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The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "\u5e2e\u6211\u6574\u7406\u51fa\u6765"], ["Assistant", "\u6574\u7406\u51fa\u6765\u4e86\uff0c\u4ee5\u4e0b\u662f\u4e00\u4e9b\u5e38\u89c1\u7684\u6570\u636e\u7c7b\u578b\uff1a\n- \u6574\u6570\n- \u6d6e\u70b9\u6570\n- \u5b57\u7b26\u4e32\n- \u5e03\u5c14\u503c\n- \u5b57\u7b26\u4e32\u6570\u7ec4\n- \u6570\u7ec4\n- \u5bf9\u8c61\n- \u679a\u4e3e\n- \u6570\u7ec4\u548c\u5b57\u7b26\u4e32\u7684\u5bf9\u6bd4\n- \u6570\u7ec4\u548c\u5b57\u7b26\u4e32\u7684\u533a\u522b\n- \u5b57\u7b26\u4e32\u7684\u6bd4\u8f83\n- \u5b57\u7b26\u4e32\u7684\u622a\u65ad\n- \u5b57\u7b26\u4e32\u7684\u53bb\u9664\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u4e49\n- \u5b57\u7b26\u4e32\u7684\u5339\u914d\n- \u5b57\u7b26\u4e32\u7684\u66ff\u6362\n- \u5b57\u7b26\u4e32\u7684\u5206\u6790\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u5316\n- \u5b57\u7b26\u4e32\u7684\u6bd4\u8f83\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u4e49\n- \u5b57\u7b26\u4e32\u7684\u5339\u914d\n- \u5b57\u7b26\u4e32\u7684\u66ff\u6362\n- \u5b57\u7b26\u4e32\u7684\u5206\u6790\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u5316\n- \u5b57\u7b26\u4e32\u7684\u6bd4\u8f83\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u4e49\n- \u5b57\u7b26\u4e32\u7684\u5339\u914d\n- \u5b57\u7b26\u4e32\u7684\u66ff\u6362\n- \u5b57\u7b26\u4e32\u7684\u5206\u6790\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u5316\n- \u5b57\u7b26\u4e32\u7684\u6bd4\u8f83\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u4e49\n- \u5b57\u7b26\u4e32\u7684\u5339\u914d\n- \u5b57\u7b26\u4e32\u7684\u66ff\u6362\n- \u5b57\u7b26\u4e32\u7684\u5206\u6790\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u5316\n- \u5b57\u7b26\u4e32\u7684\u6bd4\u8f83\n- \u5b57\u7b26\u4e32\u7684\u8f6c\u4e49\n- \u5b57\u7b26\u4e32\u7684\ufffd"]], "offset": 0, "conv_id": "8450ba69ec064163b0997ff60744ca5e", "model_name": "MobiLlama-1B-Chat"}, "ip": "172.31.57.119"} {"tstamp": 1709203753.2842, "type": "chat", "model": "MobiLlama-1B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709203752.397, "finish": 1709203753.2842, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "\u5e2e\u6211\u6c47\u603b\u4e00\u4e0b\u8fd1\u534a\u5e74\u6765\u6b27\u5143\u5151\u4eba\u6c11\u5e01\u7684\u6c47\u7387"], ["Assistant", "\u6b27\u5143\u5151\u4eba\u6c11\u5e01\u7684\u6c47\u7387\u57282021\u5e746\u670826\u65e5\u81f32022\u5e741\u670825\u65e5\uff0c\u4e3a1:1\u3002"]], "offset": 0, "conv_id": "8450ba69ec064163b0997ff60744ca5e", "model_name": "MobiLlama-1B-Chat"}, "ip": "172.31.57.119"} {"tstamp": 1709214265.7959, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709214265.6141, "finish": 1709214265.7959, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "salut"], ["Assistant", "hello"]], "offset": 0, "conv_id": "783b077851054411b2e6fae2ed198e71", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.38.44"} {"tstamp": 1709237914.4236, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709237913.44, "finish": 1709237914.4236, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "who is barak obama"], ["Assistant", "Barack Obama is a U.S. politician and the 44th President of the United States. He was born on February 4, 1964, in Chicago, Illinois, USA. He is the 44th President of the United States."]], "offset": 0, "conv_id": "af723d77b3c642dc97a8312e2718dfe5", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.12.31"} {"tstamp": 1709237929.4318, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709237928.1712, "finish": 1709237929.4318, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "tell me more about him"], ["Assistant", "He is a 29-year-old man who has been in the music industry for over 10 years. He is known for his versatility in playing various instruments such as guitar, drums, and bass. He has a unique blend of traditional and modern music styles, and his unique sound has made him a popular musician in the industry."]], "offset": 