mirror of
https://github.com/invoke-ai/InvokeAI
synced 2024-08-30 20:32:17 +00:00
475 lines
18 KiB
Python
475 lines
18 KiB
Python
# Copyright (c) 2022 Kyle Schouviller (https://github.com/kyle0654)
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import argparse
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import re
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import shlex
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import sys
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import time
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from typing import Union, get_type_hints, Optional
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from pydantic import BaseModel, ValidationError
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from pydantic.fields import Field
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# This should come early so that the logger can pick up its configuration options
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from .services.config import InvokeAIAppConfig
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from invokeai.backend.util.logging import InvokeAILogger
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config = InvokeAIAppConfig.get_config()
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config.parse_args()
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logger = InvokeAILogger().getLogger(config=config)
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from invokeai.version.invokeai_version import __version__
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# we call this early so that the message appears before other invokeai initialization messages
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if config.version:
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print(f'InvokeAI version {__version__}')
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sys.exit(0)
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from invokeai.app.services.board_image_record_storage import (
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SqliteBoardImageRecordStorage,
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)
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from invokeai.app.services.board_images import (
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BoardImagesService,
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BoardImagesServiceDependencies,
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)
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from invokeai.app.services.board_record_storage import SqliteBoardRecordStorage
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from invokeai.app.services.boards import BoardService, BoardServiceDependencies
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from invokeai.app.services.image_record_storage import SqliteImageRecordStorage
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from invokeai.app.services.images import ImageService, ImageServiceDependencies
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from invokeai.app.services.metadata import CoreMetadataService
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from invokeai.app.services.resource_name import SimpleNameService
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from invokeai.app.services.urls import LocalUrlService
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from .services.default_graphs import (default_text_to_image_graph_id,
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create_system_graphs)
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from .services.latent_storage import DiskLatentsStorage, ForwardCacheLatentsStorage
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from .cli.commands import (BaseCommand, CliContext, ExitCli,
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SortedHelpFormatter, add_graph_parsers, add_parsers)
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from .cli.completer import set_autocompleter
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from .invocations.baseinvocation import BaseInvocation
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from .services.events import EventServiceBase
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from .services.graph import (Edge, EdgeConnection, GraphExecutionState,
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GraphInvocation, LibraryGraph,
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are_connection_types_compatible)
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from .services.image_file_storage import DiskImageFileStorage
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from .services.invocation_queue import MemoryInvocationQueue
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from .services.invocation_services import InvocationServices
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from .services.invoker import Invoker
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from .services.model_manager_service import ModelManagerService
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from .services.processor import DefaultInvocationProcessor
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from .services.restoration_services import RestorationServices
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from .services.sqlite import SqliteItemStorage
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import torch
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if torch.backends.mps.is_available():
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import invokeai.backend.util.mps_fixes
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class CliCommand(BaseModel):
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command: Union[BaseCommand.get_commands() + BaseInvocation.get_invocations()] = Field(discriminator="type") # type: ignore
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class InvalidArgs(Exception):
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pass
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def add_invocation_args(command_parser):
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# Add linking capability
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command_parser.add_argument(
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"--link",
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"-l",
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action="append",
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nargs=3,
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help="A link in the format 'source_node source_field dest_field'. source_node can be relative to history (e.g. -1)",
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)
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command_parser.add_argument(
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"--link_node",
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"-ln",
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action="append",
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help="A link from all fields in the specified node. Node can be relative to history (e.g. -1)",
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)
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def get_command_parser(services: InvocationServices) -> argparse.ArgumentParser:
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# Create invocation parser
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parser = argparse.ArgumentParser(formatter_class=SortedHelpFormatter)
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def exit(*args, **kwargs):
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raise InvalidArgs
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parser.exit = exit
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subparsers = parser.add_subparsers(dest="type")
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# Create subparsers for each invocation
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invocations = BaseInvocation.get_all_subclasses()
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add_parsers(subparsers, invocations, add_arguments=add_invocation_args)
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# Create subparsers for each command
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commands = BaseCommand.get_all_subclasses()
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add_parsers(subparsers, commands, exclude_fields=["type"])
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# Create subparsers for exposed CLI graphs
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# TODO: add a way to identify these graphs
