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I am working in Access 2010 with datetime-stamped records (photographs from camera-traps) that signify visits by specific animals (SpeciesID (0-10), AnimalID (1-20) to different camera sites (StationID). I want to calculate the number and duration of visits by each AnimalID to each StationID.

The problem is that sometimes animals visit the same station multiple times in the same day. I have tried queries that group the records by date and show the 'First of' and 'Last of' the datetime field, but this just gives the datetime of the first and last records of that animal at each station on that day, not of each individual visit.

The criteria I want to use is 'if consecutive records of the same animal, species and station are >20 minutes apart, then they are separate visits'. I wonder whether a way to solve this is to create a new field with an update query that gives each visit a unique 'VisitID' number using this criteria, so I can then group records by VisitID to calculate the First and Last datetime for each separate visit? Can anyone suggest a way to do this as a query or in SQL, or think of another way of doing this??

My data table (called Capture) is laid out like this: CaptureID | StationID | SpeciesID | AnimalID | cDateTime

CaptureID is a unique Autonumber for every record. SpeciesID can be 1-10, AnimalID can be 1-20 (but AnimalIDs are only assigned to records of Species 1), StationID can be 1-12, cDateTime can be any time as the camera traps are motion-triggered, and is formatted as DD/MM/YYYY hh:mm:ss. I want the visit duration to be formatted as hh:mm:ss.

Any help or advice much appreciated!!

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If an animal visits every ten minutes for an hour is that one event ? –  Hugh Jones May 24 '13 at 10:03
    
Also - may we take it that AnimalId denotes an individual? –  Hugh Jones May 24 '13 at 10:06
    
Yes, as they are probably still near the camera but just not infront of it. –  user2416916 May 24 '13 at 10:06
    
Yes each individual animal has its own unique AnimalID –  user2416916 May 24 '13 at 10:07
    
So we can ignore the species Id for the purposes of grouping. I also assume that a group of 5 (a family, say) is 5 events. –  Hugh Jones May 24 '13 at 10:09

2 Answers 2

up vote 2 down vote accepted

Here is my solution. My test data is

CaptureID  AnimalID  StationID  cDateTime            VisitStart           VisitEnd
---------  --------  ---------  -------------------  -------------------  -------------------
        1         1          1  2013-05-21 08:00:00                      
        2         2          1  2013-05-21 08:02:00                      
        3         1          1  2013-05-21 08:07:00                      
        4         2          1  2013-05-21 08:21:00                      
        5         1          1  2013-05-21 08:28:00                      

Notes:

  1. I have omitted SpeciesID since AnimalID is the unique identifier, so SpeciesID really belongs in the [Animals] table with the other details about that particular animal.

  2. All VisitStart values are initially NULL. That is important for one of the queries below.

To populate VisitStart, we'll just use the cDateTime for any capture that does not have a previous capture within 20 minutes for the same AnimalID and StationID.

UPDATE Captures SET VisitStart = cDateTime
WHERE NOT EXISTS 
    (
        SELECT * FROM Captures c2 
        WHERE c2.AnimalID=Captures.AnimalID AND c2.StationID=Captures.StationID
            AND c2.cDateTime<Captures.cDateTime
            AND c2.cDateTime>=DateAdd("n", -20, Captures.cDateTime)
    )

That gives us the start times for the discrete visits:

CaptureID  AnimalID  StationID  cDateTime            VisitStart           VisitEnd
---------  --------  ---------  -------------------  -------------------  -------------------
        1         1          1  2013-05-21 08:00:00  2013-05-21 08:00:00          
        2         2          1  2013-05-21 08:02:00  2013-05-21 08:02:00          
        3         1          1  2013-05-21 08:07:00                               
        4         2          1  2013-05-21 08:21:00                               
        5         1          1  2013-05-21 08:28:00  2013-05-21 08:28:00          

Now we can fill in the rest of the VisitStart values by finding the largest previous VisitStart for that AnimalID/StationID