0, "conv_id": "af723d77b3c642dc97a8312e2718dfe5", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.12.31"} {"tstamp": 1709237958.5662, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709237957.4541, "finish": 1709237958.5662, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "who are norse people"], ["Assistant", "Norse people are a group of people who lived in Norway, Sweden, Denmark, and Iceland in the 9th century. They were a group of warriors who fought for the power of the king and were known for their strength, skill, and courage. They were also known for their architecture and art."]], "offset": 0, "conv_id": "af723d77b3c642dc97a8312e2718dfe5", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.57.119"} {"tstamp": 1709237984.5959, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709237982.8487, "finish": 1709237984.5959, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "tell me more about their mythology"], ["Assistant", "As an AI language model, I don't have any personal mythology. However, I can tell you that mythology is a collection of stories and beliefs that have been passed down from generation to generation in different cultures. It is believed to have originated in ancient Greece and Rome and has evolved over time to include different stories and beliefs. Some of the most popular myths include the Hindu Mahabharata, the Greek myth of Poseidon, and the Norse myth of Odin."]], "offset": 0, "conv_id": "af723d77b3c642dc97a8312e2718dfe5", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.57.119"} {"tstamp": 1709238034.0094, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709238032.2459, "finish": 1709238034.0094, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "\"Bigger the better\" has been the predominant trend in recent Large Language Models (LLMs) development. However, LLMs do not suit well for scenarios that require on-device processing, energy efficiency, low memory footprint, and response efficiency. These requisites are crucial for privacy, security, and sustainable deployment. This paper explores the \"less is more\" paradigm by addressing the challenge of designing accurate yet efficient Small Language Models (SLMs) for resource constrained devices. Our primary contribution is the introduction of an accurate and fully transparent open-source 0.5 billion (0.5B) parameter SLM, named MobiLlama, catering to the specific needs of resource-constrained computing with an emphasis on enhanced performance with reduced resource demands. MobiLlama is a SLM design that initiates from a larger model and applies a careful parameter sharing scheme to reduce both the pre-training and the deployment cost. Our work strives to not only bridge the gap in open-source SLMs but also ensures full transparency, where complete training data pipeline, training code, model weights, and over 300 checkpoints along with evaluation codes is available at : https://github.com/mbzuai-oryx/MobiLlama. based on the above context answer the question: how many parameters are present in the model"], ["Assistant", "MobiLlama is a 0.5 billion (0.5B) parameter SLM designed for resource-constrained computing. It is an open-source 0.5 billion (0.5B) parameter SLM that initiates from a larger model and applies a careful parameter sharing scheme to reduce both the pre-training and the deployment cost. It is designed to cater to the specific needs of resource-constrained computing with an emphasis on enhanced performance with reduced resource demands."]], "offset": 0, "conv_id": "af723d77b3c642dc97a8312e2718dfe5", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.12.31"} {"tstamp": 1709238128.8102, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709238128.3682, "finish": 1709238128.8102, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "Avagin Updates\nProgress:\n\u2022 Completed Roger Script: The core script, integrating voice recognition, text-\nto-speech, and a large language model (LLM), is now functional.\n\u2022 Flask Demo App: A user-friendly Flask-based application showcases the\nRoger script's capabilities.