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Parent(s):
19dfa7a
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Browse files- app.py +18 -3
- mammal_demo/ppi_task.py +1 -1
app.py
CHANGED
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@@ -3,32 +3,47 @@ import gradio as gr
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from mammal_demo.demo_framework import MammalObjectBroker, MammalTask
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from mammal_demo.dti_task import DtiTask
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from mammal_demo.ppi_task import PpiTask
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all_tasks: dict[str, MammalTask] = dict()
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all_models: dict[str, MammalObjectBroker] = dict()
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ppi_task = PpiTask(model_dict=all_models)
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all_tasks[ppi_task.name] = ppi_task
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tdi_task = DtiTask(model_dict=all_models)
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all_tasks[tdi_task.name] = tdi_task
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ppi_model = MammalObjectBroker(
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model_path="ibm/biomed.omics.bl.sm.ma-ted-458m", task_list=[ppi_task.name]
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)
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all_models[ppi_model.name] = ppi_model
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tdi_model = MammalObjectBroker(
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model_path="ibm/biomed.omics.bl.sm.ma-ted-458m.dti_bindingdb_pkd",
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)
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all_models[tdi_model.name] = tdi_model
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def create_application():
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def task_change(value):
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visibility = [gr.update(visible=(task == value)) for task in all_tasks.keys()]
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# all_tasks[task].demo().visible =
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choices = [
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model_name
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for model_name, model in all_models.items()
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from mammal_demo.demo_framework import MammalObjectBroker, MammalTask
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from mammal_demo.dti_task import DtiTask
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from mammal_demo.ppi_task import PpiTask
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from mammal_demo.tcr_task import TcrTask
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all_tasks: dict[str, MammalTask] = dict()
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all_models: dict[str, MammalObjectBroker] = dict()
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# first create the required tasks
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# Note that the tasks need access to the models, as the model to use depends on the state of the widget
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# we pass the all_models dict and update it when we actualy have the models.
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ppi_task = PpiTask(model_dict=all_models)
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all_tasks[ppi_task.name] = ppi_task
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tdi_task = DtiTask(model_dict=all_models)
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all_tasks[tdi_task.name] = tdi_task
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tcr_task = TcrTask(model_dict=all_models)
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all_tasks[tcr_task.name] = tcr_task
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# create the model holders. hold the model and the tokenizer, lazy download
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# note that the list of relevent tasks needs to be stated.
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ppi_model = MammalObjectBroker(
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model_path="ibm/biomed.omics.bl.sm.ma-ted-458m", task_list=[ppi_task.name,tcr_task.name]
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)
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all_models[ppi_model.name] = ppi_model
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tdi_model = MammalObjectBroker(
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model_path="ibm/biomed.omics.bl.sm.ma-ted-458m.dti_bindingdb_pkd",
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task_list=[tdi_task.name],
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)
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all_models[tdi_model.name] = tdi_model
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tcr_model = MammalObjectBroker(
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model_path= "ibm/biomed.omics.bl.sm.ma-ted-458m.tcr_epitope_bind",
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task_list=[tcr_task.name]
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)
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all_models[tcr_model.name] = tcr_model
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def create_application():
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def task_change(value):
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visibility = [gr.update(visible=(task == value)) for task in all_tasks.keys()]
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choices = [
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model_name
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for model_name, model in all_models.items()
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mammal_demo/ppi_task.py
CHANGED
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@@ -140,9 +140,9 @@ class PpiTask(MammalTask):
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)
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with gr.Row():
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prompt_box = gr.Textbox(label="Mammal prompt", lines=5)
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score_box = gr.Number(label="PPI score")
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with gr.Row():
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decoded = gr.Textbox(label="Mammal output")
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run_mammal.click(
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fn=self.create_and_run_prompt,
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inputs=[model_name_widget, prot1, prot2],
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)
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with gr.Row():
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prompt_box = gr.Textbox(label="Mammal prompt", lines=5)
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with gr.Row():
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decoded = gr.Textbox(label="Mammal output")
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score_box = gr.Number(label="PPI score")
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run_mammal.click(
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fn=self.create_and_run_prompt,
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inputs=[model_name_widget, prot1, prot2],
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