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Please help me in inserting an image in mysql DB using perl.

This is my HTML Code:

<form name="addNewUser"  method="get" action="" >
    Email: <input type="text" name="email" value = ""></br>
    Password: <input type="password" name="pwd" value = ""></br>
    Name: <input type="text" name="name" ></br>
    Image:<input name="image" accept="image/jpeg" type="file"> </br>
    <input type="submit">

This is My perl Code:

#!/usr/local/bin/perl -w
#use strict;
use warnings;
use DBI;
use CGI;
use CGI::Carp qw/fatalsToBrowser warningsToBrowser/;
use CGI::Session ( '-ip_match' );
use HTML::Template;

# read the CGI params
my $cgi = CGI->new;
my $email = $cgi->param("email");
my $pwd = $cgi->param("pwd");
my $name = $cgi->param("name");
$filename = $cgi->param ("image");

require "";

$rows = $db_handle->do( "INSERT INTO users VALUES ('NULL','$name', '$email', '$pwd', '$image') " );

What is wrong in this? Its not loading the file in DB.

Please help me.

Thanks in advance, Sapna

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first, remove the # from the use strict line and declare all variables with my. second, don't insert database values directly into the string (they might contain quotes, for example). see for a short intro to placeholders. third, which error message do you get? – tinita Jul 6 '12 at 11:36
Also, you should not save clear text passwords. You should hash them instead. You wouldn't like SO to save your password in a readable way so the admins could take a look at who uses the most funny password, would you? – simbabque Jul 6 '12 at 11:49
Hi simbabque, I am using md5 for password encryption. Just for simplification i have removed it from the question in SOF. Can you please me, what wrong i am doing here, so i am not able to store the image in DB. – Sapna Agrawal Jul 6 '12 at 11:56
I suppose that your image field is longblog and your table users has only 5 fields, right? – jcho360 Jul 6 '12 at 12:13
yes image field is longblog and yes table has 5 fields. – Sapna Agrawal Jul 6 '12 at 12:18

1 Answer 1

You get the image filename into a variable called $filename, but in your SQL statement you try to insert it from a variable called $image.

You should uncomment the use strict line in your program and fix the problems that it shows you.

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