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sorry if my querstion is bad, my english is bad

NB : ignore the sql injection filtering

i am using insert() function that I created myself to insert to database

but i am stuck with these code

I want to upload image to ../images directory. If i insert with image included, text is inserted but image not uploaded

i think the query are not going into

if(!empty($gambar))
{   
    $dir="../images/";
    $tmp=$_FILES['gambar']['tmp_name'];
    $namafile=time().".jpg";
    $ukuran=$_FILES['gambar']['size'];
    $file_type=$_FILES['gambar']['type'];

    move_uploaded_file($tmp,$dir.$namafile);
        $this->perintah="insert into ".$tbl." (".$kol.",gambar) values (".$isi.",".$namafile.")";
        $q=mysql_query($this->perintah);
}

but to

else 
{
    $this->perintah="insert into ".$tbl." (".$kol.") values (".$isi.")";
    $q=mysql_query($this->perintah);
}

i have to declare variables

$gambar = $_FILES['gambar'];

and in form tag too

<form method='post' action='controller.php?act=inputsiswa' name='siswa' enctype='multipart/form-data'>

my question:

whats wrong with my code?

at this lines

public function insert($tbl,$kol,$isi,$gambar)

may i declare variable to

public function insert($tbl,$kol,$isi,$gambar = null)

or

public function insert($tbl,$kol,$isi,empty($gambar))

or what?

All of my codes

model.php

public function insert($tbl,$kol,$isi,$gambar)
{
    if(!empty($gambar))
    {   
        $dir="../images/";
        $tmp=$_FILES['gambar']['tmp_name'];
        $namafile=time().".jpg";
        $ukuran=$_FILES['gambar']['size'];
        $file_type=$_FILES['gambar']['type'];

        move_uploaded_file($tmp,$dir.$namafile);
            $this->perintah="insert into ".$tbl." (".$kol.",gambar) values (".$isi.",".$namafile.")";
            $q=mysql_query($this->perintah);
    }
    else 
    {
        $this->perintah="insert into ".$tbl." (".$kol.") values (".$isi.")";
        $q=mysql_query($this->perintah);
    }
    echo '<script> alert("Data Berhasil Dimasukkan!"); top.location="index.php?act='.htmlentities($_GET['act']).'";</script>';
    if(!$q)
    {
        echo "<script> alert(\"Gagal Coy !\"); top.location=\"index.php\";</script>";
        exit();
    }
}

controller.php

case "inputsiswa":
$file = $_FILES['gambar'];
$isi = "'".$_POST['nisn']."','".$_POST['username']."','".$_POST['password']."','".$_POST['nama']."','".$_POST['tempat_lahir']."','".$_POST['tanggal_lahir']."','".$_POST['jenis_kelamin']."','".$_POST['kelas']."','".$_POST['jurusan']."','".$_POST['tipekelas']."','".$_POST['goldar']."','".$_POST['alamat']."','".$_POST['kodepos']."','".$_POST['kontak']."','".$_POST['email']."','Aktif'";
$kol = "nisn,username,password,nama,tempat_lahir,tgl_lahir,jenkel,id_kelas,id_jurusan,id_tipe_kelas,id_goldar,alamat,kode_pos,kontak,email,status";
$as->insert("tbl_siswa",$kol,$isi,$file);

content.php

<form method='post' action='controller.php?act=inputsiswa' name='siswa' enctype='multipart/form-data'>
    NISN<br /><input type='text' name='nisn' class='text' required/><br />
    Username<br /><input type='text' name='username' class='text' required/><br />
    Password<br /><input type='password' name='password' class='text' required/><br />
    Ulangi Password<br /><input type='password' name='password2' class='text' required/><br />
    Nama Lengkap<br /><input type='text' name='nama' class='text' required/><br />
    Tempat Lahir<br /><input type='text' name='tempat_lahir' class='text' required/><br />
    Tanggal Lahir <br /><input type='text' name='tanggal_lahir' class='text' required/><br />
    Jenis Kelamin <br />
    <select name ='jenkel'>
        <option value=''>pilih jenis kelamin..</option>
        <option value='Pria'>Pria</option>
        <option value='Wanita'>Wanita</option>
    </select> 
    <br>
    Kelas<br>
    <select name='kelas'>
    <option value ='0'>pilih kelas..</option>";
    $tbl='tbl_kelas';
    $isi = $as->select($tbl,'*');
    while($r=mysql_fetch_array($isi)){
    echo"<option value=$r[id_kelas]>$r[kelas]</option>";
    }
    echo"</select><br />        

