2023-09-23 12:58:13 +03:00
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from __future__ import annotations
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import json, base64, requests, execjs, random, uuid
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from ..typing import Any, TypedDict, CreateResult
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from .base_provider import BaseProvider
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from abc import abstractmethod
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class Vercel(BaseProvider):
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url = 'https://sdk.vercel.ai'
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working = True
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supports_gpt_35_turbo = True
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supports_stream = True
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@staticmethod
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@abstractmethod
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def create_completion(
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model: str,
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messages: list[dict[str, str]],
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2023-09-26 02:02:02 +03:00
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stream: bool,
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**kwargs
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) -> CreateResult:
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if not model:
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model = "gpt-3.5-turbo"
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elif model not in model_info:
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raise ValueError(f"Model are not supported: {model}")
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2023-09-23 12:58:13 +03:00
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headers = {
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'authority' : 'sdk.vercel.ai',
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'accept' : '*/*',
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'accept-language' : 'en,fr-FR;q=0.9,fr;q=0.8,es-ES;q=0.7,es;q=0.6,en-US;q=0.5,am;q=0.4,de;q=0.3',
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'cache-control' : 'no-cache',
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'content-type' : 'application/json',
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2023-09-26 02:02:02 +03:00
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'custom-encoding' : get_anti_bot_token(),
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2023-09-23 12:58:13 +03:00
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'origin' : 'https://sdk.vercel.ai',
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'pragma' : 'no-cache',
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'referer' : 'https://sdk.vercel.ai/',
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'sec-ch-ua' : '"Google Chrome";v="117", "Not;A=Brand";v="8", "Chromium";v="117"',
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'sec-ch-ua-mobile' : '?0',
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'sec-ch-ua-platform': '"macOS"',
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'sec-fetch-dest' : 'empty',
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'sec-fetch-mode' : 'cors',
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'sec-fetch-site' : 'same-origin',
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'user-agent' : 'Mozilla/5.0 (Macintosh; Intel Mac OS X 10_15_7) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/117.0.%s.%s Safari/537.36' % (
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random.randint(99, 999),
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random.randint(99, 999)
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)
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}
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json_data = {
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'model' : model_info[model]['id'],
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'messages' : messages,
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'playgroundId': str(uuid.uuid4()),
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'chatIndex' : 0} | model_info[model]['default_params']
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2023-09-23 13:16:19 +03:00
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max_retries = kwargs.get('max_retries', 20)
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2023-09-26 02:02:02 +03:00
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for i in range(max_retries):
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2023-09-23 12:58:13 +03:00
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response = requests.post('https://sdk.vercel.ai/api/generate',
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headers=headers, json=json_data, stream=True)
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2023-09-26 02:02:02 +03:00
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try:
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response.raise_for_status()
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except:
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continue
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2023-09-26 11:03:37 +03:00
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for token in response.iter_content(chunk_size=None):
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2023-09-26 02:02:02 +03:00
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yield token.decode()
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break
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2023-09-23 12:58:13 +03:00
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2023-09-26 02:02:02 +03:00
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def get_anti_bot_token() -> str:
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2023-09-23 12:58:13 +03:00
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headers = {
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'authority' : 'sdk.vercel.ai',
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'accept' : '*/*',
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'accept-language' : 'en,fr-FR;q=0.9,fr;q=0.8,es-ES;q=0.7,es;q=0.6,en-US;q=0.5,am;q=0.4,de;q=0.3',
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'cache-control' : 'no-cache',
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'pragma' : 'no-cache',
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'referer' : 'https://sdk.vercel.ai/',
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'sec-ch-ua' : '"Google Chrome";v="117", "Not;A=Brand";v="8", "Chromium";v="117"',
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'sec-ch-ua-mobile' : '?0',
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'sec-ch-ua-platform': '"macOS"',
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'sec-fetch-dest' : 'empty',
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'sec-fetch-mode' : 'cors',
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'sec-fetch-site' : 'same-origin',
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'user-agent' : 'Mozilla/5.0 (Macintosh; Intel Mac OS X 10_15_7) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/117.0.%s.%s Safari/537.36' % (
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random.randint(99, 999),
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random.randint(99, 999)
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)
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}
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response = requests.get('https://sdk.vercel.ai/openai.jpeg',
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headers=headers).text
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raw_data = json.loads(base64.b64decode(response,
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validate=True))
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js_script = '''const globalThis={marker:"mark"};String.prototype.fontcolor=function(){return `<font>${this}</font>`};
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return (%s)(%s)''' % (raw_data['c'], raw_data['a'])
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raw_token = json.dumps({'r': execjs.compile(js_script).call(''), 't': raw_data['t']},
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separators = (",", ":"))
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return base64.b64encode(raw_token.encode('utf-16le')).decode()
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class ModelInfo(TypedDict):
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id: str
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default_params: dict[str, Any]
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model_info: dict[str, ModelInfo] = {
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'claude-instant-v1': {
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'id': 'anthropic:claude-instant-v1',
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'default_params': {
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'temperature': 1,
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'maximumLength': 1024,
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'topP': 1,
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'topK': 1,
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'presencePenalty': 1,
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'frequencyPenalty': 1,
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'stopSequences': ['\n\nHuman:'],
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},
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},
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'claude-v1': {
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'id': 'anthropic:claude-v1',
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'default_params': {
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'temperature': 1,
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'maximumLength': 1024,
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'topP': 1,
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'topK': 1,
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'presencePenalty': 1,
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'frequencyPenalty': 1,
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'stopSequences': ['\n\nHuman:'],
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},
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},
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'claude-v2': {
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'id': 'anthropic:claude-v2',
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'default_params': {
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'temperature': 1,
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'maximumLength': 1024,
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'topP': 1,
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'topK': 1,
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'presencePenalty': 1,
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'frequencyPenalty': 1,
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'stopSequences': ['\n\nHuman:'],
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},
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},
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'a16z-infra/llama7b-v2-chat': {
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'id': 'replicate:a16z-infra/llama7b-v2-chat',
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'default_params': {
