Spaces:
Running
Running
update
Browse files
app.py
CHANGED
@@ -50,7 +50,7 @@ def run_inference(
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# ToDo: Add progress bar for multiple smiles
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results = []
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for smi in tqdm(smiles, total=len(smiles)):
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-
result = {}
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output = submission(
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drug={"smiles": smi},
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workspace_id="emulated_workspace_id",
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@@ -64,7 +64,6 @@ def run_inference(
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output.pop("IC50")
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result[f"IC50_{smi}"] = output["log_micromolar_IC50"].squeeze().round(3)
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result[f"IC50_{smi}"].shape
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if confidence:
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result[f"aleatoric_confidence_{smi}"] = (
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output["aleatoric_confidence"].squeeze().round(3)
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@@ -73,8 +72,7 @@ def run_inference(
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output["aleatoric_confidence"].squeeze().round(3)
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)
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results.append(result)
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predicted_df = pd.
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print(predicted_df)
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# Prepare DF to visualize
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if omic_path is None:
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# ToDo: Add progress bar for multiple smiles
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results = []
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for smi in tqdm(smiles, total=len(smiles)):
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+
result = pd.DataFrame({})
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output = submission(
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drug={"smiles": smi},
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workspace_id="emulated_workspace_id",
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output.pop("IC50")
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result[f"IC50_{smi}"] = output["log_micromolar_IC50"].squeeze().round(3)
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if confidence:
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result[f"aleatoric_confidence_{smi}"] = (
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output["aleatoric_confidence"].squeeze().round(3)
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output["aleatoric_confidence"].squeeze().round(3)
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)
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results.append(result)
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predicted_df = pd.concat(results)
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# Prepare DF to visualize
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if omic_path is None:
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