I just learned mysqli since Mysql_ queries is deprecated and people keep telling me to use mysqli instead

so for starter I make a simple code to connect, insert and show data I have no problem making connection, inserting data to database but I cannot show the data using mysqli_fetch_array

here is my code :

<?php
 $sql=("SELECT * from data_orang");
 $hasil=mysqli_query($con,$sql);
  while(mysqli_fetch_array($hasil)){
  echo "nama : $hasil[nama] <br>
      umur : $hasil[umur] <br>
      kelamin : $hasil[kelamin] <br>";
  }
 ?>

this is what I've tried

   echo " nama : $hasil['nama'] <br>
          umur : $hasil['umur'] <br>
          kelamin : $hasil['kelamin'] <br>

I also tried adding mysqli_assoc and mysqli_free_result($hasil) but it does not work

  • I use procedural since I'm used to it, if you want to give answer please give it using procedural style I haven't tried the object-oriented style yet – Citra45Abadi Jul 29 '16 at 8:08
up vote 1 down vote accepted

As its says: "Cannot use object of type mysqli_result as array error". You have to create an array from result.

while($result = mysqli_fetch_array($hasil)){
  echo "nama : $result[nama] <br>
      umur : $result[umur] <br>
      kelamin : $result[kelamin] <br>";
  }
  • thank you. it worked. so it is different from the old mysql query – Citra45Abadi Jul 29 '16 at 8:13
  • your welcome and old mysql_* extension was same too... row = mysql_fetch_array($query) – Mehmet SÖĞÜNMEZ Jul 29 '16 at 8:27

You have to assign the fetch array to an array variable. I this is common both in mysql and mysqli.

while($row = mysqli_fetch_array($hasil)){
  echo "nama : ".$row ['nama'] ."<br>
      umur : ". $row ['umur'] ."<br>
      kelamin :". $row ['kelamin'] ."<br>";
  }

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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