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text_to_image = services.graph_library.get(default_text_to_image_graph_id)
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add_graph_parsers(subparsers, [text_to_image], add_arguments=add_invocation_args)
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return parser
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class NodeField():
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alias: str
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node_path: str
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field: str
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field_type: type
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def __init__(self, alias: str, node_path: str, field: str, field_type: type):
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self.alias = alias
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self.node_path = node_path
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self.field = field
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self.field_type = field_type
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def fields_from_type_hints(hints: dict[str, type], node_path: str) -> dict[str,NodeField]:
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return {k:NodeField(alias=k, node_path=node_path, field=k, field_type=v) for k, v in hints.items()}
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def get_node_input_field(graph: LibraryGraph, field_alias: str, node_id: str) -> NodeField:
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"""Gets the node field for the specified field alias"""
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exposed_input = next(e for e in graph.exposed_inputs if e.alias == field_alias)
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node_type = type(graph.graph.get_node(exposed_input.node_path))
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return NodeField(alias=exposed_input.alias, node_path=f'{node_id}.{exposed_input.node_path}', field=exposed_input.field, field_type=get_type_hints(node_type)[exposed_input.field])
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def get_node_output_field(graph: LibraryGraph, field_alias: str, node_id: str) -> NodeField:
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"""Gets the node field for the specified field alias"""
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exposed_output = next(e for e in graph.exposed_outputs if e.alias == field_alias)
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node_type = type(graph.graph.get_node(exposed_output.node_path))
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node_output_type = node_type.get_output_type()
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return NodeField(alias=exposed_output.alias, node_path=f'{node_id}.{exposed_output.node_path}', field=exposed_output.field, field_type=get_type_hints(node_output_type)[exposed_output.field])
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def get_node_inputs(invocation: BaseInvocation, context: CliContext) -> dict[str, NodeField]:
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"""Gets the inputs for the specified invocation from the context"""
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node_type = type(invocation)
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if node_type is not GraphInvocation:
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return fields_from_type_hints(get_type_hints(node_type), invocation.id)
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else:
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graph: LibraryGraph = context.invoker.services.graph_library.get(context.graph_nodes[invocation.id])
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return {e.alias: get_node_input_field(graph, e.alias, invocation.id) for e in graph.exposed_inputs}
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def get_node_outputs(invocation: BaseInvocation, context: CliContext) -> dict[str, NodeField]:
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"""Gets the outputs for the specified invocation from the context"""
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node_type = type(invocation)
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if node_type is not GraphInvocation:
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return fields_from_type_hints(get_type_hints(node_type.get_output_type()), invocation.id)
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else:
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graph: LibraryGraph = context.invoker.services.graph_library.get(context.graph_nodes[invocation.id])
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return {e.alias: get_node_output_field(graph, e.alias, invocation.id) for e in graph.exposed_outputs}
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def generate_matching_edges(
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a: BaseInvocation, b: BaseInvocation, context: CliContext
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) -> list[Edge]:
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"""Generates all possible edges between two invocations"""
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afields = get_node_outputs(a, context)
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bfields = get_node_inputs(b, context)
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matching_fields = set(afields.keys()).intersection(bfields.keys())
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# Remove invalid fields
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invalid_fields = set(["type", "id"])
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matching_fields = matching_fields.difference(invalid_fields)
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# Validate types
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matching_fields = [f for f in matching_fields if are_connection_types_compatible(afields[f].field_type, bfields[f].field_type)]
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edges = [
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Edge(
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source=EdgeConnection(node_id=afields[alias].node_path, field=afields[alias].field),
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destination=EdgeConnection(node_id=bfields[alias].node_path, field=bfields[alias].field)
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)
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for alias in matching_fields
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]
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return edges
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class SessionError(Exception):
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"""Raised when a session error has occurred"""
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pass
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def invoke_all(context: CliContext):
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"""Runs all invocations in the specified session"""
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context.invoker.invoke(context.session, invoke_all=True)
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while not context.get_session().is_complete():
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# Wait some time
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time.sleep(0.1)
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# Print any errors
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if context.session.has_error():
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for n in context.session.errors:
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context.invoker.services.logger.error(
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f"Error in node {n} (source node {context.session.prepared_source_mapping[n]}): {context.session.errors[n]}"
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)
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raise SessionError()
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def invoke_cli():
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logger.info(f'InvokeAI version {__version__}')
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# get the optional list of invocations to execute on the command line
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parser = config.get_parser()
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parser.add_argument('commands',nargs='*')
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invocation_commands = parser.parse_args().commands
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# get the optional file to read commands from.
