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https://github.com/NicolasBohn/NexQuant.git
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Several update on the repo (see desc) (#76)
* ignore result csv file * fix app scripts * rename taskgenerator to developer and generate to develop * fix a config bug in coder * fix a small bug in factor coder evaluators * remove a single logger in factor coder evaluators * fix a small bug in model coder main.py * rename Implementation to Workspace * move the prepare the inject_code into FBWorkspace to align all the behavior * fix a small bug in model feedback * remove debug lines for multi processing and simplify evaluators multi proc * add a copy function to workspace to freeze the workspace && add config prefix to speed up debugging * make hypothesisgen a abc class * use Qlib***Experiment * fix a small bug * rename Imp to Ws * rename sub_implementations to sub_workspace_list * fix a bug in feedback not presented as content in prompts * move proposal pys to proposal folder * reformat the folder * align factor and model qlib workspace and use template to handle the workspace * add a filter to evoagent to filter out false evo * align multi_proc_n into RDAGENT seeting * handle when runner gets empty experiment * fix logger merge remaining problems * fix black and isort automatically
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@@ -1,7 +1,7 @@
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# TODO: inherent from the benchmark base class
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import torch
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from rdagent.components.coder.model_coder.model import ModelImplementation
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from rdagent.components.coder.model_coder.model import ModelFBWorkspace
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def get_data_conf(init_val):
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@@ -32,7 +32,7 @@ class ModelImpValEval:
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For each hidden output, we can calculate a correlation. The average correlation will be the metrics.
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"""
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def evaluate(self, gt: ModelImplementation, gen: ModelImplementation):
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def evaluate(self, gt: ModelFBWorkspace, gen: ModelFBWorkspace):
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round_n = 10
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eval_pairs: list[tuple] = []
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