\n\u2022 Fine-Tuning and RAG Scripts Ready: Both fine-tuning scripts and Retrieval-\nAugmented Generation (RAG) scripts are prepared for domain-specific LLM\ndevelopment.\n\u2022 UI and Android App Demo Prepared: A basic Android app with user\ninterface is ready for integration with the LLM. Upon successful integration,\nwe can deliver a functional Android app demo within the next week for client\npresentation. This is not just a demo app; we plan to leverage this progress\nfor the final application.\nChallenges and Request:\n\u2022 GPU Requirement: Unfortunately, the fine-tuning and RAG processes require\nsignificant computational resources, specifically GPUs, which are currently\nunavailable.\n\u2022 Domain-Specific LLMs: We aim to create eight specialized LLMs, including\nthe Finance LLM designated for SatoshiAI. However, GPU access is crucial to\nachieve this objective.\nUrgent Request:\nTo ensure continued progress and meet development goals, we urgently request\naccess to one or more GPUs. This will enable us to:\n\u2022\n\u2022\n\u2022\nFine-tune LLMs: Tailor the LLMs to specific domains, including the Finance\nLLM for SatoshiAI.\nRun RAG Scripts: Enhance the LLMs' performance using the Retrieval-\nAugmented Generation technique.\nAchieve Domain-Specific Goals: Develop the eight planned LLMs, including\nthe critical Finance LLM for SatoshiAI.\nAndroid Integration:We understand the importance of Android integration and will continue to prioritize\nits development. Currently, we are investigating the most promising solutions to\novercome the challenges related to integrating Python libraries with Android,\nconsidering the following options:\nContributing to the Chocopy library: While considered a last resort due to\nits complexity, contributing to support the new Python libraries (llama-cpp-\npython and transformers) could be a potential solution.\n\u2022 TensorFlow Lite Approach: Although TensorFlow Lite supports some\nmodels, its current limitations include lack of phi2 support. Converting the\ngemma2B model to TFLite format might be viable, but requires access to a\npowerful GPU.\n\u2022 Kivy Library Exploration: While initial attempts with the Kivy library\nencountered errors, further investigation might yield solutions for building a\nmobile app.\n\u2022 Flutter Framework Evaluation: We are actively exploring the potential of\nFlutter's Langchain integration to enable LLM execution on mobile devices.\nFurther investigation into this option is warranted.\nAdditional Considerations:\n\u2022 Resource-Dependent App: We acknowledge that the Flask app is resource-\ndependent and requires a screen recording for demonstration purposes.\n\u2022 Final App Integration: We plan to leverage the current progress on the UI\nand Android app for the final application.\nNext Week's Tasks:\n\u2022 Continue investigating and working on Android integration: We will\nactively explore the mentioned solutions and prioritize the most promising\napproach based on feasibility and resource availability.\n\u2022 Integrate LLM with Android app: Upon receiving GPU access and identifying\na suitable solution, we will prioritize integrating the LLM with the Android app to\ndeliver the promised demo within the next week.\n\u2022 Integrate automation and API call for UBER ride booking: We will begin\nintegrating automation and API calls to facilitate ride booking with Uber\ndirectly through the Roger script.\n\u2022 Future Script Upgrades: Further enhancements are planned for the script,\nincluding streaming capabilities, bot memory, translation features, and\nimage/video input functionalities.\n\u2022Demo for Client:\n\u2022 Flask App Demo: While awaiting GPU access and Android integration, we\ncan showcase the Roger script's functionality through a screen recording of\nthe Flask app demo.\n\u2022 Android App Demo: Upon successful LLM integration, we will provide a\nfunctional Android app demo for client presentation within the next week.