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from extensions.openai.embeddings import get_embeddings_model_name | |
from extensions.openai.errors import OpenAIError | |
from modules import shared | |
from modules.models import load_model as _load_model | |
from modules.models import unload_model | |
from modules.models_settings import get_model_metadata, update_model_parameters | |
from modules.utils import get_available_models | |
def get_current_model_list() -> list: | |
return [shared.model_name] # The real chat/completions model, maybe "None" | |
def get_pseudo_model_list() -> list: | |
return [ # these are expected by so much, so include some here as a dummy | |
'gpt-3.5-turbo', | |
'text-embedding-ada-002', | |
] | |
def load_model(model_name: str) -> dict: | |
resp = { | |
"id": model_name, | |
"object": "engine", | |
"owner": "self", | |
"ready": True, | |
} | |
if model_name not in get_pseudo_model_list() + [get_embeddings_model_name()] + get_current_model_list(): # Real model only | |
# No args. Maybe it works anyways! | |
# TODO: hack some heuristics into args for better results | |
shared.model_name = model_name | |
unload_model() | |
model_settings = get_model_metadata(shared.model_name) | |
shared.settings.update({k: v for k, v in model_settings.items() if k in shared.settings}) | |
update_model_parameters(model_settings, initial=True) | |
if shared.settings['mode'] != 'instruct': | |
shared.settings['instruction_template'] = None | |
shared.model, shared.tokenizer = _load_model(shared.model_name) | |
if not shared.model: # load failed. | |
shared.model_name = "None" | |
raise OpenAIError(f"Model load failed for: {shared.model_name}") | |
return resp | |
def list_models(is_legacy: bool = False) -> dict: | |
# TODO: Lora's? | |
all_model_list = get_current_model_list() + [get_embeddings_model_name()] + get_pseudo_model_list() + get_available_models() | |
models = {} | |
if is_legacy: | |
models = [{"id": id, "object": "engine", "owner": "user", "ready": True} for id in all_model_list] | |
if not shared.model: | |
models[0]['ready'] = False | |
else: | |
models = [{"id": id, "object": "model", "owned_by": "user", "permission": []} for id in all_model_list] | |
resp = { | |
"object": "list", | |
"data": models, | |
} | |
return resp | |
def model_info(model_name: str) -> dict: | |
return { | |
"id": model_name, | |
"object": "model", | |
"owned_by": "user", | |
"permission": [] | |
} | |