Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am having trouble getting this form to successfully submit the data to the database. I have verified that the database/table exists (schema shown below) and for some reason it's not inserting it into the database. When I try to submit sample data, it doesn't change the page and just sits there. What is going on?

<body>
<?php if($_SERVER["REQUEST_METHOD"] != "POST"){ ?>
<h1>My Favorite Foods</h1>

<form action="index.php" method="post" id="foodForm">
Name: <input type="text" name="foodname" id="nameField"></input><br />
Type: <select name="foodtype" id="typeField">
<option value="fruit">Fruit</option>
<option value="vegetable">Vegetable</option>
<option value="dairy">Dairy</option>
<option value="meat">Meat</option>
<option value="grain">Grain</option>
<option value="other">Other</option>
</select><br />
Number of Calories: <input type="text" name="foodcals" id="calsField"></input><br />
Healthy? <input type="checkbox" name="foodhealth" value="healthy" id="healthyField"></input><br />
Additional Notes:<br />
<textarea name="foodnotes" id="notesField"></textarea><br />
<input type="submit" value="Add" onclick="validateForm();return false;"></input>
</form>

<?php }else{ ?>
<!-- form handling and output printing stuff goes here -->
<?php $insert = "INSERT INTO Foods(Name, Type, NumCals, Healthy, Notes) VALUES ('$_POST[foodname]', '$_POST[foodtype]', '$_POST[foodcals]', '$_POST[foodhealth]', '$_POST[foodnotes]'"; 
$con = mysqli_connect("localhost","root");
if (mysqli_connect_errno())
{
    echo "Failed to connect to MySQL: " . mysqli_connect_error();
}
mysqli_select_db("mydb"); 
$result = mysqli_query($con, $insert); 
if ($result) { 
    echo "Food added successfully."; 
    /*while ($row = mysqli_fetch_array($result)) { 
        echo $row['Name'] . ", " . $row['Type'] . ", " . $row['NumCals'] . ", " . $row['Healthy'] . ", " . $row['Notes']; 
        echo "<br>"; 
     } */
} else { 
     echo "Error adding person";  
     mysqli_error($con); 
} 
} ?>
</body>
</html>

Schema:

Foods(PID INT NOT NULL AUTO_INCREMENT,PRIMARY KEY(PID),Name VARCHAR(20),Type VARCHAR(9),NumCals INT,Healthy BOOL,Notes TEXT)

share|improve this question

1 Answer 1

up vote 3 down vote accepted

This attribute in the submit button:

onclick="validateForm();return false;"

prevents the form from submitting. return false means that the browser should not perform the default action from clicking the button.

Assuming the validateForm() function returns a boolean indicating whether validation was successful, change that to:

onclick="return validateForm();"

Change:

} else { 
     echo "Error adding person";  
     mysqli_error($con); 

to:

} else { 
     echo "Error adding person: " . mysqli_error($con); 

So that the error message will be displayed.

And you're missing the ) at the end of your INSERT statement.

share|improve this answer
    
I'm now getting an error that says it cannot add food. Is there something wrong with my insert statement? If so, what is it? –  vsingal5 Oct 6 '13 at 1:23
    
What error do you get exactly? –  Andy Holmes Oct 6 '13 at 1:24
    
What does mysqli_error() show? –  Barmar Oct 6 '13 at 1:24
    
How do I figure out what mysqli_error() shows? It just echos "Food cannot be added." –  vsingal5 Oct 6 '13 at 1:24
1  
You're missing the close parenthesis at the end of the INSERT statement. –  Barmar Oct 6 '13 at 1:26

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.