UPDATE Captures 
SET VisitStart = DMax("VisitStart", "Captures", "AnimalID=" & AnimalID & " AND StationID=" & StationID & " AND cDateTime<#" & Format(cDateTime, "yyyy-mm-dd Hh:Nn:Ss") & "#")
WHERE VisitStart IS NULL

That gives us

CaptureID  AnimalID  StationID  cDateTime            VisitStart           VisitEnd
---------  --------  ---------  -------------------  -------------------  -------------------
        1         1          1  2013-05-21 08:00:00  2013-05-21 08:00:00          
        2         2          1  2013-05-21 08:02:00  2013-05-21 08:02:00          
        3         1          1  2013-05-21 08:07:00  2013-05-21 08:00:00          
        4         2          1  2013-05-21 08:21:00  2013-05-21 08:02:00          
        5         1          1  2013-05-21 08:28:00  2013-05-21 08:28:00          

A similar query can calculate the VisitEnd values

UPDATE Captures 
SET VisitEnd = DMax("cDateTime", "Captures", "AnimalID=" & AnimalID & " AND StationID=" & StationID & " AND VisitStart=#" & Format(VisitStart, "yyyy-mm-dd Hh:Nn:Ss") & "#")

The result is

CaptureID  AnimalID  StationID  cDateTime            VisitStart           VisitEnd           
---------  --------  ---------  -------------------  -------------------  -------------------
        1         1          1  2013-05-21 08:00:00  2013-05-21 08:00:00  2013-05-21 08:07:00
        2         2          1  2013-05-21 08:02:00  2013-05-21 08:02:00  2013-05-21 08:21:00
        3         1          1  2013-05-21 08:07:00  2013-05-21 08:00:00  2013-05-21 08:07:00
        4         2          1  2013-05-21 08:21:00  2013-05-21 08:02:00  2013-05-21 08:21:00
        5         1          1  2013-05-21 08:28:00  2013-05-21 08:28:00  2013-05-21 08:28:00

Calculating the visit duration is simply a matter of using DateDiff() on VisitStart and VisitEnd. Note that the last visit will have a duration of zero since there was only one capture for it.

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Hi, thanks for writing the SQL for me. It worked perfectly up until the VisitEnd query - It said some of the records couldn't be updated due to a conversion type error. Any idea why this might be? It looks like the only records that were updated were those with a VisitEnd time the same as the VisitStart time...? –  user2416916 May 24 '13 at 17:31
    
@user2416916 Are [cDateTime], [VisitStart] and [VisitEnd] all Access Date/Time columns? –  Gord Thompson May 24 '13 at 17:38
    
Yes, all Date/Time fields and the format is General Date –  user2416916 May 24 '13 at 18:03
    
Sorry about that. I think the dd/mm/yyyy format was confusing my code. (Will I ever learn...?). I tweaked the last two queries with Format() to accommodate that. You may want to set [VisitStart] and [VisitEnd] back to NULL and start again, just to be sure that no Feb 4s became April 2s. :( –  Gord Thompson May 24 '13 at 18:18
    
Okay I will try that thanks! –  user2416916 May 24 '13 at 18:20

You could define an on insert trigger for the capture table and a new field 'VisitStart'.

The trigger would, in pseudocode:

Search for any record with a capture date + AnimalId within 20 mins of this capture.

If one exists then take its VisitStart field to populate the new record's VisitStart.

If none exists then set new VisitStart to Capture Date.

I realise this does not help you with your existing data but a one-off process to pump-prime the system should be possible.

Any good ?

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This could work yes, and I suppose write a similar trigger for the VisitEnd? –  user2416916 May 24 '13 at 10:57
    
although when I add new records to the Capture table the animalID is not assigned straight away, which is why a query would be better... –  user2416916 May 24 '13 at 10:59
    
VisitEnd could be calculated - Max(VisitDate) group by VisitStart. A Query is going to be (nearly) impossible because of the sequential logic required. You could of course create a pre-processing procedure to make these calculations so that a query can be easily fashioned –  Hugh Jones May 24 '13 at 12:50
    
If the animalId is not assigned immediately then you have a major problem –  Hugh Jones May 24 '13 at 13:25

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