\nWe are confident that GPU access will significantly contribute to the success\nof the Roger project. We also remain committed to achieving Android\nintegration and delivering the promised demos as soon as possible.\n\nbased on the above context answer the question: what is the next weeks task?"], ["Assistant", "Next weeks task\nThe next weeks task is to continue investigating and working on Android integration."]], "offset": 0, "conv_id": "af723d77b3c642dc97a8312e2718dfe5", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.38.44"} {"tstamp": 1709245998.6928, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709245992.3665, "finish": 1709245998.6928, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "import argparse, os, sys, datetime, glob, importlib, csv\nimport numpy as np\nimport time\nimport torch\nimport torchvision\nimport pytorch_lightning as pl\n\nfrom packaging import version\nfrom omegaconf import OmegaConf\nfrom torch.utils.data import random_split, DataLoader, Dataset, Subset\nfrom functools import partial\nfrom PIL import Image\n\nfrom pytorch_lightning import seed_everything\nfrom pytorch_lightning.trainer import Trainer\nfrom pytorch_lightning.callbacks import ModelCheckpoint, Callback, LearningRateMonitor\nfrom pytorch_lightning.utilities.distributed import rank_zero_only\nfrom pytorch_lightning.utilities import rank_zero_info\n\nfrom ldm.data.base import Txt2ImgIterableBaseDataset\nfrom ldm.util import instantiate_from_config\n\n\ndef get_parser(**parser_kwargs):\n def str2bool(v):\n if isinstance(v, bool):\n return v\n if v.lower() in (\"yes\", \"true\", \"t\", \"y\", \"1\"):\n return True\n elif v.lower() in (\"no\", \"false\", \"f\", \"n\", \"0\"):\n return False\n else:\n raise argparse.ArgumentTypeError(\"Boolean value expected.\")\n\n parser = argparse.ArgumentParser(**parser_kwargs)\n parser.add_argument(\n \"-n\",\n \"--name\",\n type=str,\n const=True,\n default=\"\",\n nargs=\"?\",\n help=\"postfix for logdir\",\n )\n parser.add_argument(\n \"-r\",\n \"--resume\",\n type=str,\n const=True,\n default=\"\",\n nargs=\"?\",\n help=\"resume from logdir or checkpoint in logdir\",\n )\n parser.add_argument(\n \"-b\",\n \"--base\",\n nargs=\"*\",\n metavar=\"base_config.yaml\",\n help=\"paths to base configs. Loaded from left-to-right. \"\n \"Parameters can be overwritten or added with command-line options of the form `--key value`.\",\n default=list(),\n )\n parser.add_argument(\n \"-t\",\n \"--train\",\n type=str2bool,\n const=True,\n default=False,\n nargs=\"?\",\n help=\"train\",\n )\n parser.add_argument(\n \"--no-test\",\n type=str2bool,\n const=True,\n default=False,\n nargs=\"?\",\n help=\"disable test\",\n )\n parser.add_argument(\n \"-p\",\n \"--project\",\n help=\"name of new or path to existing project\"\n )\n parser.add_argument(\n \"-d\",\n \"--debug\",\n type=str2bool,\n nargs=\"?\",\n const=True,\n default=False,\n help=\"enable post-mortem debugging\",\n )\n parser.add_argument(\n \"-s\",\n \"--seed\",\n type=int,\n default=23,\n help=\"seed for seed_everything\",\n )\n parser.add_argument(\n \"-f\",\n \"--postfix\",\n type=str,\n default=\"\",\n help=\"post-postfix for default name\",\n )\n parser.add_argument(\n \"-l\",\n \"--logdir\",\n type=str,\n default=\"logs\",\n help=\"directory for logging dat shit\",\n )\n parser.add_argument(\n \"--scale_lr\",\n type=str2bool,\n nargs=\"?\",\n const=True,\n default=True,\n help=\"scale base-lr by ngpu * batch_size * n_accumulate\",\n )\n return parser\n\n\ndef nondefault_trainer_args(opt):\n parser = argparse.ArgumentParser()\n parser = Trainer.add_argparse_args(parser)\n args = parser.parse_args([])\n return sorted(k for k in vars(args) if getattr(opt, k) != getattr(args, k))\n\n\nclass WrappedDataset(Dataset):\n \"\"\"Wraps an arbitrary object with __len__ and __getitem__ into a pytorch dataset\"\"\"\n\n def __init__(self, dataset):\n self.data = dataset\n\n def __len__(self):\n return len(self.data)\n\n def __getitem__(self, idx):\n return self.data[idx]\n\n\ndef worker_init_fn(_):\n worker_info = torch.utils.data.get_worker_info()\n\n