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This code returns no results and now error displayed . All I want Is if I click on a clink it should take me to a new page and display all the information of that user selecting from two tables . if I select from 1 it works but in two it does not

$query ='SELECT  
 tish_clientinfo.client_id, tish_clientinfo.firstname,
 tish_images.image_name
    FROM  tish_clientinfo 
    INNER JOIN tish_images 
ON tish_clientinfo.user_id = tish_images.user_id
WHERE user_id= '. $_GET['user_id'];
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closed as not a real question by Maxim Krizhanovsky, jeroen, hjpotter92, fancyPants, Subhrajyoti Majumder Feb 22 '13 at 18:39

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

2  
Echo the query and run it through PhpMyAdmin, if nothing is returned then your query is wrong. –  Karl Feb 22 '13 at 14:08
5  
your query is vulnerable to mysql injection. At least change $_GET['user_id'] with intval($_GET['user_id']) –  Oden Feb 22 '13 at 14:08
1  
this code is not intended to return anything. it just assign some string to $query variable –  Your Common Sense Feb 22 '13 at 14:08
    
What debugging have you done so far? –  Raad Feb 22 '13 at 14:09
    
@Oden that sql injection tip helped me great work –  humphrey Feb 22 '13 at 14:34

1 Answer 1

up vote 2 down vote accepted

Ambigued name field user_id, maybe??..try this:

$query ="SELECT  
tish_clientinfo.client_id, tish_clientinfo.firstname,
tish_images.image_name
  FROM  tish_clientinfo 
  INNER JOIN tish_images 
ON tish_clientinfo.user_id = tish_images.user_id
WHERE tish_clientinfo.user_id= ". intval($_GET['user_id']).";";

Saludos ;)

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its worked but I cant see no image displayed . well done –  humphrey Feb 22 '13 at 15:03
    
You have your image in a blob field on your DB, right??.....in that case it's not going to show with an echo, follow this example to show your images ;) :techcubetalk.com/2009/01/… –  Robert Rozas Feb 22 '13 at 15:27
    
I display it lke this $pic = '<img src="'.$target.$photo.'" width="50" height="50">'; and i echo $pic . this works in other page so display might not be a prob I do not knw why –  humphrey Feb 22 '13 at 15:33
    
I also think that the conflict might come from the images number i wanna sure all the user's images –  humphrey Feb 22 '13 at 15:51

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