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# Simplest is to use it for STDIN
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if infile := config.from_file:
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sys.stdin = open(infile,"r")
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model_manager = ModelManagerService(config,logger)
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events = EventServiceBase()
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output_folder = config.output_path
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# TODO: build a file/path manager?
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if config.use_memory_db:
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db_location = ":memory:"
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else:
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db_location = config.db_path
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db_location.parent.mkdir(parents=True,exist_ok=True)
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logger.info(f'InvokeAI database location is "{db_location}"')
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graph_execution_manager = SqliteItemStorage[GraphExecutionState](
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filename=db_location, table_name="graph_executions"
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)
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urls = LocalUrlService()
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metadata = CoreMetadataService()
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image_record_storage = SqliteImageRecordStorage(db_location)
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image_file_storage = DiskImageFileStorage(f"{output_folder}/images")
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names = SimpleNameService()
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board_record_storage = SqliteBoardRecordStorage(db_location)
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board_image_record_storage = SqliteBoardImageRecordStorage(db_location)
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boards = BoardService(
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services=BoardServiceDependencies(
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board_image_record_storage=board_image_record_storage,
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board_record_storage=board_record_storage,
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image_record_storage=image_record_storage,
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url=urls,
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logger=logger,
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)
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)
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board_images = BoardImagesService(
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services=BoardImagesServiceDependencies(
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board_image_record_storage=board_image_record_storage,
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board_record_storage=board_record_storage,
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image_record_storage=image_record_storage,
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url=urls,
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logger=logger,
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)
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)
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images = ImageService(
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services=ImageServiceDependencies(
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board_image_record_storage=board_image_record_storage,
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image_record_storage=image_record_storage,
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image_file_storage=image_file_storage,
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metadata=metadata,
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url=urls,
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logger=logger,
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names=names,
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graph_execution_manager=graph_execution_manager,
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)
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)
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services = InvocationServices(
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model_manager=model_manager,
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events=events,
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latents = ForwardCacheLatentsStorage(DiskLatentsStorage(f'{output_folder}/latents')),
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images=images,
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boards=boards,
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board_images=board_images,
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queue=MemoryInvocationQueue(),
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graph_library=SqliteItemStorage[LibraryGraph](
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filename=db_location, table_name="graphs"
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),
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graph_execution_manager=graph_execution_manager,
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processor=DefaultInvocationProcessor(),
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restoration=RestorationServices(config,logger=logger),
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logger=logger,
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configuration=config,
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)
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system_graphs = create_system_graphs(services.graph_library)
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system_graph_names = set([g.name for g in system_graphs])
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set_autocompleter(services)
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invoker = Invoker(services)
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session: GraphExecutionState = invoker.create_execution_state()
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parser = get_command_parser(services)
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re_negid = re.compile('^-[0-9]+$')
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# Uncomment to print out previous sessions at startup
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# print(services.session_manager.list())
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context = CliContext(invoker, session, parser)
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set_autocompleter(services)
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command_line_args_exist = len(invocation_commands) > 0
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done = False
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while not done:
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try:
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if command_line_args_exist:
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cmd_input = invocation_commands.pop(0)
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done = len(invocation_commands) == 0
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else:
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cmd_input = input("invoke> ")
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except (KeyboardInterrupt, EOFError):
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# Ctrl-c exits
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break
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try:
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# Refresh the state of the session
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#history = list(get_graph_execution_history(context.session))
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history = list(reversed(context.nodes_added))
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# Split the command for piping
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cmds = cmd_input.split("|")
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start_id = len(context.nodes_added)
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current_id = start_id
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new_invocations = list()
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for cmd in cmds:
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if cmd is None or cmd.strip() == "":