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'temperature': 0.75,
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'maximumLength': 3000,
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'topP': 1,
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'repetitionPenalty': 1,
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},
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},
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'a16z-infra/llama13b-v2-chat': {
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'id': 'replicate:a16z-infra/llama13b-v2-chat',
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'default_params': {
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'temperature': 0.75,
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'maximumLength': 3000,
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'topP': 1,
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'repetitionPenalty': 1,
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},
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},
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'replicate/llama-2-70b-chat': {
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'id': 'replicate:replicate/llama-2-70b-chat',
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'default_params': {
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'temperature': 0.75,
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'maximumLength': 3000,
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'topP': 1,
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'repetitionPenalty': 1,
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},
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},
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'bigscience/bloom': {
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'id': 'huggingface:bigscience/bloom',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 0.95,
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'topK': 4,
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'repetitionPenalty': 1.03,
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},
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},
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'google/flan-t5-xxl': {
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'id': 'huggingface:google/flan-t5-xxl',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 0.95,
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'topK': 4,
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'repetitionPenalty': 1.03,
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},
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},
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'EleutherAI/gpt-neox-20b': {
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'id': 'huggingface:EleutherAI/gpt-neox-20b',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 0.95,
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'topK': 4,
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'repetitionPenalty': 1.03,
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'stopSequences': [],
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},
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},
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'OpenAssistant/oasst-sft-4-pythia-12b-epoch-3.5': {
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'id': 'huggingface:OpenAssistant/oasst-sft-4-pythia-12b-epoch-3.5',
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'default_params': {
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'maximumLength': 1024,
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'typicalP': 0.2,
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'repetitionPenalty': 1,
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},
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},
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'OpenAssistant/oasst-sft-1-pythia-12b': {
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'id': 'huggingface:OpenAssistant/oasst-sft-1-pythia-12b',
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'default_params': {
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'maximumLength': 1024,
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'typicalP': 0.2,
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'repetitionPenalty': 1,
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},
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},
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'bigcode/santacoder': {
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'id': 'huggingface:bigcode/santacoder',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 0.95,
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'topK': 4,
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'repetitionPenalty': 1.03,
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},
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},
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'command-light-nightly': {
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'id': 'cohere:command-light-nightly',
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'default_params': {
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'temperature': 0.9,
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'maximumLength': 1024,
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'topP': 1,
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'topK': 0,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'command-nightly': {
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'id': 'cohere:command-nightly',
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'default_params': {
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'temperature': 0.9,
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'maximumLength': 1024,
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'topP': 1,
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'topK': 0,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'gpt-4': {
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'id': 'openai:gpt-4',
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'default_params': {
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'temperature': 0.7,
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'maximumLength': 8192,
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'topP': 1,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'gpt-4-0613': {
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'id': 'openai:gpt-4-0613',
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'default_params': {
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'temperature': 0.7,
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'maximumLength': 8192,
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'topP': 1,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'code-davinci-002': {
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'id': 'openai:code-davinci-002',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 1,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'gpt-3.5-turbo': {
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'id': 'openai:gpt-3.5-turbo',
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'default_params': {
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'temperature': 0.7,
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'maximumLength': 4096,
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'topP': 1,
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'topK': 1,
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'presencePenalty': 1,
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'frequencyPenalty': 1,
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'stopSequences': [],
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},
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},
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'gpt-3.5-turbo-16k': {
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'id': 'openai:gpt-3.5-turbo-16k',
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'default_params': {
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'temperature': 0.7,
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'maximumLength': 16280,
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'topP': 1,
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'topK': 1,
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'presencePenalty': 1,
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'frequencyPenalty': 1,
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'stopSequences': [],
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},
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},
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'gpt-3.5-turbo-16k-0613': {
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'id': 'openai:gpt-3.5-turbo-16k-0613',
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'default_params': {
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'temperature': 0.7,
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'maximumLength': 16280,
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'topP': 1,
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'topK': 1,
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'presencePenalty': 1,
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'frequencyPenalty': 1,
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'stopSequences': [],
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},
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},
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'text-ada-001': {
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'id': 'openai:text-ada-001',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 1,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'text-babbage-001': {
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'id': 'openai:text-babbage-001',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 1,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'text-curie-001': {
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'id': 'openai:text-curie-001',
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'default_params': {
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'temperature': 0.5,
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'maximumLength': 1024,
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'topP': 1,
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'presencePenalty': 0,
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'frequencyPenalty': 0,
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'stopSequences': [],
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},
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},
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'text-davinci-002': {
|
|
|
|
'id': 'openai:text-davinci-002',
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|
'default_params': {
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|
'temperature': 0.5,
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'maximumLength': 1024,
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|
|
|
'topP': 1,
|
|
|
|
'presencePenalty': 0,
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|
|
|
'frequencyPenalty': 0,
|
|
|
|
'stopSequences': [],
|
|
|
|
},
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|
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|
},
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|
|
|
'text-davinci-003': {
|
|
|
|
'id': 'openai:text-davinci-003',
|
|
|
|
'default_params': {
|
|
|
|
'temperature': 0.5,
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|
|
|
'maximumLength': 4097,
|
|
|
|
'topP': 1,
|
|
|
|
'presencePenalty': 0,
|
|
|
|
'frequencyPenalty': 0,
|
|
|
|
'stopSequences': [],
|
|
|
|
},
|
|
|
|
},
|
|
|
|
}
|