Anton Dmitriev created IGNITE-10234:
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             Summary: ML: Create a skeleton for model inference in Apache Ignite
                 Key: IGNITE-10234
                 URL: https://issues.apache.org/jira/browse/IGNITE-10234
             Project: Ignite
          Issue Type: Sub-task
          Components: ml
    Affects Versions: 2.8
            Reporter: Anton Dmitriev
            Assignee: Anton Dmitriev
             Fix For: 2.8


To support model inference in Apache Ignite for our models as well as for 
loaded foreign models we need a common inference workflow. 

This workflow should isolate model _inference/using_ from model 
_training/saving_. User should be able to:
* *Load/Unload any possible model (that can be represented as a function).*
_This part assumes that user specifies any underlying model, a bridge that 
allows to interact with it and a signature of the model (accepted parameters, 
returned value)._

* *Access a list of loaded models.*
_Used should be able to access a list of loaded models, models that can be used 
for inference without any additional manipulations. In terms of future Cloud 
part it will be a table of models user can use in Web UI and start using it._

* *Start/Stop distributed infrastructure for inference utilizing cluster 
resources.*
_Single inference is actually a single function call. We want to utilize all 
cluster resources, so we need to replicate the model and start services that 
are ready to use the model for inference on every node._

* *Perform inference on top of started infrastructure.*
_There are should be a gateway that allows to use a single entry point to 
perform inference utilizing started on the previous step distributed service 
infrastructure._



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