    Jurusan<br>
    <select name='jurusan'>
    <option value ='0'>pilih jurusan..</option>";
    $tbl='tbl_jurusan';
    $isi = $as->select($tbl,'*');
    while($r=mysql_fetch_array($isi)){
    echo"<option value=$r[id_jurusan]>$r[jurusan]</option>";
    }
    echo"</select><br />        

    Tipe Kelas<br>
    <select name='tipekelas'>
    <option value ='0'>pilih tipe kelas..</option>";
    $tbl='tbl_tipe_kelas';
    $isi = $as->select($tbl,'*');
    while($r=mysql_fetch_array($isi)){
    echo"<option value=$r[id_tipe_kelas]>$r[tipe_kelas]</option>";
    }
    echo"</select><br />        

    Golongan Darah<br>
    <select name='goldar'>
    <option value ='0'>pilih golongan darah..</option>";
    $tbl='tbl_goldar';
    $isi = $as->select($tbl,'*');
    while($r=mysql_fetch_array($isi)){
    echo"<option value=$r[id_goldar]>$r[nama_goldar]</option>";
    }
    echo"</select><br />

    Alamat<br />
    <textarea name='alamat'></textarea><br />
    Kode Pos <br /><input type='text' name='kodepos' class='text' /><br />
    Kontak <br /><input type='text' name='kontak' class='text' required/><br />
    Email <br /><input type='text' name='email' class='text' /><br />
    Foto <br /><input type='file' name='gambar' class='text'/><br /><br>
    <div style='width:500px; margin-top:-10px;'><input class='graybutton' type='submit' value='Tambahkan'> &nbsp; <input class='graybutton' type='reset' value='Ulangi'></div>
</form>";
share|improve this question
    
you want to store the image in mysql? or the image path in to the mysql, and the image in some directory. –  dhruba Feb 9 '12 at 12:25
    
i want store image in directory, and insert image path in mysql –  Galih Pratama Feb 9 '12 at 12:31
1  
What is it exactly that doesn't work? Did the query fails? Or perhaps the image didn't get moved to the designated upload directory? Please provide more details –  Kemal Fadillah Feb 9 '12 at 13:14
    
also this has nothing to do with oop. –  Dan Feb 9 '12 at 14:10
    
@KemalFadillah query without image is work, but with image isnt work –  Galih Pratama Feb 11 '12 at 13:38

2 Answers 2

In your HTML, you have:

Foto <br /><input type='file' name='gambar' class='text'/><br /><br>

But in your PHP you have:

$file = $_POST['gambar'];

Perhaps I'm missing what you are doing, but surely it should be:

$file = $_FILES['gambar'];

Or am I missing something?

share|improve this answer
    
i've changed the variables, still not work –  Galih Pratama Feb 11 '12 at 13:45
    
thanks upload image is works, now the problem is image name isn't inserted into database :D –  Galih Pratama Feb 13 '12 at 16:08

Galih, we've all been noob. But please give us more detail of your problems, instead of "it doesn't work and you're stuck".

Yes, from your codes, the answer from Ralfe is one of the possibilities, and the comment from Kemal Fadillah about query fails is the other one.

From me, if you are doing image upload to the server, make sure the server's directory is writable by the application e.g the PHP.

And be aware from SQL injection since you insert the user's input to MySQL server without any filtering.

share|improve this answer
    
i have updated a question. about sql injection, i want add that later if all of my codes are finished. –  Galih Pratama Feb 11 '12 at 13:36

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