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I'm trying to access the value ('Id') of an array.

This is my code to access the array:

$value[0]['Id']

This is the error: X

Cannot use string offset as an array

The array that I try to access: Y

array(1) { [0]=> array(1) { ["Id"]=> string(2) "42"} }

The surounding code

$query = "select Id from test where Tags = " .  "\"$chosedOption[1]\""; 
    $result = mysql_query($query, $link);
    $value = mysqlArray($result);
    $value_id = null;
    $value_id = $value[0]['Id']; // gives X
    var_dump($value[0]['Id']); 
    var_dump($value); // gives Y


function mysqlArray($result) {
$table_result = array();
$r = 0;
while($row = mysql_fetch_assoc($result)) {
    $arr_row = array();
    $c = 0;
    while ($c < mysql_num_fields($result)) {
        $col = mysql_fetch_field($result, $c);
        $arr_row[$col -> name] = $row[$col -> name];
        $c++;
    }
    $table_result[$r] = $arr_row;
    $r++;
}
return $table_result; }
13
  • 3
    something doesnt seem right in the dump of your array. It is missing a [ close to "id". Can you show the code of how you initialized the array? It would be helpful
    – boug
    May 10 '11 at 13:36
  • Is that the array declaration or are you just trying to show us the structure of the array?
    – Joseph
    May 10 '11 at 13:36
  • @Jospeh: i think that is the result of var_dump($value)
    – boug
    May 10 '11 at 13:39
  • Yes I edited. And indeed it's a var_dump.
    – user746873
    May 10 '11 at 14:05
  • 1
    Can you post some of the surrounding code? This should be working fine on the basis of the information we have.
    – Dan
    May 10 '11 at 14:12
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Can it be that $value_id already has a (string) value?

1
  • $value_id is a never used variable. It's the first time that it has a value. To surest a declare $value_id as follow before $value_id = $value[0]['Id']: as empty $value_id = null; .
    – user746873
    May 10 '11 at 14:27
0

Replace mysqlArray($result); with mysql_fetch_array($result);

2
  • Strange thing is , is that I cannot reproduce this error. Try this ( with $link ) only , do you still have the error ? what for other code is there on that page ? May 10 '11 at 14:47
  • With mysql_fetch_array(), you would have to access $value['Id'] rather than $value[0]['Id'].
    – binaryLV
    May 11 '11 at 6:25

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