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As the question states, I want to create multiple models of same type. Let's say I've got this simple class for sensor data:

class Sensor_data(models.Model):
    value = models.FloatField()
    #other stuff

And all sensors in my system have a unique ID.
So I would be able to create an own data-table for these sensor by naming them SensorID.Sensor_data ( I want to do this because each sensor will generate a large amount of data )

I've read about dynamic models, but since I don't need to be able to register new sensor in runtime, I've not tried to implement it. (Or is this the best way??)

And even if I manage to create multiple models of same type, how can I register all those models to admin site and manage them as super-admin? (Thinking of that the django admin only can register one type per object? right? ) thinking of the model is already registered Error <-------- Not sure about this

So what would you do? To e.g. create 100 tables of same type?

Keep in mind that I'm kind of new to both django and python

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Why not create type column in your table that would describe the sensor type? –  matino Jun 28 '13 at 9:05
3  
Pleas see stackoverflow.com/a/16768830/671575 –  Seppo Erviälä Jun 28 '13 at 9:30
    
@SeppoErviälä, so you think partitioning is the way to go? What is the best way to structure the partitioning in this case? Let's say that I get new values each 10 seconds for each sensor in my system. Should I then: Partitioning by different date-stamps, let's say each week so the table storing the data won't get too large. And still have the relationship with Sensor by sensor_id ? or Partitioning by the sensor_id so each data-table is connected to each sensor? (sounds to me like the best option here though) –  user2530984 Jun 29 '13 at 8:48
    
@SeppoErviälä And lastly, do you know any examples of how to implement this in django? –  user2530984 Jun 29 '13 at 8:56
    
@matino in my case I will store large amount of data, and I figure that if I use a relation with a sensor the queries will (at some point) be inefficient. If this was what you meant? –  user2530984 Jun 29 '13 at 9:07

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