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I am trying to construct an sql query to search my database for users. It is supposed to help users to find other users on my website to find friends.

I did some research because I knew I did not want:

$query = "SELECT userName, userID FROM user WHERE userID = $userName ";

Because it would not be an effective search if they had to type the users exact name in to find them.

After doing some research I decided to try the like term with % symbols in front and back so it could be the name with lets say numbers before or after and it would show up.

The example I found online formatted it like this:

$query = "SELECT userName, userID FROM user WHERE userID Like '%{$userName}%' ";

but when I executed this query while implemented on m y website, I ran into problems of it returning to many results. It returned results that did not include anything within my search term.

I also tried the above search query with out the brackets since I did not understand why I needed them but I got the same results.

Any suggestions on how to make the search a little stricter using the above command query?

Or any other suggestions for how I should search my database for a user to friend?

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1  
You are having userID in your LIKE clause and the variable you are matching against is $userName.Why so?It should be WHERE Username LIKE '%$userName%' and I am not sure why you have used braces around $userName. –  techie_28 Sep 7 '12 at 4:12
2  
And don't forget about Bobby Tables –  Nemoden Sep 7 '12 at 4:15
    
@techie_28 I thought your change would have cracked it. Def needed to make it userName not userID. But I am still getting results as stated above. –  Mike Sep 7 '12 at 4:42
    
% this is the wild card character @Mike.If wrap the variable with it then it will search in a whole.However if you want to search it with begining then you can use '$username%'.It will match the records starting with that user name like 'mike%' will fetch you 'mike','mike.tyson187','mike_lewis02' and so on.Isnt it what you need? –  techie_28 Sep 7 '12 at 4:57

3 Answers 3

up vote 1 down vote accepted

The % sign is for wildcards. So if $userName = 'apple' your query would match apple, applepie, and crabapple but not appl.

If you want an exact match remove the %s or the LIKE altogether.

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Please try this. also why are you using braces..

$query = "SELECT userName, userID FROM user WHERE username Like '%$userName%' ";
share|improve this answer
    
As stated in my question I have tried this already without the brackets. –  Mike Sep 7 '12 at 4:39

Consider the strings

Apple iApple Apple Product

If you type Apple

Like '%{$userName}%' "

Returns: Will return you Apple, iApple , Apple Product
Reason: The % on both side indicates it will accept any text before and after your search term

Like '{$userName}%' "

Returns: Will return you Apple and Apple Product
Reason: The % on right side indicates it will accept any text after your search term

Like '%{$userName}' "

Returns: Will return you Apple and iApple
Reason: The % on left side indicates it will accept any text before your search term

Like '{$userName}' "

Returns: Will return you Apple
Reason: No % will restrict the search to the search term

Further More

I believe your query should be

  $username = mysqli_real_escape_string($userName);
  $query = "SELECT userName, userID FROM user WHERE userName Like '%{$username}%'";
share|improve this answer
    
I am doing this: $queryF = "SELECT userName, userID FROM user WHERE userName Like '%{$userName}%' "; And it is returning a lot of names it should not –  Mike Sep 7 '12 at 4:44
    
What is your search and what are the results. can you post them ? –  Deepak Sep 7 '12 at 4:48
    
Using this query: $queryF = "SELECT userName, userID FROM user WHERE userName Like '%{$userName}%' "; I search for: Mark And I get: hoppy test jason Bekka Mark etc including others that do not have the name mark in it at all. –  Mike Sep 7 '12 at 15:10
    
are you sure only this query is getting executed ? Print the query itself and see what is the actual query being executed. –  Deepak Sep 7 '12 at 21:27
    
Yes only that query is being executed. I believe it is a formatting problem in php because I changeed it to an equal and took out the % and made it an = and it only returned the name if i typed in exactly –  Mike Sep 8 '12 at 14:59

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