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I have 3 table here.

1)Hotel

-----------------
|Hotel_ID | Name     |
-----------------
|    1    |Shangrila |
----------------------
|    2    |GoldHill  |
----------------------
|    3    |BayBeach  |
----------------------

2)Feature

----------------------
|Feature_ID| Feature |
----------------------
|     1    |  Goft   |
----------------------
|     2    |Internet |
----------------------

3)Brdige_Hotel_Feature

------------------------
|Hotel_ID | Feature_ID |
------------------------
|    1    |      1     |
------------------------
|    1    |      2     |
-----------------------
|     2   |      1     |
-----------------------

It mean each hotel might have more than 1 feature.

My idea is like this , let say, if i want get the result from table 3 Bridge_Hotel_Feature. If the Feature_ID = 1 , i get Hotel 1 and 2. **If the Feature_ID = 1 , 2. I just want to get Hotel 1. But i always get the both Hotel_ID 1 and 2. ** Please help me the solution to get only the feature match with the Hotel_ID.

Below is the code i try.

SELECT h.Name , h.Hotel_ID, f.feature
FROM Hotel h, Bridge1_Hotel_Features b, Features f
where 0=0
AND b.Feature_ID = f.Feature_ID 
AND b.Hotel_ID = r.Hotel_ID

<cfif #FORM.Feature_ID# IS NOT "">
    AND f.Feature_ID IN (#FORM.Feature_ID#)
</cfif>
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3 Answers 3

up vote 0 down vote accepted

If Feature_ID = 1 ,2 , the result must only get Hotel_ID = 1

Because only Hotel_ID = 1 has both features, correct? Assuming #FORM.Feature_ID# does not contain duplicates, use a HAVING clause to dynamically identify hotels with all of the requested features.

SELECT Hotel_ID, COUNT(Feature_ID) AS FeatureCount
FROM   Bridge_Hotel_Feature
<!--- find matching features --->
WHERE  Feature_ID IN ( <cfqueryparam value="#FORM.Feature_ID#" cfsqltype="cf_sql_integer" list="true"> )
GROUP BY Hotel_ID
<!--- having ALL of the requested features --->
HAVING COUNT(Feature_ID) = <cfqueryparam value="#listLen(FORM.Feature_ID)#" cfsqltype="cf_sql_integer">

You could then join to it as a derived table or possibly a subquery. The sql needs optimization, but conceptually something like

SELECT h.Hotel_ID, h.Name, f.Feature
FROM   Hotel h
      INNER JOIN Bridge_Hotel_Feature b ON b.Hotel_ID = h.Hotel_ID
      INNER JOIN Features f ON b.Feature_ID = f.Feature_ID
      INNER JOIN
      (
        SELECT Hotel_ID, COUNT(Feature_ID) AS FeatureCount
        FROM   Bridge_Hotel_Feature
        <!--- find matching features --->
        WHERE  Feature_ID IN ( <cfqueryparam value="#FORM.Feature_ID#" cfsqltype="cf_sql_integer" list="true"> )
        GROUP BY Hotel_ID
        <!--- having ALL of the requested features --->
        HAVING COUNT(Feature_ID) = <cfqueryparam value="#listLen(FORM.Feature_ID)#" cfsqltype="cf_sql_integer">
    ) ck ON ck.Hotel_ID = h.Hotel_Id
share|improve this answer
    
Thank you first, I have try the first code u given me. But i fail to get any result even just tick 1 box. By The Way, can i know what the use for COUNT(Feature_ID) AS FeatureCount? because it no connect the following code. –  Raywin May 27 '11 at 17:31
    
@Raywin - Using FORM.Feature_ID = "1,2" the 1st query returns Hotel_ID 1. Can you post your sql? The COUNT(Feature_ID) is used to find only records that have all of the selected features. –  Leigh May 27 '11 at 17:39
    
Leigh, thank , if just follow your first code exactly, i can get the answer, when i try just add on restaurant r then i could not get any answer. 2nd code u show me, i keep get error with 'HAVING COUNT(Feature_ID) = 2 ) ck ON ck.Restaurant_ID = r.Restaurant_I' –  Raywin May 27 '11 at 17:48
    
