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I've been reading some questions with the same problem I have but have not found the solution

Database Estructure

CREATE TABLE material (
  cve_mat varchar(12),
  type_mat varchar(20),
  author_mat varchar(40),
  status varchar(2),
  primary key(cve_mat)   
) ENGINE = INNODB;

CREATE TABLE users (
  cve_user varchar(8),
  name_user varchar(25),
  lastn_user varchar(25),
  email_user varchar(25),
  primary key(cve_user)
)ENGINE = INNODB;

CREATE TABLE material_user (
  cve_mat varchar(8),
  cve_user varchar(8),
  start_mat date,
  end_mat date,
  foreign key(cve_mat) references material(cve_mat)
    ON UPDATE CASCADE
    ON DELETE CASCADE,
  foreign key(cve_user) references users(cve_user)
    ON UPDATE CASCADE
    ON DELETE CASCADE
) ENGINE = INNODB;

And when execute these instructions:

......
$query = "INSERT INTO material_user VALUES ('$cvemat','$ncontrol',NOW(),DATE_ADD(current_date, interval '$days' day))";
$result = mysql_query($query) or die(mysql_error());

if ($result) {
$query = "UPDATE material SET status = 'YES' WHERE material.cve_mat = '$cvemat'";
$result = mysql_query($query) or die(mysql_error());

if ($result){
    return true;
} else {
    return false;
}
} else {
return false;
}

And display this error:

Cannot add or update a child row: a foreign key constraint fails (`biblioteca/material_prestamo`, CONSTRAINT `material_prestamo_ibfk_1` FOREIGN KEY (`cve_mat`) REFERENCES `material` (`cve_mat`) ON DELETE CASCADE ON UPDATE CASCADE)

I would greatly appreciate your help!

share|improve this question
    
There are two statements, at which do you see the mentioned error? –  Ja͢ck Jun 4 '12 at 6:15
    
According to error, is for statement Insert! –  SoldierCorp Jun 4 '12 at 6:19
    
Have you made sure that $cvemat exists in material table? Also, the data types don't match in length between material_user.cve_mat and material.cve_mat –  Ja͢ck Jun 4 '12 at 6:22
    
$cvemat is a variable that contains a value for identify material!.. simple variable –  SoldierCorp Jun 4 '12 at 6:27
    
yes! Is incorrect, the data types don't match.. now the error that display es this "NULL" –  SoldierCorp Jun 4 '12 at 6:31

2 Answers 2

up vote 0 down vote accepted

First, the column types for the foreign key should match the referencing tables:

material_user

cve_mat varchar(8),

material

cve_mat varchar(12),

Those two column types should be equal.

Before your insert statement you can perform some debugging:

SELECT * FROM material WHERE cve_mat='$cvemat'

If all seems okay, you can run this to find out more details:

SHOW INNODB STATUS;
share|improve this answer
    
I have matched size of datatype to eight, but now display this error "NULL" (I use firebug) –  SoldierCorp Jun 4 '12 at 6:39
    
@SoldierCorp You haven't explained how your code hooks up to anything that can be debugged using Firebug –  Ja͢ck Jun 4 '12 at 6:42
    
I dont explain but the errors whith or without firebug are the same in this problem!... but yes, Im use firebug. –  SoldierCorp Jun 4 '12 at 6:46
    
@SoldierCorp well, something changed between the first error and the next; you just have to determine what that is then. –  Ja͢ck Jun 4 '12 at 6:50
    
Yes, when matched size of datatype, now display "NULL" only NULL and no anymore –  SoldierCorp Jun 4 '12 at 6:55

You have foreign key constrain so you need to execute your second query first then your fisrt query second. It may be help you

$query = "UPDATE material SET status = 'YES' WHERE material.cve_mat = '$cvemat'";
$result = mysql_query($query) or die(mysql_error());

if ($result) {
   $query = "INSERT INTO material_user VALUES  ('$cvemat','$ncontrol',NOW(),DATE_ADD(current_date, interval '$days' day))";
   $result = mysql_query($query) or die(mysql_error());
share|improve this answer
    
I will try ur code, wait... –  SoldierCorp Jun 4 '12 at 6:31
    
Im sorry man but the error with ur answer.. is the same! –  SoldierCorp Jun 4 '12 at 7:10

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