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This is a big puzzle for me.

I have a line of code like this:

$Fields = mysql_fetch_assoc($Result);

I then call it like this:

<?php echo $Fields['BusinessName']; ?>

The strange thing is that there are no errors but no data is shown. But when I rename the variable $Fields as $Field, the data shows.

For local testing I used Ubuntu and the error was first noticed on the host (LAMP).

I checked to see if $Fields is a reserved word in PHP but I can't seem to find any hints on this.

Appreciate any inputs on this. Thanks!

Here's the code that WORKS:

$strQuery = "SELECT * FROM tblAds WHERE AdRef = '{$ThisAd}' LIMIT 1 ";
$Result = mysql_query($strQuery);
$Field = mysql_fetch_assoc($Result);

Now in the html body area, I insert the echo statement like mentioned earlier in the post and it works.

But the moment I change it to $Fields, there's no error, and no output. When I say no output, the field contents is shown as blank. But the page continues to load without the data.

Just for the ones curious, there is one error alert about a session variable already being declared but this is not relevant.

I hope this is clear.

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closed as not a real question by deceze, Juhana, Sai Kalyan Kumar Akshinthala, George Stocker, Gordon Nov 12 '11 at 8:42

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.

4  
You set variable $Fields and you wonder why $Field is empty? Am I missing something here? –  Juhana Nov 11 '11 at 6:10
1  
Uh? You name a variable in a way and call it in another, where's the strange error? :/ And with no error display settings, everything will be a mistery, man! –  Damien Pirsy Nov 11 '11 at 6:12
    
Excuse me for the typing error @Juhana. I've corrected the code. –  itsols Nov 11 '11 at 6:35
    
@DamienPirsy, I'm sorry for the typing error. There's my edited version. –  itsols Nov 11 '11 at 6:35
1  
All I can do is to repeat what others have said: show a concise, complete example that demonstrates the problem. Otherwise we just have to assume you modify $Fields somewhere between setting and echoing it. –  Juhana Nov 11 '11 at 6:54

4 Answers 4

there is no magic in PHP.

if one of variables doesn't work - there is just a silly typo.

turn error_erporting(E_ALL); as you've been told already, to get help from your PHP in spotting that typo.
that's all

if you'd be still unable to spot it - at least provide a full, reproduceable code, to let everyone run it and see what is wrong.

Again.
Look, you have to post the code, not it's wordy description.

for the question consists of "But the moment I change variable name, something went wrong" the only possible answer is "there is some mistake". Don't you understand it? It is impossible to give a certain answer for the vague question!

  • Now in the html body area,

WHY in HTML body area? Why not right in place? How many code in between these places? How many possibilities for this varible being overwritten?
Why not to just add one line to this code, echoing your variable, immediately?

share|improve this answer
    
Thank you @Col. Shranel. I tried that and there were no errors reported. –  itsols Nov 11 '11 at 6:45
1  
go on. post the code. NOT the whole code of the project but relevant part. I am sure it won't exceed 5 lines. –  Your Common Sense Nov 11 '11 at 6:47
1  
also make sure you can see errors on screen. PHP can be set up to not to show error messages on the screen but to log them in a file –  Your Common Sense Nov 11 '11 at 6:48

try this:

$Fields = mysql_fetch_assoc($Result);
foreach($Fields as $field){
   echo $field['BusinessName'];
}

of course you cant echo the array since $Fields is an array. you should foreach it

share|improve this answer
    
The result set is correct in my code. Please see if the code makes sense for not showing the data now. Thanks! –  itsols Nov 11 '11 at 6:39
    
you mean you save the array to $Fields but it shows nothing?? instead, it can be shown when you echo-ing $field? try var_dump($Fields) and var_dump($Field). Is it a same? maybe your variable $Field showing the previous data on it. not your mysql fetch. check your code, is there something else that used variable $Field. why dont you just change the variable name? –  jrcbm13 Nov 11 '11 at 6:45

You can try to call var_dump($var) function to display data contained in your variables $Fields or $Field or any other.

Also it can be helpful to look for some working examples of using mysql_fetch_assoc() on php.net.

share|improve this answer

You had $Field declared and initialized previously.

$Fields is a multidimensional array that looks like this:

$Fields[0]['BusinessName'];

It has multiple "BusinessName"s, so the variable actually is filled with a bunch of integer keys, which are then associated with your fields, including "BusinessName".

share|improve this answer
    
Thanks @Nick Liu, it's only one record. Hang on, I'll post some lines of the code. –  itsols Nov 11 '11 at 6:52

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