SELECT b.Restaurant_ID, COUNT(b.Feature_ID) AS FeatureCount, r.Name, f.Feature FROM Bridge1_Restaurant_Features b, Restaurants r, Features f <!--- find matching features ---> WHERE b.Feature_ID IN ( <cfqueryparam value="#FORM.Feature_ID#" cfsqltype="cf_sql_integer" list="true"> ) GROUP BY r.Restaurant_ID <!--- having ALL of the requested features ---> HAVING COUNT(b.Feature_ID) = <cfqueryparam value="#listLen(FORM.Feature_ID)#" cfsqltype="cf_sql_integer"> –  Raywin May 27 '11 at 17:48
    
@Raywin - Hm... actually I think I see a flaw in my logic. Let me fix that first. –  Leigh May 27 '11 at 17:51

Change sql to:

SELECT h.Name , h.Hotel_ID, f.feature
FROM Hotel h, Bridge1_Hotel_Features b, Features f
where b.Feature_ID = f.Feature_ID 
      AND b.Hotel_ID = h.Hotel_ID

<cfif #FORM.Feature_ID# IS NOT "">
    AND b.Feature_ID IN (#FORM.Feature_ID#)
</cfif>

Essentially, the optional part of where clause should be restricting the feature_id in the Bridge_Hotel_Features table.

share|improve this answer
1  
You don't need # # around variable names in your CFIF statement. And you REALLY should use cfqueryparam on the form variable –  duncan May 27 '11 at 16:25
    
Thank you everyone, i change to AND b.Feature_ID IN (#FORM.Feature_ID#). But the result i still get both. If Feature_ID = 1 ,2 , the result must only get Hotel_ID = 1 . –  Raywin May 27 '11 at 16:31
    
In that case, expand out the form.feature_id variable: –  Steve Judd May 27 '11 at 16:43
    
Thank duncan, your advise is important! avoid other to modify my database? –  Raywin May 27 '11 at 16:45
    
@Raywin - Yes, @duncan 's advice will help protect you against sql injection. –  Leigh May 27 '11 at 18:50

You need to use EXIST to solve this problem.

SELECT h.Name , h.Hotel_ID, f.feature
FROM Hotel h, Bridge_Hotel_Feature b, Feature f
where b.Feature_ID = f.Feature_ID 
      AND b.Hotel_ID = h.Hotel_ID
AND EXISTS (SELECT feature_id FROM bridge_hotel_feature WHERE feature_id = 1 AND bridge_hotel_feature.hotel_ID = h.hotel_ID)
AND EXISTS (SELECT feature_id FROM bridge_hotel_feature WHERE feature_id = 2 AND bridge_hotel_feature.hotel_ID = h.hotel_ID)

EDIT: The above is an example of what your query needs to look like. To make it dynamic you will add a loop.

I don't have coldfusion experience myself so I can't tell you verbatim what to do with that code.

But what you need to do is wrap the following section of code in a loop and append this to your query string for each checkbox and replace the feature_id in the where clause with the feature_id of each checkbox. AND EXISTS (SELECT feature_id FROM bridge_hotel_feature WHERE feature_id = 1 AND bridge_hotel_feature.hotel_ID = h.hotel_ID)

I hope this makes it clearer for you.

share|improve this answer
    
I try his code, but if my checkbox tick more than 1 box , it get error. –  Raywin May 27 '11 at 17:09
    
What is the error message? Also, are features dynamic? ie Will there be more than 2 features –  Leigh May 27 '11 at 17:46
    
Erm..Because the question is just a simple example, but code have a checkbox, and might tick more than 1 box. Sorry , if just follow the code, there is no error and get the result, sorry for mistake –  Raywin May 27 '11 at 18:04
    
I edited my post. Hopefully it makes it a little clearer as to what you need to do. The SQL produces the correct results, I made a mock table and tested it, I just don't know the coldfusion. –  Jrod May 27 '11 at 19:05
    
Yup, Jrod your code is correct , thank you! Just my case have to use another logic, appreciate for your helping , i get some idea here. –  Raywin May 28 '11 at 0:46

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