sstoveld Posted March 22, 2009 Share Posted March 22, 2009 hey guys, first off, im new here, first post. ok now, i've got this bookstore im trying to get working, but ive got something wrong here. the application is supposed to display a list of books with their stock and prices with a radio button next to each of them, and a submit button to submit which book they would like to buy. the info is stored in a mysql db. when a book is "purchased", it sends a query to the db to decrease the stock of that particular book by one. when the stock reaches zero, the radio button should not be there anymore, not allowing the user to "purchase" another copy. now thats out of the way, here's my code: ////////////// CHECK IF UPDATED ///////////////// if (isset($_POST['submit'])){ $id=$_POST['id']; $sql = "UPDATE stock SET stock = stock - 1 WHERE id = '$id'"; if (!mysql_query($sql)){ echo "<p>Error occurred. ".mysql_error()."</p>"; }else{ echo "<p>Stock updated successfully</p>"; } }else{ ///////// THE STOCK IS PASSED FROM THE URL //////////// $id=$_GET['id']; } ////////// QUERY DATABASE ////////// $queryresult = @mysql_query('SELECT title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title;'); if (!$queryresult) { exit ('<p>Error in query.'. mysql_error().'</p>'); } ////////// MAKE AN HTML TABLE TO HOLD THE DATA //////////// ?> <table> <tr> <td><strong>Title</strong></td> <td><strong>Stock</strong></td> <td><strong>Price</strong></td> </tr> <?php /////////// RESULTS OF QUERY AND PUBLISH TO TABLE /////////// while ($row = mysql_fetch_array($queryresult)){ echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td><input type="radio" name="id" value='.$row['title_id'].' /></td></tr>'; } ?> </table> <p> <form name="submit" action="<?php echo $_SERVER["PHP_SELF"]; ?>" method="post"> <input type="submit" value="Submit" name="submit" /> </form> </p> it seems that the id's are not being assigned to each radio button properly can anyone give me a hand? here's a screenshot of my db: thanks for any help in advance Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/ Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 Notice that below I set the name parameter on your radio input. <?php ////////////// CHECK IF UPDATED ///////////////// if (isset($_POST['submit'])){ $id=$_POST['id']; $sql = "UPDATE stock SET stock = stock - 1 WHERE id = '$id'"; if (!mysql_query($sql)){ echo "<p>Error occurred. ".mysql_error()."</p>"; }else{ echo "<p>Stock updated successfully</p>"; } }else{ ///////// THE STOCK IS PASSED FROM THE URL //////////// $id=$_GET['id']; } ////////// QUERY DATABASE ////////// $queryresult = @mysql_query('SELECT title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title;'); if (!$queryresult) { exit ('<p>Error in query.'. mysql_error().'</p>'); } ////////// MAKE AN HTML TABLE TO HOLD THE DATA //////////// ?> <table> <tr> <td><strong>Title</strong></td> <td><strong>Stock</strong></td> <td><strong>Price</strong></td> </tr> <?php /////////// RESULTS OF QUERY AND PUBLISH TO TABLE /////////// while ($row = mysql_fetch_array($queryresult)){ /*Notice the change I made on this line below where I set the name parameter.*/ echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td><input type="radio" name="'.$row['title'].'" value='.$row['title_id'].' /></td></tr>'; } ?> </table> <p> <form name="submit" action="<?php echo $_SERVER["PHP_SELF"]; ?>" method="post"> <input type="submit" value="Submit" name="submit" /> </form> </p> Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790946 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 Notice that below I set the name parameter on your radio input. <?php ////////////// CHECK IF UPDATED ///////////////// if (isset($_POST['submit'])){ $id=$_POST['id']; $sql = "UPDATE stock SET stock = stock - 1 WHERE id = '$id'"; if (!mysql_query($sql)){ echo "<p>Error occurred. ".mysql_error()."</p>"; }else{ echo "<p>Stock updated successfully</p>"; } }else{ ///////// THE STOCK IS PASSED FROM THE URL //////////// $id=$_GET['id']; } ////////// QUERY DATABASE ////////// $queryresult = @mysql_query('SELECT title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title;'); if (!$queryresult) { exit ('<p>Error in query.'. mysql_error().'</p>'); } ////////// MAKE AN HTML TABLE TO HOLD THE DATA //////////// ?