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#!/usr/bin/env python3 | |
import requests | |
HOST = '0.0.0.0:5000' | |
def generate(prompt, tokens=200): | |
request = {'prompt': prompt, 'max_new_tokens': tokens} | |
response = requests.post(f'http://{HOST}/api/v1/generate', json=request) | |
if response.status_code == 200: | |
return response.json()['results'][0]['text'] | |
def model_api(request): | |
response = requests.post(f'http://{HOST}/api/v1/model', json=request) | |
return response.json() | |
# print some common settings | |
def print_basic_model_info(response): | |
basic_settings = ['truncation_length', 'instruction_template'] | |
print("Model: ", response['result']['model_name']) | |
print("Lora(s): ", response['result']['lora_names']) | |
for setting in basic_settings: | |
print(setting, "=", response['result']['shared.settings'][setting]) | |
# model info | |
def model_info(): | |
response = model_api({'action': 'info'}) | |
print_basic_model_info(response) | |
# simple loader | |
def model_load(model_name): | |
return model_api({'action': 'load', 'model_name': model_name}) | |
# complex loader | |
def complex_model_load(model): | |
def guess_groupsize(model_name): | |
if '1024g' in model_name: | |
return 1024 | |
elif '128g' in model_name: | |
return 128 | |
elif '32g' in model_name: | |
return 32 | |
else: | |
return -1 | |
req = { | |
'action': 'load', | |
'model_name': model, | |
'args': { | |
'loader': 'AutoGPTQ', | |
'bf16': False, | |
'load_in_8bit': False, | |
'groupsize': 0, | |
'wbits': 0, | |
# llama.cpp | |
'threads': 0, | |
'n_batch': 512, | |
'no_mmap': False, | |
'mlock': False, | |
'cache_capacity': None, | |
'n_gpu_layers': 0, | |
'n_ctx': 2048, | |
# RWKV | |
'rwkv_strategy': None, | |
'rwkv_cuda_on': False, | |
# b&b 4-bit | |
# 'load_in_4bit': False, | |
# 'compute_dtype': 'float16', | |
# 'quant_type': 'nf4', | |
# 'use_double_quant': False, | |
# "cpu": false, | |
# "auto_devices": false, | |
# "gpu_memory": null, | |
# "cpu_memory": null, | |
# "disk": false, | |
# "disk_cache_dir": "cache", | |
}, | |
} | |
model = model.lower() | |
if '4bit' in model or 'gptq' in model or 'int4' in model: | |
req['args']['wbits'] = 4 | |
req['args']['groupsize'] = guess_groupsize(model) | |
elif '3bit' in model: | |
req['args']['wbits'] = 3 | |
req['args']['groupsize'] = guess_groupsize(model) | |
else: | |
req['args']['gptq_for_llama'] = False | |
if '8bit' in model: | |
req['args']['load_in_8bit'] = True | |
elif '-hf' in model or 'fp16' in model: | |
if '7b' in model: | |
req['args']['bf16'] = True # for 24GB | |
elif '13b' in model: | |
req['args']['load_in_8bit'] = True # for 24GB | |
elif 'ggml' in model: | |
# req['args']['threads'] = 16 | |
if '7b' in model: | |
req['args']['n_gpu_layers'] = 100 | |
elif '13b' in model: | |
req['args']['n_gpu_layers'] = 100 | |
elif '30b' in model or '33b' in model: | |
req['args']['n_gpu_layers'] = 59 # 24GB | |
elif '65b' in model: | |
req['args']['n_gpu_layers'] = 42 # 24GB | |
elif 'rwkv' in model: | |
req['args']['rwkv_cuda_on'] = True | |
if '14b' in model: | |
req['args']['rwkv_strategy'] = 'cuda f16i8' # 24GB | |
else: | |
req['args']['rwkv_strategy'] = 'cuda f16' # 24GB | |
return model_api(req) | |
if __name__ == '__main__': | |
for model in model_api({'action': 'list'})['result']: | |
try: | |
resp = complex_model_load(model) | |
if 'error' in resp: | |
print(f"β {model} FAIL Error: {resp['error']['message']}") | |
continue | |
else: | |
print_basic_model_info(resp) | |
ans = generate("0,1,1,2,3,5,8,13,", tokens=2) | |
if '21' in ans: | |
print(f"β {model} PASS ({ans})") | |
else: | |
print(f"β {model} FAIL ({ans})") | |
except Exception as e: | |
print(f"β {model} FAIL Exception: {repr(e)}") | |
# 0,1,1,2,3,5,8,13, is the fibonacci sequence, the next number is 21. | |
# Some results below. | |
""" $ ./model-api-example.py | |
Model: 4bit_gpt4-x-alpaca-13b-native-4bit-128g-cuda | |
Lora(s): [] | |
truncation_length = 2048 | |
instruction_template = Alpaca | |
β 4bit_gpt4-x-alpaca-13b-native-4bit-128g-cuda PASS (21) | |
Model: 4bit_WizardLM-13B-Uncensored-4bit-128g | |
Lora(s): [] | |
truncation_length = 2048 | |
instruction_template = WizardLM | |
β 4bit_WizardLM-13B-Uncensored-4bit-128g PASS (21) | |
Model: Aeala_VicUnlocked-alpaca-30b-4bit | |
Lora(s): [] | |
truncation_length = 2048 | |
instruction_template = Alpaca | |
β Aeala_VicUnlocked-alpaca-30b-4bit PASS (21) | |
Model: alpaca-30b-4bit | |
Lora(s): [] | |
truncation_length = 2048 | |
instruction_template = Alpaca | |
β alpaca-30b-4bit PASS (21) | |
""" | |