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I made a recipe website for my php class. The only thing I can't figure out is how to have the user add their own recipe. I created a form but when I hit the submit button I get this error "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 ''servings', 'image')VALUES (NULL, 'Oatmeal Pancakes II', 'I make this for my kid' at line 1" I would appreciate any help! Thank you!

<?php
// make a note of the current working directory relative to root.
$directory_self = str_replace(basename($_SERVER['PHP_SELF']), '', $_SERVER['PHP_SELF']);

// make a note of the location of the upload handler
$uploadHandler = 'http://' . $_SERVER['HTTP_HOST'] . $directory_self . 'upload.processor.php';

// set a max file size for the html upload form
$max_file_size = 30000; // size in bytes
?>
<?php
//include functions
require_once('includes/functions.php'); ?>


<!DOCTYPE HTML>
<html>
<head>
<meta http-equiv="Content-Type" content="text/html; charset=UTF-8">
<title>Add a Recipe</title>
<link href="Images/style.css" rel="stylesheet" type="text/css">
</head>


<?php
$name = isset($_POST['name']) ? $_POST['name'] : '';
$description = isset($_POST['description']) ? $_POST['description'] : '';
$ingredients = isset($_POST['ingredients']) ? $_POST['ingredients'] : '';
$preparation = isset($_POST['preparation']) ? $_POST['preparation'] : '';
$category_id =  isset($_POST['category_id']) ? $_POST['category_id'] : '';
$servings =  isset($_POST['servings']) ? $_POST['servings'] : '';
$image =  isset($_POST['image']) ? $_POST['image'] : '';




//connect to database
require_once('includes/mysqli_connect_recipe.php');

//if submit button clicked
if(isset($_POST['submit'])){
    $valid = true;

    // require name, description, ingredients and preparation with at least 2 characters
    if(strlen($name) < 2){
        $valid = false;
        echo "Please provide a valid recipe name.<br>";
    }

    if(strlen($description) < 2){
        $valid = false;
        echo "Please provide a valid description.<br>";
    }

        if(strlen($ingredients) < 10){
        $valid = false;
        echo "Please provide valid ingredients.<br>";
    }

        if(strlen($preparation) < 10){
        $valid = false;
        echo "Please provide valid instructions.<br>";
    }



    //sanitize servings
    $servings = intval($servings); //force $servings to be a number (0 if a string is entered)

    // sanitize against SQL injections (do this for every field that's coming from the form)
    $name = mysqli_real_escape_string($dbc, $name);
    $description = mysqli_real_escape_string($dbc, $description);
    $ingredients = mysqli_real_escape_string($dbc, $ingredients);
    $preparation = mysqli_real_escape_string($dbc, $preparation);


    // sanitize against XSS attacks - DO THIS TO ALL FIELDS
    $description = strip_tags($description);
    $name = strip_tags($name);
    $ingredients = strip_tags($ingredients);
    $preparation = htmlspecialchars($preparation);

    if($valid){

// insert SQL
$insert = "INSERT INTO `sburg5`.`recipes` (`recipe_id`, `name`, `description`, `ingredients`, `preparation`, `category_id`, 'servings', 'image')VALUES (NULL, '$name', '$description', '$ingredients', '$category_id', '$servings', '$image');";


// execute insert query
$result = mysqli_query($dbc, $insert) or die(mysqli_error($dbc));

echo "Thank you for submitting a recipe!";  




// output recipe
while($row = mysqli_fetch_array($result)){
    echo "<h3>{$row['name']}</h3>
    <p><img src=\"data:image/jpeg;base64,' . base64_encode{$row['image']} . '\"></p>
    <p>" . $row['description'] . "</p>
    <p>" . nl2br($row['ingredients']) . "</p>
    <a href=\"addarecipe_edit.php?recipe_id={$row['recipe_id']}\">[edit]</a>
    <a href=\"addarecipe_delete.php?recipe_id={$row['recipe_id']}\">[delete]</a>

    <hr>";

}
}
}



?>
<form id="Upload" action="<?php echo $uploadHandler ?>" enctype="multipart/form-data" method="post"> 
  <p>
    <label for="name">Recipe Name:</label>
    <input type="text" name="name" id="name" >
    </p>
   <p>
    <label for="servings">Servings:</label>
  <input type="text" cols="50"  name="servings" id="servings">
  </p>
  <p>
    <label for="description">Description:</label>
    <textarea rows="4" cols="50" name="description" id="description"></textarea>
  </p>
  <p>
    <label>Type of Recipe:
      <input type="radio" name="category_id" value="1" id="category_0" >Main Entree</label>
    <label>
      <input type="radio" name="category_id" value="2" id="category_1">Appetizer</label>
    <label>
      <input type="radio" name="category_id" value="3" id="category_2" >Side Dish</label>
    <label>
      <input type="radio" name="category_id" value="4" id="category_3" >Dessert</label>
     </p>
  <p>

    <label for="ingredients">Ingredients:</label>
    <textarea rows="10" cols="50" name="ingredients" id="ingredients" placeholder="Separate each ingredient with a return."></textarea>
  </p>
     <p>
    <label for="preparation">Preparation:</label>
    <textarea rows="10" cols="50" name="preparation" id="preparation"></textarea>
  </p>
    <p>

<input name="MAX_FILE_SIZE" value="<?php echo $max_file_size ?>" type="hidden">
<label for="file">File to upload:</label>
            <input id="file" type="file" name="file"> 


<p class="submit">
<input type="submit" name="submit" value="Upload me!">
</form>
</p>

<?php
// close connection to database
mysqli_close($dbc); ?>
share|improve this question

closed as too localized by Michael Berkowski, andrewsi, NullPoiиteя, Jocelyn, Soner Gönül May 15 '13 at 6:53

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

1  
Use a backtick ` around identifiers, not ' (or none if they aren't reserved words). –  Wrikken May 15 '13 at 2:11
    
WHy are you inserting NULL in recipe_id ? –  karthikr May 15 '13 at 2:13

2 Answers 2

The reason why your query won't work is because your are wrapping the column name with single quotes. They are identifiers and not string literals so they shouldn't be wrap with single quote.

INSERT INTO recipes (`recipe_id`, `name`, `description`, 
                     `ingredients`, `preparation`, 
                     `category_id`, 'servings', 'image')
                                    ^ the problem is here
                                    ^ it should be backtick

If it happens that the column names and/or tables names used are reserved keywords, they can be escape with backticks not with single quotes.

In this case, the backticks aren't required since none of them are reserved keywords.

Other links:

share|improve this answer

well its clear that you used 'servings', 'images' which should have been servings and images ... but i think INSERT INTO table_name VALUES (value1, value2, value3,...) is the syntax you should be using. for example: $sql = "INSERT INTO tutorials_tbl ". "(tutorial_title,tutorial_author, submission_date) ". "VALUES ". "('$tutorial_title','$tutorial_author','$submission_date')"; https://dev.mysql.com/doc/refman/5.5/en/insert.html

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