo the query on the page. // echo $query ;
Then RUN the query in phpmyadmin and you will get the reason why it is not inserting in the table. See the error there.
I am having an issue with a MySQL query as follows:
My script generates this as an example query:
INSERT INTO `contacts`(`name`, `phone`, `email`, `city`, `state`, `date`) VALUES ('Test2', '123-456-7890', 'test#test.com', 'mesa', 'az', '04-14-2013')
Which if I drop directly into PHPMyA, works fine. However, the PHP script I am trying to use to send the query from my website is not working and I can't get it figured out. Here it is:
$sql = "INSERT INTO `contacts`(`name`, `phone`, `email`, `city`, `state`, `date`) VALUES ('$name', '$phone', '$email', '$city', '$state', '$date')";
mysql_query($sql);
$result = mysql_query($sql);
if($result)
{
echo("<br>Data Input OK");
}
else
{
echo("<br>Data Input Failed");
}
Nothing makes it to the MySQL DB and no PHP errors are displayed, however, if I echo $sql I get the exact query I posted previously.
Just remove the single line mysql_query($sql); on your code and you will be fine.. But you should better start practicing PHP MySQLi which stands for PHP MySQL Improved, such:
$con = mysqli_connect($host, $user, $password, $password);
$sql = "INSERT INTO `contacts`(`name`, `phone`, `email`, `city`, `state`, `date`) VALUES ('$name', '$phone', '$email', '$city', '$state', '$date')";
$result = mysqli_query($con, $sql);
if($result) {
echo("<br>Data Input OK");
} else {
echo("<br>Data Input Failed");
}
$sql = 'INSERT INTO Table_name (`id`, `name`) VALUES ("1", "php");
You are executing $sql twice in your script wich is causing the error, please remove
mysql_query($sql);
And it will be ready to go
I would also suggest to stop using mysql_query please switch to mysqli or PDO
Are you sure there is a valid connection (..mysql_connect())? Try using the full syntax like so..
$conn = mysql_connect(...);
$result = mysql_query($query, $conn);
Also try forcing a commit after you execute the statement -
$mysql_query("COMMIT", $conn);
You are running mysql_query twice. Reason of the error. Try running the following code.
$sql = "INSERT INTO `contacts`(`name`, `phone`, `email`, `city`, `state`, `date`) VALUES ('$name', '$phone', '$email', '$city', '$state', '$date')";
$result = mysql_query($sql) or die(mysql_error());
if($result){
echo("<br>Data Input OK");
} else{
echo("<br>Data Input Failed");
}
use this
"INSERT INTO `contacts`(`name`, `phone`, `email`, `city`, `state`, `date`) VALUES ('$_POST[name]', '$_POST[phone]', '$_POST[email]', '$_POST[city]', '$_POST[state]', '$_POST[date]')";
Try to use mysql_query($sql,$con); instead of mysql_query($sql);.
if(isset($_POST['submit']))
{
$name=$_POST['name'];
$age=$_POST['age'];
$address=$_POST['address'];
$ins="insert into table_name(`name`,`age`,`address`)values('".$name."','".$age."','".$address."')";
mysql_query($ins);
echo 'data inserted successfully';
}
i have a db query in php that is not inserting into database. Have used this format lots of times but for some reason its not working now. any ideas please
$query = "INSERT INTO `databasename`.`member_users` (`id`, `first_name`, `last_name`, `username`, `password`, `address1`, `address2`, `postcode`, `access`, `expires`) VALUES (NULL, '$fname', '$lname', '$email', '', '$add1', '$add2', '$postcode', '0', '')";
$result = mysql_query($query);
if($result){
echo"query inserted";
}else{
echo "nope";
}
Instead of echo "nope"; I suggest something like :
echo 'error while inserting : ['.mysql_errno().'] '.mysql_error();
echo 'query : '.$query;
This way you will be able to see the exact error and the query that was executed.
It can be a lot of things :
Constraint error with a foreign key
Data type error
Non-existent field
Wrong database or table name
Instead of...
$query = "INSERT INTO `databasename`.`member_users` ..."
do
$query = "INSERT INTO member_users ..."
Hope it works. :)
If databasename and member_users are variables then,
Instead of
$query = "INSERT INTO databasename.member_users...
do
$query = "INSERT INTO $databasename.$member_users...