> <table> <tr> <td><strong>Title</strong></td> <td><strong>Stock</strong></td> <td><strong>Price</strong></td> </tr> <?php /////////// RESULTS OF QUERY AND PUBLISH TO TABLE /////////// while ($row = mysql_fetch_array($queryresult)){ /*Notice the change I made on this line below where I set the name parameter.*/ echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td><input type="radio" name="'.$row['title'].'" value='.$row['title_id'].' /></td></tr>'; } ?> </table> <p> <form name="submit" action="<?php echo $_SERVER["PHP_SELF"]; ?>" method="post"> <input type="submit" value="Submit" name="submit" /> </form> </p> thanks so much for the quick reply! i noticed the change you made with the "" around the name. i applied that to the value, but it still doesnt seem to work for me... did i do something wrong here? here's the code: while ($row = mysql_fetch_array($queryresult)){ echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td><input type="radio" name="'.$row['title'].'" value="'.$row['id'].'" /></td></tr>'; } thanks, i appreciate the help Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790954 Share on other sites More sharing options...
FaT3oYCG Posted March 22, 2009 Share Posted March 22, 2009 remove the /> before the last </td> Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790969 Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 Well it had to have worked, you stated the ID aka the name was not being assigned now it is assigned. What are you really trying for that is not working? Are you getting any errors and can you be more specific? Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790970 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 well when i go to view source and look at where the table is, it shows each name of the book for what you fixed in my code. example: <tr><td>A Beautiful Mind</td><td>13</td><td>12.99</td><td><input type="radio" name="A Beautiful Mind" value=""</td></tr> see how it shows A Beautiful Mind. thats from what you fixed in my code: name="'.$row['title'].'" but for the radio button, the value is not there. viewing the source from firefox: <tr><td>A Beautiful Mind</td><td>13</td><td>12.99</td><td><input type="radio" name="A Beautiful Mind" [b]value=""[/b]</td></tr> see that there is no value for the radio button there. i cant seem to get it to assign the id there. and after i removed the /> before that last </td> it seems that the radio button tag is not closed Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790988 Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 Can you echo $row['id']; ? What do you get? Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790993 Share on other sites More sharing options...
FaT3oYCG Posted March 22, 2009 Share Posted March 22, 2009 oh sorry missed that one, make sure you are using the right case aswell for that statment i.e. id wont work if the item in the database is stored as ID or Id Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790994 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 Can you echo $row['id']; ? What do you get? sorry, i am very new to this. how do i do that? :-\ Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790997 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 oh sorry missed that one, make sure you are using the right case aswell for that statment i.e. id wont work if the item in the database is stored as ID or Id yup, it's id. thanks Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-790999 Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 <?php echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td><?php echo 'This is a test! '.$row['id'].' <-Did you see anything?'; ?><input type="radio" name="'.$row['title'].'" value='.$row['title_id'].' /></td></tr>'; ?> Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791001 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 <?php echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td><?php echo 'This is a test! '.$row['id'].' <-Did you see anything?'; ?><input type="radio" name="'.$row['title'].'" value='.$row['title_id'].' /></td></tr>'; ?> lol im probably being a retard here but i get a parse error with that code :-\ Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791011 Share on other sites More sharing options...
