updated models
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@@ -1,10 +1,45 @@
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from __future__ import annotations
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from pydantic import BaseModel
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from typing import List
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import random
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class ExperientialModelOutput(BaseModel):
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class ModelOutput(BaseModel):
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@classmethod
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def classname(cls) -> str:
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"""Return classname."""
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return cls.__name__
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@classmethod
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def list_fields(cls) -> List[str]:
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"""List options that are stored as attributes."""
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return list(cls.model_fields.keys())
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@classmethod
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def from_random(cls):
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"""Instantiate with random numbers."""
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kwargs = {field: random.random() for field in cls.list_fields()}
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return cls(**kwargs)
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def __repr__(self) -> str:
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model_dict = self.model_dump()
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model_repr_str = f"{self.classname()}("
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model_repr_str += ", ".join([f"{field}={value:.3f}" for field, value in model_dict.items()])
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model_repr_str += ")"
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return model_repr_str
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def highest_score_field(self) -> str:
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"""Return name of field with highest score."""
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model_dict = self.model_dump()
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return max(model_dict, key=lambda k: model_dict[k])
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def highest_score_value(self) -> float:
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"""Return value of field with highest score."""
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model_dict = self.model_dump()
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return max(model_dict.values())
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class ExperientialModelOutput(ModelOutput):
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non_transactional_action: float
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non_transactional_reaction: float
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unidirectional_transactional_action: float
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@@ -24,34 +59,6 @@ class ExperientialModelOutput(BaseModel):
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symbolic_suggestive: float
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symbolic_attributive: float
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@classmethod
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def list_fields(cls) -> List[str]:
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"""List options that are stored as attributes."""
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return list(cls.model_fields.keys())
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@classmethod
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def from_random(cls) -> ExperientialModelOutput:
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"""Instantiate with random numbers."""
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kwargs = {field: random.random() for field in cls.list_fields()}
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return ExperientialModelOutput(**kwargs)
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def __repr__(self) -> str:
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model_dict = self.model_dump()
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model_repr_str = "ExperientialModelOutput("
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model_repr_str += ", ".join([f"{field}={value:.3f}" for field, value in model_dict.items()])
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model_repr_str += ")"
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return model_repr_str
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def highest_score_field(self) -> str:
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"""Return name of field with highest score."""
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model_dict = self.model_dump()
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return max(model_dict, key=lambda k: model_dict[k])
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def highest_score_value(self) -> float:
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"""Return value of field with highest score."""
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model_dict = self.model_dump()
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return max(model_dict.values())
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if __name__ == '__main__':
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m = ExperientialModelOutput.from_random()
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@@ -1,5 +1,5 @@
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from pydantic import BaseModel
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from typing import List, Dict
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from typing import List
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import random
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@@ -88,35 +88,6 @@ class ModalityDepthModelOutput(ModelOutput):
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# modality_color: ModalityColorModelOutput
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# modality_depth: ModalityDepthModelOutput
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# @classmethod
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# def list_fields(cls) -> List[str]:
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# """List options that are stored as attributes."""
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# return list(cls.model_fields.keys())
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# @classmethod
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# def from_random(cls) -> InterpersonalModelOutput:
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# """Instantiate with random numbers."""
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# print(cls.model_fields)
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# kwargs = {field: info.annotation.from_random() for field, info in cls.model_fields.items()}
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# return InterpersonalModelOutput(**kwargs)
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# def __repr__(self) -> str:
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# model_dict = self.model_dump()
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# model_repr_str = "ExperientialModelOutput("
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# model_repr_str += ", ".join([f"{field}={value:.3f}" for field, value in model_dict.items()])
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# model_repr_str += ")"
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# return model_repr_str
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# def highest_score_field(self) -> str:
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# """Return name of field with highest score."""
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# model_dict = self.model_dump()
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# return max(model_dict, key=lambda k: model_dict[k])
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# def highest_score_value(self) -> float:
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# """Return value of field with highest score."""
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# model_dict = self.model_dump()
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# return max(model_dict.values())
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if __name__ == '__main__':
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m = ContactModelOutput.from_random()
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@@ -1,5 +1,5 @@
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from pydantic import BaseModel
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from typing import List, Dict
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from typing import List
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import random
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