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i am trying to get my data from the database and wrap it with html tags. here is the working code so far:

function homethumb(){ $this->count; $i = 0;
   while($row = mysqli_fetch_object($this->result))
   {
      $this->count++; $i++;
      if($i == 1){echo '<div class="gal1">';}
      echo '<a href="portfolio.php?id=' . $row->id . '"> <div class="gal"><img src="img/' . $row->thumb2 . '.jpg"></div></a>';
      if($i == 2){
      echo '</div> <!-- gal1 -->';
      $i=0;
      } 
   }
}

Here I am getting everything from the database (Select * from portfolio), but in the portfolio I have, websites, demos and graphics; so I wanted to get only the data where category = "web" from the above code, so I tried this:

function homethumb(){ $this->count; $i = 0;
   while($row = mysqli_fetch_object($this->result))
   {
      if($row->category = "web"){
               $this->count++; $i++;
         if($i == 1){echo '<div class="gal1">';}
         echo '<a href="portfolio.php?id=' . $row->id . '"> <div class="gal"><img src="img/' . $row->thumb2 . '.jpg"></div></a>';
         if($i == 2){
         echo '</div> <!-- gal1 -->';
         $i=0;
         } 
      }
   }
}

now the nested if statements do not generate the divs I need, how can I get this working

thanks for your help

share|improve this question
    
Are you filtering your thumb2 when it is input to prevent Cross-site scripting flaws? –  sarnold May 23 '11 at 1:35
    
@sarnold no, how would I do that –  aurel May 23 '11 at 2:35

5 Answers 5

up vote 2 down vote accepted

I can't see your SQL based on your question, but you could just modify your SELECT query to include WHERE category="web"

This way, you're only selecting the rows you need, instead of looping over every row in that table.

Additionally, it appears that you're using assignment = instead of comparison == for your if statement.

share|improve this answer
    
the '=' was a typo error, and the where filter is something that I really did not want to do in this case as, it would conflict with other queries –  aurel May 23 '11 at 1:47
    
So did fixing the typo correct your issue? Or after fixing that in your code, are you still not getting the result you want? –  AJ. May 23 '11 at 1:58
    
I fixed the typo, and I changed the code to "where category=" –  aurel May 23 '11 at 3:13

Do you just need to have == instead of =?

if($row->category == "web"){

But it would be best to restrict the query to the results you need at the database level, unless you need the other rows for some reason.

share|improve this answer

1)You missed an equal sign:

if($row->category = "web") => if($row->category == "web")

Or better yet

if($row->category === "web")

2)If you want to only get fields with a specific category field, you can simply change your query:

[rest of your query] WHERE category="web"

share|improve this answer
    
I added them, above was a typo error, but i still get the same problem and I am using one Select query for everything, so whilst a where filter would satisfy this problem, it would brake others –  aurel May 23 '11 at 1:36

OK, it should go like this, assuming the fields are sorted as follows

ID, category, website, thumb2, demo, graphics

function homethumb(){ $this->count; $i = 0;
   while($row = mysqli_fetch_object($this->result))
   {
      if($row[1] == "web"){
               $this->count++; $i++;
         if($i == 1){echo '<div class="gal1">';}
         echo '<a href="portfolio.php?id=' . $row[0] . '"> <div class="gal"><img src="img/' . $row[3] . '.jpg"></div></a>';
         if($i == 2){
         echo '</div> <!-- gal1 -->';
         $i=0;
         } 
      }
   }
}

and there is no need for the nested if, you can just use it in one line as follows:

if($row[1] = "web")
{
    echo '<div class="gal1">';
    echo '<a href="portfolio.php?id=' . $row[0] . '"> <div class="gal"><img src="img/' . $row[3] . '.jpg"></div></a>';
    echo '</div> <!-- gal1 -->';
}
share|improve this answer
    
i get this error - Cannot use object of type stdClass as array in –  aurel May 23 '11 at 1:45

1) Change your query to contain a WHERE category="web" clause

2) You have an assignment operator in your if clause (=), when you need an equality operator (==)

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