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for context: $caregiverName = $_POST["caregiverName"]; $queryValidationCaregiverName = $conn->query("SELECT names FROM CaregiverRegistrationData");

i tried all this approaches:

if ($queryValidationCaregiverName == $caregiverName){
        array_push($errors,"the name of the caregiver is mistyped. ");
    }
if ($queryValidationCaregiverName != $caregiverName){
        array_push($errors,"the name of the caregiver is mistyped. ");
    }
if ($queryValidationCaregiverName == $caregiverName){
        /* echo= "test"; */
    }else{
        array_push($errors,"the name of the caregiver is mistyped. ");
    }
if ($queryValidationCaregiverName != $caregiverName){
        /* echo= "test"; */
    }else{
        array_push($errors,"the name of the caregiver is mistyped. ");
    }

but none of them worked in the way that i wanted, what i wanted to do is, if the user dont type the name of the caregiver correctly, array_push occurs.

new code attempt:

$sql = $conn->query("SELECT COUNT(names) FROM caregiverRegistrationData WHERE names = '$caregiverName'");
$stmt = $conn->prepare($sql);
$stmt->bind_param("s", $caregiverName);
$stmt->execute();
$result = $stmt->get_result();
$user = $result->fetch_assoc();

if(mysqli_num_rows($user)!=1){
    array_push($errors,"the name of the caregiver is mistyped. ");
}

2nd code attempt:

$sql = "SELECT COUNT(names) as c FROM caregiverRegistrationData WHERE names = ?"
$stmt = $conn->prepare($sql);
$stmt->bind_param("s", $caregiverName);
$stmt->execute();
$result = $stmt->get_result();
$user['c'] = $result->fetch_assoc();

if($user['c'] != $caregiverName){
    array_push($errors,"the name of the caregiver is mistyped. ");
}
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  • Research how to use a WHERE clause. For your current issue $queryValidationCaregiverName is a result object, it cant be compared to a string. You need to fetch it. Commented Sep 9, 2023 at 19:12
  • @user3783243 so I added the where and fetched it, and now it's looking like that: drive.google.com/file/d/12Ld0tOBvwPqU_Z8F2HcP_9F4AluEKOVf/… just to give a little more context: I want to validate if the user typed correctly the name of the caregiver, so if right the result would be inserted in another table(this part is already working), but I assume that the problem right now is that $user is an array, not a string to be compared with $caregiverName, any suggestion of how to transform it or another approach that i can take? Commented Sep 9, 2023 at 22:02
  • Please post code in the question, not a link. You should use parameterized queries and prepared statements. You also should list what columns you want to select instead of selecting all columns. If you only need to know that there was a match select count(*) as c then check that the c index is >= 1. Commented Sep 9, 2023 at 23:56
  • i didnt use parameterized query there because if i put ? instead of '$caregiverName' the code dont work, tried using prepared statements and the count() function, but it went wrong too: the new code attempt is in the final part of the question itself, i tried putting it here but it unformatted Commented Sep 10, 2023 at 1:40
  • query or prepare is to be used, never both (and I'd argue never query). So $sql = $conn->prepare('SELECT COUNT(names) as c FROM caregiverRegistrationData WHERE names = ?"); then use $user['c'] to check the value. You don't use mysqli_num_rows with count as that will always give back 1 row. Need to check the actual number returned. Commented Sep 10, 2023 at 11:26

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