Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Am I doing this right? I went to look at some old PHP code w/ MySQL and I've managed to get it to work, however I'm wondering if there's a much "cleaner" and "faster" way of accomplishing this.

First I would need to get the total number of "documents"

$total_documents = $collection->find(array("tags" => $tag, 
        "seeking" => $this->session->userdata('gender'), 
        "gender" => $this->session->userdata('seeking')))->count();

$skip = (int)($docs_per_page * ($page - 1));
$limit = $docs_per_page;
$total_pages = ceil($total_documents / $limit);

// Query to populate array so I can display with pagination

$data['result'] = $collection->find(array("tags" => $tag, 
        "seeking" => $this->session->userdata('gender'), 
        "gender" => $this->session->userdata('seeking')))->limit($limit)->skip($skip)->sort(array("_id" => -1));

My question is, can I run the query in one shot? I'm basically running the same query twice, except the second time I'm passing the value to skip between records.

-- New code ...

Ok, unless someone knows of another way to do this (if it's possible), I'm going to say it's not doable. With that said, I changed the way I run my queries through mongodb, which yielded better looking code. ;-) I was trying to minimize the trips to the DB, but oh well hopefully this doesn't take a performance hit. My other attempt was to count the number of elements in the array, but quickly found out that wouldn't work since the $limit & $skip parameters would give ITS total number of docs.

$skip = (int)($docs_per_page * ($page - 1));
$limit = $docs_per_page;

$query = array("loc" => array('$near' => array('lat' => $latitude, 'lon' => $longitute) ),
        "tags" => $tag, "seeking" => $this->session->userdata('gender'),
        "gender" => $this->session->userdata('seeking'));

$fields = array("username", "zipcode", "tags", "birth_date");
$total_documents = $collection->find($query, array("_id"))->count();
$data['result'] = $collection->find($query, $fields)->limit($limit)->skip($skip);
share|improve this question
add comment

2 Answers

up vote 18 down vote accepted

Since the result of find()->limit()->skip() is a Mongo_Cursor you don't have to execute the actual query twice.

The following should work as well :

$skip = (int)($docs_per_page * ($page - 1));
$limit = $docs_per_page;

$query = array("loc" => array('$near' => array('lat' => $latitude, 'lon' => $longitute) ),
    "tags" => $tag, "seeking" => $this->session->userdata('gender'),
    "gender" => $this->session->userdata('seeking'));

$fields = array("username", "zipcode", "tags", "birth_date");
$cursor = $collection->find($query, $fields)->limit($limit)->skip($skip);
$total_documents = $cursor->count();
$data['result'] = $cursor;

btw I first misread your question, I thought you didn't know about limit & skip.

share|improve this answer
    
wow, thanks a lot. works perfectly! –  luckytaxi Jun 16 '10 at 15:25
1  
shouldn't skip come before limit? –  Chamila May 1 '13 at 16:11
add comment

Yes you are doing right. And you can run query in one shot.

Here is a paging example:

function printStudents(pageNumber, nPerPage) {
   print("Page: " + pageNumber);
   db.students.find().skip((pageNumber-1)*nPerPage).limit(nPerPage).forEach( function(student) { print(student.name + "<p>"); } );
}

Reference: Advanced Queries - MongoDB: http://www.mongodb.org/display/DOCS/Advanced+Queries#AdvancedQueries-{{skip%28%29}}

share|improve this answer
    
I played with it some more and realized I didn't really need the first query. I just need something like this $total_documents = $collection->find($query, array("_id"))->count(); –  luckytaxi Jun 10 '10 at 13:31
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.