Sebastian Junges
6 years ago
1 changed files with 106 additions and 0 deletions
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**************** |
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Exploring Models |
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**************** |
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Background |
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===================== |
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Often, stormpy is used as a testbed for new algorithms. |
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An essential step is to transfer the (low-level) descriptions of an MDP or other state-based model into |
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an own algorithm. In this section, we discuss some of the functionality. |
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Reading MDPs |
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===================== |
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.. seealso:: `01-exploration.py <https://github.com/moves-rwth/stormpy/blob/master/examples/exploration/01-exploration.py>`_ |
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In :doc:`../getting_started`, we briefly iterated over a DTMC. In this section, we explore an MDP:: |
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>>> import doctest |
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>>> doctest.ELLIPSIS_MARKER = '-etc-' # doctest:+ELLIPSIS |
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>>> import stormpy |
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>>> import stormpy.examples |
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>>> import stormpy.examples.files |
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>>> program = stormpy.parse_prism_program(stormpy.examples.files.prism_mdp_maze) |
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>>> prop = "R=? [F \"goal\"]" |
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>>> properties = stormpy.parse_properties_for_prism_program(prop, program, None) |
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>>> model = stormpy.build_model(program, properties) |
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The iteration over the model is as before, but now, for every action, we can have several transitions:: |
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>>> for state in model.states: |
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... if state.id in model.initial_states: |
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... print("State {} is initial".format(state.id)) |
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... for action in state.actions: |
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... for transition in action.transitions: |
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... print("From state {} by action {}, with probability {}, go to state {}".format(state, action, transition.value(), transition.column)) |
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-etc- |
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The output (omitted for brievety) contains sentences like: |
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From state 1 by action 0, with probability 1.0, go to state 2 |
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From state 1 by action 1, with probability 1.0, go to state 1 |
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Internally, storm can hold hints to the origin of the actions, which may be helpful to give meaning and for debugging. |
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As the availability and the encoding of this data depends on the input model, we discuss these features in :doc:`highlevel_models`. |
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Storm currently supports deterministic rewards on states or actions. More information can be found in that :doc:`reward_models`. |
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Reading POMDPs |
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====================== |
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.. seealso:: `02-exploration.py <https://github.com/moves-rwth/stormpy/blob/master/examples/exploration/01-exploration.py>`_ |
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Internally, POMDPs extend MDPs. Thus, iterating over the MDP is done as before. |
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>>> import stormpy |
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>>> import stormpy.examples |
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>>> import stormpy.examples.files |
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>>> program = stormpy.parse_prism_program(stormpy.examples.files.prism_pomdp_maze) |
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>>> prop = "R=? [F \"goal\"]" |
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>>> properties = stormpy.parse_properties_for_prism_program(prop, program, None) |
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>>> model = stormpy.build_model(program, properties) |
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Indeed, all that changed in the code above is the example we use. |
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And, that the model type now is a POMDP:: |
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>>> print(model.model_type) |
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ModelType.POMDP |
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Additionally, POMDPs have a set of observations, which are internally just numbered by an integer from 0 to the number of observations -1 :: |
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>>> print(model.nr_observations) |
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8 |
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>>> for state in model.states: |
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... print("State {} has observation id {}".format(state.id, model.observations[state.id])) |
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State 0 has observation id 6 |
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State 1 has observation id 1 |
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State 2 has observation id 4 |
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State 3 has observation id 7 |
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State 4 has observation id 4 |
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State 5 has observation id 3 |
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State 6 has observation id 0 |
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State 7 has observation id 0 |
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State 8 has observation id 0 |
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State 9 has observation id 0 |
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State 10 has observation id 0 |
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State 11 has observation id 0 |
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State 12 has observation id 2 |
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State 13 has observation id 2 |
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State 14 has observation id 4 |
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State 15 has observation id 5 |
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Reading MAs |
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====================== |
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To be continued... |
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