dataset = worker_info.dataset\n worker_id = worker_info.id\n\n if isinstance(dataset, Txt2ImgIterableBaseDataset):\n split_size = dataset.num_records // worker_info.num_workers\n # reset num_records to the true number to retain reliable length information\n dataset.sample_ids = dataset.valid_ids[worker_id * split_size:(worker_id + 1) * split_size]\n current_id = np.random.choice(len(np.random.get_state()[1]), 1)\n return np.random.seed(np.random.get_state()[1][current_id] + worker_id)\n else:\n return np.random.seed(np.random.get_state()[1][0] + worker_id)\n\n\nclass DataModuleFromConfig(pl.LightningDataModule):\n def __init__(self, batch_size, train=None, validation=None, test=None, predict=None,\n wrap=False, num_workers=None, shuffle_test_loader=False, use_worker_init_fn=False,\n shuffle_val_dataloader=False):\n super().__init__()\n self.batch_size = batch_size\n self.dataset_configs = dict()\n self.num_workers = num_workers if num_workers is not None else batch_size * 2\n self.use_worker_init_fn = use_worker_init_fn\n if train is not None:\n self.dataset_configs[\"train\"] = train\n self.train_dataloader = self._train_dataloader\n if validation is not None:\n self.dataset_configs[\"validation\"] = validation\n self.val_dataloader = partial(self._val_dataloader, shuffle=shuffle_val_dataloader)\n if test is not None:\n self.dataset_configs[\"test\"] = test\n self.test_dataloader = partial(self._test_dataloader, shuffle=shuffle_test_loader)\n if predict is not None:\n self.dataset_configs[\"predict\"] = predict\n self.predict_dataloader = self._predict_dataloader\n self.wrap = wrap\n\n def prepare_data(self):\n for data_cfg in self.dataset_configs.values():\n instantiate_from_config(data_cfg)\n\n def setup(self, stage=None):\n self.datasets = dict(\n (k, instantiate_from_config(self.dataset_configs[k]))\n for k in self.dataset_configs)\n if self.wrap:\n for k in self.datasets:\n self.datasets[k] = WrappedDataset(self.datasets[k])\n\n def _train_dataloader(self):\n is_iterable_dataset = isinstance(self.datasets['train'], Txt2ImgIterableBaseDataset)\n if is_iterable_dataset or self.use_worker_init_fn:\n init_fn = worker_init_fn\n else:\n init_fn = None\n return DataLoader(self.datasets[\"train\"], batch_size=self.batch_size,\n num_workers=self.num_workers, shuffle=False if is_iterable_dataset else True,\n worker_init_fn=init_fn)\n\n def _val_dataloader(self, shuffle=False):\n if isinstance(self.datasets['validation'], Txt2ImgIterableBaseDataset) or self.use_worker_init_fn:\n init_fn = worker_init_fn\n else:\n init_fn = None\n return DataLoader(self.datasets[\"validation\"],\n batch_size=self.batch_size,\n num_workers=self.num_workers,\n worker_init_fn=init_fn,\n shuffle=shuffle)\n\n def _test_dataloader(self, shuffle=False):\n is_iterable_dataset = isinstance(self.datasets['train'], Txt2ImgIterableBaseDataset)\n if is_iterable_dataset or self.use_worker_init_fn:\n init_fn = worker_init_fn\n else:\n init_fn = None\n\n # do not shuffle dataloader for iterable dataset\n shuffle = shuffle and (not is_iterable_dataset)\n\n return DataLoader(self.datasets[\"test\"], batch_size=self.batch_size,\n num_workers=self.num_workers, worker_init_fn=init_fn, shuffle=shuffle)\n\n def _predict_dataloader(self, shuffle=False):\n if isinstance(self.datasets['predict'], Txt2ImgIterableBaseDataset) or self.use_worker_init_fn:\n init_fn = worker_init_fn\n else:\n init_fn = None\n return DataLoader(self.datasets[\"predict\"], batch_size=self.batch_size,\n num_workers=self.num_workers, worker_init_fn=init_fn)\n\n\nclass SetupCallback(Callback):\n def __init__(self, resume, now, logdir, ckptdir, cfgdir, config, lightning_config):\n super().__init__()\n self.resume = resume\n self.now = now\n self.logdir = logdir\n self.ckptdir = ckptdir\n self.cfgdir = cfgdir\n self.config = config\n self.lightning_config = lightning_config\n\n def on_keyboard_interrupt(self, trainer, pl_module):\n if trainer.global_rank == 0:\n print(\"Summoning checkpoint.