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I'm trying to pull an array to use on another query but it's not working, because the last comma.

    <?php
    include"connection.php";
    $pos = mysqli_query($not,"SELECT * FROM equipos");
    $logos = array();
    while($row= mysqli_fetch_assoc($pos)){
    $logos[] = "<br>'".$row['abrv']."'=>"."'".$row['logo']."'";
    }
    $logos = implode(",", $logos);

    $enjuego = mysqli_query($not,"SELECT * FROM partidos WHERE dprt='ftbls'");
    while($part=mysqli_fetch_array($enjuego)){
    $liga=$part['serie'];
    $eq1= $part['eq1'];
    $eq1s= strtoupper($eq1);
    $eq2= $part['eq2'];
    $eq2s= strtoupper($eq2);

    echo $logos[$eq1].'<br>';
    }
    ?>

It gives me the same error over and over again. This is the closest I came but just doesn’t work. Can someone tell me what am I doing wrong?

The error I get is: Warning: Illegal string offset 'gua' in line 22

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2  
Have a look at implode. –  Rocket Hazmat Nov 28 '12 at 19:40

4 Answers 4

You have several problems with your code:

  • You never created an array
  • You constantly overwrite $logos
  • Your usage of substr_replace() indicates a deeper problem.

Here's a better approach:

  1. Build the array.

    $logos = array();
    while($row= mysqli_fetch_assoc($pos)){
      $logos[] = "<br>'".$row['abrv']."'=>"."'".$row['logo']."'";
    }
    
  2. There are many ways condense an array into a string. I encourage you to browse the manual on PHP Array Functions. In your case, you are interested in implode()

    $logos = implode(",", $logos);
    

Note: The value for $logos smells. You should construct your arrays to hold data, not formatting.

For example:

$logos[$row['abrv']] = $row['logo'];

Output:

print_r($logos);
share|improve this answer
    
Let’s see if I can explain myself: In one table I have a list of logos in that table there are two columns, c1=first 3 letter of the team and c2= Teams full name. In another table I have a score for games to come and the teams name is in a column identical to c1 from table 1, what I want to do is use the array from the first table to pull the logo for an image, so I figured something like this. Array from Table 1 is $logos And the row where the team name from the second table is $team1 <img src=”foler/<?= $logos[$team1]?>”/> –  Sam Ram San Nov 28 '12 at 20:19
    
I'm going crazy here... whay is this so dificult? –  Sam Ram San Nov 28 '12 at 21:01
    
If you have a question about constructing your query, you should post another question. Each question should aim to solve one thing at a time. –  Jason McCreary Nov 28 '12 at 21:26

What you want can be achieved in many ways, but let's look at your code, there are quite a few things wrong in there.

  • Semantically meaningless variable names like pos, not, equipos, abrv. Only logo and result are good variable names.

  • Using the * selector in database queries. Don't do that, instead select the exact fields you need, it's better for performance, maintainability, code readability, testability, ... need I say more?

  • Fetching per row and running code on each row when what you actually want is an array containing all rows. Solution:

    $result = mysqli_query($not, "SELECT * FROM equipos");
    $logos = mysqli_fetch_all($result, MYSQLI_ASSOC);
    
  • Concatenating subarrays by using strings, that's not how it works, what you could do:

    while($row = mysqli_fetch_assoc($result))
    {
        $logos[][$row['abrv']] = $row['logo'];
    }
    

    But as I said, that's not necessary.

  • Overwriting your variable $logos with each iteration of the loop. You'd need to do $logos[] = ....

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Typically, implode is useful for such cases.

Without knowing what exactly you want to do, take this as a first hint:

$logos = array();

while($row= mysqli_fetch_assoc($pos)){
    $logos[] = "<br>'".$row['abrv']."'=>"."'".$row['logo']."'";
}

$logos = implode(",", $logos);
share|improve this answer
    
Let’s see if I can explain myself: In one table I have a list of logos in that table there are two columns, c1=first 3 letter of the team and c2= Teams full name. In another table I have a score for games to come and the teams name is in a column identical to c1 from table 1, what I want to do is use the array from the first table to pull the logo for an image, so I figured something like this. Array from Table 1 is $logos And the row where the team name from the second table is $team1... <img src=”foler/<?= $logos[$team1]?>”/> –  Sam Ram San Nov 28 '12 at 20:31
    
I’ve tried all suggestions from up there and it gives me an index problem –  Sam Ram San Nov 28 '12 at 20:48

The simplest way I would have thought is just to change the query and fetch the array into that -

<?php
  include_once("connection.php");
  $result = mysqli_query($not,"SELECT abrv, logo FROM equipos");
  $rows = mysqli_fetch_array($result, MYSQLI_ASSOC);

  // display the result
  echo "<pre>"
  print_r($rows);
  echo "</pre>"
?>
share|improve this answer
    
Too bad nobody could help whit this. Thanks for the suggestions, you all are berry nice people. –  Sam Ram San Nov 29 '12 at 8:05

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