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I have two tables main_jobs and sub_jobs with the structures below:

$query="create table if not exists main_jobs (
            id int not null auto_increment, primary key(id),
            industry int(3), 
            company_name varchar(255),
            job_title varchar(255),
            email varchar(255),
            website varchar(255),
            introduction text not null,
            application_details text,
            advert_date date,
            expiry_date date,
            upload_date date,
            no_deadline int(1) default 0,
            logo  varchar(255),
            featured varchar(20),
            source varchar(10) default 'admin',
            email_status int default 0,
            views int(11) default 1,
            short_url varchar(100),
            tags varchar(255), 
            FOREIGN KEY (industry) REFERENCES industry (id))";
    if(mysql_query($query,$link)){echo "main_jobs created<br>";} else{ die(mysql_error()); }

    $query="create table if not exists sub_jobs (
            id int not null auto_increment, primary key(id),
            parent_id int(11) not null, FOREIGN KEY (parent_id) REFERENCES main_jobs (id),
            title varchar(255),
            description text not null,
            category int (3), FOREIGN KEY (category) REFERENCES category (id),
            job_type varchar(20),
            job_level varchar(50),
            min_qualification varchar(50),
            min_experience int(3),
            max_experience int(3),
            min_salary int(11),
            max_salary int(11),
            show_salary int(1) default 1,
            denomination varchar(10),
            views int(11) default 1,
            short_url varchar(100),
            email varchar(255),
            website varchar(255))";
    if(mysql_query($query,$link)){echo "sub_jobs created<br>";} else{ die(mysql_error()); }

I want to insert records but it shows up this error:

Cannot add or update a child row: a foreign key constraint fails (`myjobmag_db`.`sub_jobs`, CONSTRAINT `sub_jobs_ibfk_1` FOREIGN KEY (`parent_id`) REFERENCES `main_jobs` (`id`))

These are mysql queries and have been staring at them for hours but cannot identify the problem:

Insert into main_jobs (Runs successfully)

$resultobj=otherquery("insert into main_jobs(industry, company_name, job_title, email, website, introduction, application_details, advert_date, expiry_date, upload_date, no_deadline, logo) values(?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?)", "ssssssssssss", array($industry, $company_name, $job_name, $email, $website, $profile, $application, $advert_date, $expiry_date, $date_uploaded, $no_deadline, $logo));

I pick the id of the last insert (confirms that it exists in main_jobs table, this is do manually because of the error) and run insert into sub_jobs

$parent= $resultobj['obj']->insert_id;
mysql_query("insert into sub_jobs(id, parent_id, title, description, category, job_type, job_level, min_qualification, min_experience, max_experience, min_salary, max_salary, show_salary, denomination, email, website) values('', $parent, '$subtitle', '$description', '$category', '$type', '$level', '$min_qualification', '$min_experience', '$max_experience', '$min_salary', '$max_salary', '$show_salary', '$denomination', '$sub_email', '$sub_website')", $link) or die(mysql_error($link));

In my last test the id in main_jobs table is 2616 and it actually exists, yet i get an error.

Kindly assist!

share|improve this question
    
dev.mysql.com/doc/refman/5.5/en/… - It has pretty at the top: "The FOREIGN KEY clause is specified in the child table" - you have it in main jobs. So you probably do it the other way round than you want to - either with the insert or with the key definition - whatever suits you better. –  hakre Nov 11 '12 at 10:12
    
@hakre i do not understand, kindly explain further –  Ogugua Belonwu Nov 11 '12 at 10:19
2  
Well, I prefer to suggest you start reading about the database features you want to use instead. So it is easier to talk about the topic and the actual error messages. So far I'd say you just made some mistake, locate it, correct it. According to your question, you are violating a foreign key constraint. You either want to remove the constraint because it is in your way or you want to correct it so that is the constraint you actually want to use. Apart from that, the database just does what you have told it. –  hakre Nov 11 '12 at 11:25
    
print both queries and try running them from a my sql client and see if you still get the same error. –  air4x Nov 11 '12 at 12:49

1 Answer 1

Your Syntax Should be---" '.$VAR.' ", between each $var !

" '.$min_salary.' ", " '.$max_salary.' ", " '.$show_salary.' ", " '.$denomination.' ",
share|improve this answer
    
i really cannot seem to understand the difference it will make. –  Ogugua Belonwu Nov 11 '12 at 10:21
    
Well, it is different, so it might make a difference. You probably won't need to understand that, if it makes a difference. So why don't you just try first instead of understanding first? I mean you seem to use foreign key constraints as well without understanding them. –  hakre Nov 11 '12 at 11:27
1  
@hakre, "You probably won't need to understand that", your statement here is totally wrong and rude. Asides from wanting to know what the problem is, i want to fully understand the solution so i will not come asking if i meet a variant of it. –  Ogugua Belonwu Nov 11 '12 at 11:37
    
@rodeone2, this is the original version of my query: $param=array($parent, $subtitle, $description, $category, $type, $level, $min_qualification, $min_experience, $max_experience, $min_salary, $max_salary, $show_salary, $denomination, $sub_email, $sub_website); $resultobj=otherquery("insert into sub_jobs(id, parent_id, title, description, category, job_type, job_level, min_qualification, min_experience, max_experience, min_salary, max_salary, show_salary, denomination, email, website) values('', ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?, ?)", "ississsiiiiisss", $param); –  Ogugua Belonwu Nov 11 '12 at 11:38

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