Philip Posted March 22, 2009 Share Posted March 22, 2009 Erm... You have <?php echo 'This is a test! '.$row['id'].' <-Did you see anything?; ?> Inside your echo statement should be: echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td>This is a test! '.$row['id'].'... Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791015 Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 Ok so I was a little retarded on that one, I am chatting and working and two jobs at the same time, well trying to help out. I'll take a step back now... It also comes from the way I am used to coding, I never echo html, unless I have too. I perfer to break in and out of php as needed. Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791026 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 Ok so I was a little retarded on that one, I am chatting and working and two jobs at the same time, well trying to help out. I'll take a step back now... It also comes from the way I am used to coding, I never echo html, unless I have too. I perfer to break in and out of php as needed. haha no worries ok well, im not sure what im supposed to get... but with this code: <?php /////////// RESULTS OF QUERY AND PUBLISH TO TABLE /////////// while ($row = mysql_fetch_array($queryresult)){ echo '<tr><td>'.$row['title'].'</td><td>'.$row['stock'].'</td><td>'.$row['price'].'</td><td>This is a test! '.$row['id'].' <-Did you see anything?; ?><input type="radio" name="'.$row['title'].'" value='.$row['title_id'].' /></td></tr>'; } ?> i get this: edit: here's a pastebin of my whole page source: http://pastebin.com/m4e72e4b2 Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791031 Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 I can't see that? "this"= X Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791033 Share on other sites More sharing options...
FaT3oYCG Posted March 22, 2009 Share Posted March 22, 2009 XD XD XD XD XD XD XD XD change the databse query to this $queryresult = @mysql_query('SELECT id, title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title;'); then come back and thank me Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791054 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 XD XD XD XD XD XD XD XD change the databse query to this $queryresult = @mysql_query('SELECT id, title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title;'); then come back and thank me says: Error in query.Column 'id' in field list is ambiguous id is a column in the stock table. why would it say this? Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791058 Share on other sites More sharing options...
FaT3oYCG Posted March 22, 2009 Share Posted March 22, 2009 erm wow now something that should have been simple just wasnt, that should have solved the problem as you need to select the id from the table to be able to access it with the array i.e. $row['id'] but you got some wierd error all i can think to do is change the feild name to stock_id in your database and code and try that and if it works ill explain in a min why Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791063 Share on other sites More sharing options...
Philip Posted March 22, 2009 Share Posted March 22, 2009 SELECT id, title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title SELECT books.id as id, title, stock, price FROM stock LEFT JOIN books ON stock.title_id = books.id ORDER BY title Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791074 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 erm wow now something that should have been simple just wasnt, that should have solved the problem as you need to select the id from the table to be able to access it with the array i.e. $row['id'] but you got some wierd error all i can think to do is change the feild name to stock_id in your database and code and try that and if it works ill explain in a min why awesome! it shows the value for each radio button now in the source. i changed id to stock_id everywhere. but i still have a problem. when i select a radio button and hit submit, it isnt decreasing the stock. whats going on? edit: here's a new pastebin: http://pastebin.com/m33ae0d09 Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791076 Share on other sites More sharing options...
FaT3oYCG Posted March 22, 2009 Share Posted March 22, 2009 cool its coz the book table has id as one of its fields aswell, from now on name then with the table prefix e.g. book_id and if you can go through and change all the others you have try changing this $sql = "UPDATE stock SET stock = stock - 1 WHERE stock_id = '$stock_id'"; to $sql = "UPDATE stock SET stock = stock - 1 WHERE stock_id = '$id'"; Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791080 Share on other sites More sharing options...
WolfRage Posted March 22, 2009 Share Posted March 22, 2009 That's some great team work! Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791083 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 cool its coz the book table has id as one of its fields aswell, from now on name then with the table prefix e.g. book_id and if you can go through and change all the others you have try changing this $sql = "UPDATE stock SET stock = stock - 1 WHERE stock_id = '$stock_id'"; to $sql = "UPDATE stock SET stock = stock - 1 WHERE stock_id = '$id'"; hmm no go stock still wont change Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791086 Share on other sites More sharing options...
sstoveld Posted March 22, 2009 Author Share Posted March 22, 2009 That's some great team work! lol Quote Link to comment https://forums.phpfreaks.com/topic/150577-solved-need-some-help-with-phpmysql-bookstore/#findComment-791088 Share on other sites More sharing options...
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