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I am currently developing an application that will be communicating with a database via a PHP service I have written.

The service I am having problems with is one that should look for a row or rows in a table based on a search string from the users.

The PHP below is designed to recieve a GET request with a variable of "name" which will be the data the SQL query uses. I cannot see anything wrong with my code however the rows returned from a search is always 0.

// checks for the post data
if (isset($_GET["name"])) {
    $name = '%' . $_GET['name'] . '%';

    // get a list of products from the database
    $result = mysql_query("SELECT * FROM products WHERE name LIKE $name");

    if (!empty($result)) {
        // check for empty result
        if (mysql_num_rows($result) > 0) {

            $result = mysql_fetch_array($result);

            $products = array();
            $products["id"] = $row["id"];
            $products["name"] = $row["name"];
            $products["type"] = $row["type"];
            $products["price"] = $row["price"];
            $products["photo"] = $row["photo"];
            // success
            $response["success"] = 1;

            // products node
            $response["products"] = array();

            array_push($response["products"], $products);

            // echoing JSON response
            echo json_encode($response);
        } else {
            // no products found
            $response["success"] = 0;
            $response["message"] = "No products found";

            // echo no products JSON
            echo json_encode($response);
        }
    } else {
        // no products found
        $response["success"] = 0;
        $response["message"] = "Search Complete... No products found";

        // echo no products JSON
        echo json_encode($response);
    }
} else {
    // required field is missing
    $response["success"] = 0;
    $response["message"] = "Required field(s) is missing";

    // echoing JSON response
    echo json_encode($response);
}

I have an entry in the table it is looking at and a name of "crisps", so when I send a get request with data of say "cr" i would expect to see that entry in the results, however it returns 0 rows.

Then whats even stranger is when I run the SQL below directly against my database it actually pulls back the correct record.

SELECT * FROM products WHERE name LIKE "%cr%"

Any ideas??

share|improve this question
    
Note that all mysql_* functions are deprecated (see the red box). You also need to escape % and _ in $_GET['name']. –  Marcel Korpel Mar 1 '13 at 14:12
    
Off-Topic Help: Your going to have more issues after you solve this. See: $result = mysql_query(); then you have $result = mysql_fetch_array() but then you use $row["price"]. $row will be undefined and $result will contain an array of arrays. Best wishes :-) –  phpisuber01 Mar 1 '13 at 14:12

2 Answers 2

up vote 1 down vote accepted

In your query you need to add the quotes ' to your '$name'

  $result = mysql_query("SELECT * FROM products WHERE name LIKE '$name'");
share|improve this answer

Because you didn't wrap the value with single quote, remember that it is a string literal.

SELECT * FROM products WHERE name LIKE '$name'

As a sidenote, the query is vulnerable with SQL Injection if the value(s) of the variables came from the outside. Please take a look at the article below to learn how to prevent from it. By using PreparedStatements you can get rid of using single quotes around values.

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