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raise InvalidArgs("Empty command")
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# Parse args to create invocation
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args = vars(context.parser.parse_args(shlex.split(cmd.strip())))
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# Override defaults
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for field_name, field_default in context.defaults.items():
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if field_name in args:
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args[field_name] = field_default
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# Parse invocation
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command: CliCommand = None # type:ignore
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system_graph: Optional[LibraryGraph] = None
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if args['type'] in system_graph_names:
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system_graph = next(filter(lambda g: g.name == args['type'], system_graphs))
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invocation = GraphInvocation(graph=system_graph.graph, id=str(current_id))
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for exposed_input in system_graph.exposed_inputs:
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if exposed_input.alias in args:
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node = invocation.graph.get_node(exposed_input.node_path)
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field = exposed_input.field
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setattr(node, field, args[exposed_input.alias])
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command = CliCommand(command = invocation)
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context.graph_nodes[invocation.id] = system_graph.id
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else:
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args["id"] = current_id
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command = CliCommand(command=args)
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if command is None:
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continue
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# Run any CLI commands immediately
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if isinstance(command.command, BaseCommand):
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# Invoke all current nodes to preserve operation order
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invoke_all(context)
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# Run the command
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command.command.run(context)
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continue
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# TODO: handle linking with library graphs
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# Pipe previous command output (if there was a previous command)
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edges: list[Edge] = list()
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if len(history) > 0 or current_id != start_id:
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from_id = (
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history[0] if current_id == start_id else str(current_id - 1)
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)
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from_node = (
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next(filter(lambda n: n[0].id == from_id, new_invocations))[0]
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if current_id != start_id
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else context.session.graph.get_node(from_id)
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)
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matching_edges = generate_matching_edges(
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from_node, command.command, context
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)
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edges.extend(matching_edges)
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# Parse provided links
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if "link_node" in args and args["link_node"]:
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for link in args["link_node"]:
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node_id = link
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if re_negid.match(node_id):
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node_id = str(current_id + int(node_id))
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link_node = context.session.graph.get_node(node_id)
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matching_edges = generate_matching_edges(
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link_node, command.command, context
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)
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matching_destinations = [e.destination for e in matching_edges]
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edges = [e for e in edges if e.destination not in matching_destinations]
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edges.extend(matching_edges)
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if "link" in args and args["link"]:
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for link in args["link"]:
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edges = [e for e in edges if e.destination.node_id != command.command.id or e.destination.field != link[2]]
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node_id = link[0]
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if re_negid.match(node_id):
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node_id = str(current_id + int(node_id))
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# TODO: handle missing input/output
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node_output = get_node_outputs(context.session.graph.get_node(node_id), context)[link[1]]
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node_input = get_node_inputs(command.command, context)[link[2]]
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edges.append(
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Edge(
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source=EdgeConnection(node_id=node_output.node_path, field=node_output.field),
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destination=EdgeConnection(node_id=node_input.node_path, field=node_input.field)
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)
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)
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new_invocations.append((command.command, edges))
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current_id = current_id + 1
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# Add the node to the session
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context.add_node(command.command)
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for edge in edges:
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print(edge)
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context.add_edge(edge)
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# Execute all remaining nodes
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invoke_all(context)
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except InvalidArgs:
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invoker.services.logger.warning('Invalid command, use "help" to list commands')
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continue
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except ValidationError:
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invoker.services.logger.warning('Invalid command arguments, run "<command> --help" for summary')
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except SessionError:
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# Start a new session
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invoker.services.logger.warning("Session error: creating a new session")
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context.reset()
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except ExitCli:
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break
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except SystemExit:
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continue
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invoker.stop()
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if __name__ == "__main__":
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invoke_cli()
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