\")\n ckpt_path = os.path.join(self.ckptdir, \"last.ckpt\")\n trainer.save_checkpoint(ckpt_path)\n\n def on_pretrain_routine_start(self, trainer, pl_module):\n if trainer.global_rank == 0:\n # Create logdirs and save configs\n os.makedirs(self.logdir, exist_ok=True)\n os.makedirs(self.ckptdir, exist_ok=True)\n os.makedirs(self.cfgdir, exist_ok=True)\n\n if \"callbacks\" in self.lightning_config:\n if 'metrics_over_trainsteps_checkpoint' in self.lightning_config['callbacks']:\n os.makedirs(os.path.join(self.ckptdir, 'trainstep_checkpoints'), exist_ok=True)\n print(\"Project config\")\n print(OmegaConf.to_yaml(self.config))\n OmegaConf.save(self.config,\n os.path.join(self.cfgdir, \"{}-project.yaml\".format(self.now)))\n\n print(\"Lightning config\")\n print(OmegaConf.to_yaml(self.lightning_config))\n OmegaConf.save(OmegaConf.create({\"lightning\": self.lightning_config}),\n os.path.join(self.cfgdir, \"{}-lightning.yaml\".format(self.now)))\n\n else:\n # ModelCheckpoint callback created log directory --- remove it\n if not self.resume and os.path.exists(self.logdir):\n dst, name = os.path.split(self.logdir)\n dst = os.path.join(dst, \"child_runs\", name)\n os.makedirs(os.path.split(dst)[0], exist_ok=True)\n try:\n os.rename(self.logdir, dst)\n except FileNotFoundError:\n pass\n\n\nclass ImageLogger(Callback):\n def __init__(self, batch_frequency, max_images, clamp=True, increase_log_steps=True,\n rescale=True, disabled=False, log_on_batch_idx=False, log_first_step=False,\n log_images_kwargs=None):\n super().__init__()\n self.rescale = rescale\n self.batch_freq = batch_frequency\n self.max_images = max_images\n self.logger_log_images = {\n pl.loggers.TestTubeLogger: self._testtube,\n }\n self.log_steps = [2 ** n for n in range(int(np.log2(self.batch_freq)) + 1)]\n if not increase_log_steps:\n self.log_steps = [self.batch_freq]\n self.clamp = clamp\n self.disabled = disabled\n self.log_on_batch_idx = log_on_batch_idx\n self.log_images_kwargs = log_images_kwargs if log_images_kwargs else {}\n self.log_first_step = log_first_step\n\n @rank_zero_only\n def _testtube(self, pl_module, images, batch_idx, split):\n for k in images:\n grid = torchvision.utils.make_grid(images[k])\n grid = (grid + 1.0) / 2.0 # -1,1 -> 0,1; c,h,w\n\n tag = f\"{split}/{k}\"\n pl_module.logger.experiment.add_image(\n tag, grid,\n global_step=pl_module.global_step)\n\n @rank_zero_only\n def log_local(self, save_dir, split, images,\n global_step, current_epoch, batch_idx):\n root = os.path.join(save_dir, \"images\", split)\n for k in images:\n grid = torchvision.utils.make_grid(images[k], nrow=4)\n if self.rescale:\n grid = (grid + 1.0) / 2.0 # -1,1 -> 0,1; c,h,w\n grid = grid.transpose(0, 1).transpose(1, 2).squeeze(-1)\n grid = grid.numpy()\n grid = (grid * 255).astype(np.uint8)\n filename = \"{}_gs-{:06}_e-{:06}_b-{:06}.png\".format(\n k,\n global_s"], ["Assistant", "ImageLogger class\n pl_module = ImageLogger(batch_frequency=self.batch_freq, max_images=self.max_images,\n clamp=self.clamp, increase_log_steps=self.increase_log_steps,\n rescale=self.rescale, disabled=self.disabled,\n log_on_batch_idx=self.log_on_batch_idx,\n log_first_step=self.log_first_step)\n pl_module.logger.experiment.add_image(\"\", root, global_step=current_epoch, batch_idx=batch_idx)\n return pl_module\n\n def _checkpoint(self, pl_module, save_dir, current_epoch, batch_idx,\n max_images,\n disable_training,\n log_on_batch_idx,\n log_first_step,\n log_images_kwargs):\n if not self.rescale and self.max_images > 1:\n # Rescale images\n grid = torchvision.utils.make_grid(self.max_images, nrow=4)\n grid = grid.transpose(0, 1).transpose(1, 2).squeeze(-1)\n grid = grid.numpy()\n grid = (grid * 255).astype(np.uint8)\n filename = \"{}_gs-{:06}_e-{:06}_b-{:06}.png\".format(\n self.max_images,\n self.batch_freq,\n self.max_images,\n self.batch_freq,"]], "offset": 0, "conv_id": "ce306a0a36f14207b7508fd11c60e878", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.12.31"} {"tstamp": 1709246024.7416, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709246018.4757, "finish": 1709246024.7416, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "find errors in the above code"], ["Assistant", "There are several errors in the code that need to be fixed. Here are a few:\n1. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n2. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n3. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n4. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n5. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n6. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n7. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n8. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n9. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n10. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n11. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n12. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n13. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n14. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n15. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n16. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n17. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n18. `print(\"Hello, World!\")` should be `print(\""]], "offset": 0, "conv_id": "ce306a0a36f14207b7508fd11c60e878", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.12.31"} {"tstamp": 1709246105.9188, "type": "downvote", "model": "MobiLlama-05B-Chat", "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "find errors in the above code"], ["Assistant", "There are several errors in the code that need to be fixed. Here are a few:\n1. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n2. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n3. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n4. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n5. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n6. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n7. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n8. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n9. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n10. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n11. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n12. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n13. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n14. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n15. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n16. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n17. `print(\"Hello, World!\")` should be `print(\"Hello, World!\")`\n18. `print(\"Hello, World!\")` should be `print(\""]], "offset": 0, "conv_id": "ce306a0a36f14207b7508fd11c60e878", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.57.119"} {"tstamp": 1709246120.4847, "type": "chat", "model": "MobiLlama-05B-Chat", "gen_params": {"temperature": 0.7, "top_p": 1.0, "max_new_tokens": 1024}, "start": 1709246117.8915, "finish": 1709246120.4847, "state": {"template_name": "zero_shot", "system_message": "A chat between a curious human and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the human's questions.", "roles": ["Human", "Assistant"], "messages": [["Human", "find errors in the above code"], ["Assistant", "As an AI language model, I don't have access to the code you are referring to. However, I can provide you with some general guidelines for checking for errors in code.\n1. Use a code editor or IDE to check for errors.\n2. Use a debugger to step through the code and identify any errors.\n3. Use a code linter to check for syntax errors, such as missing parentheses, missing semicolons, or incorrect variable names.\n4. Use a code quality checker to identify any coding style issues, such as unused variables or excessive indentation.\n5. Use a code review tool to identify any potential issues with the code.\n6. Use a code review team to review the code and provide feedback on any issues identified."]], "offset": 0, "conv_id": "ce306a0a36f14207b7508fd11c60e878", "model_name": "MobiLlama-05B-Chat"}, "ip": "172.31.57.119"}