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{ |
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"results": { |
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"hellaswag": { |
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"acc,none": 0.6811392152957578, |
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"acc_stderr,none": 0.004650825168905212, |
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"acc_norm,none": 0.8729336785500896, |
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"acc_norm_stderr,none": 0.0033236659644120307, |
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"alias": "hellaswag" |
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} |
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}, |
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"group_subtasks": { |
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"hellaswag": [] |
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}, |
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"configs": { |
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"hellaswag": { |
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"task": "hellaswag", |
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"group": [ |
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"multiple_choice" |
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], |
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"dataset_path": "hellaswag", |
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"training_split": "train", |
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"validation_split": "validation", |
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"process_docs": "def process_docs(dataset: datasets.Dataset) -> datasets.Dataset:\n def _process_doc(doc):\n ctx = doc[\"ctx_a\"] + \" \" + doc[\"ctx_b\"].capitalize()\n out_doc = {\n \"query\": preprocess(doc[\"activity_label\"] + \": \" + ctx),\n \"choices\": [preprocess(ending) for ending in doc[\"endings\"]],\n \"gold\": int(doc[\"label\"]),\n }\n return out_doc\n\n return dataset.map(_process_doc)\n", |
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"doc_to_text": "{{query}}", |
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"doc_to_target": "{{label}}", |
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"doc_to_choice": "choices", |
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"description": "", |
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"target_delimiter": " ", |
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"fewshot_delimiter": "\n\n", |
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"num_fewshot": 10, |
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"metric_list": [ |
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{ |
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"metric": "acc", |
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"aggregation": "mean", |
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"higher_is_better": true |
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}, |
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{ |
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"metric": "acc_norm", |
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"aggregation": "mean", |
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"higher_is_better": true |
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} |
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], |
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"output_type": "multiple_choice", |
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"repeats": 1, |
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"should_decontaminate": false, |
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"metadata": { |
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"version": 1.0 |
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} |
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} |
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}, |
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"versions": { |
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"hellaswag": 1.0 |
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}, |
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"n-shot": { |
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"hellaswag": 10 |
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}, |
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"higher_is_better": { |
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"hellaswag": { |
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"acc": true, |
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"acc_norm": true |
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} |
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}, |
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"n-samples": { |
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"hellaswag": { |
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"original": 10042, |
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"effective": 10042 |
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} |
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}, |
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"config": { |
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"model": "hf", |
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"model_args": "pretrained=/home/migel/Tess-v2.5-qwen2-72B-safetensors,parallelize=True", |
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"model_num_parameters": 72706203648, |
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"model_dtype": "torch.float16", |
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"model_revision": "main", |
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"model_sha": "", |
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"batch_size": "8", |
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"batch_sizes": [], |
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"device": null, |
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"use_cache": null, |
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"limit": null, |
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"bootstrap_iters": 100000, |
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"gen_kwargs": null, |
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"random_seed": 0, |
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"numpy_seed": 1234, |
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"torch_seed": 1234, |
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"fewshot_seed": 1234 |
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}, |
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"git_hash": "b3e4c49a", |
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"date": 1718190545.705119, |
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"pretty_env_info": "PyTorch version: 2.3.0+cu121\nIs debug build: False\nCUDA used to build PyTorch: 12.1\nROCM used to build PyTorch: N/A\n\nOS: Ubuntu 20.04.6 LTS (x86_64)\nGCC version: (Ubuntu 9.4.0-1ubuntu1~20.04.2) 9.4.0\nClang version: Could not collect\nCMake version: version 3.29.3\nLibc version: glibc-2.31\n\nPython version: 3.10.14 (main, Apr 6 2024, 18:45:05) [GCC 9.4.0] (64-bit runtime)\nPython platform: Linux-5.15.0-1050-azure-x86_64-with-glibc2.31\nIs CUDA available: True\nCUDA runtime version: 12.1.105\nCUDA_MODULE_LOADING set to: LAZY\nGPU models and configuration: \nGPU 0: NVIDIA A100 80GB PCIe\nGPU 1: NVIDIA A100 80GB PCIe\nGPU 2: NVIDIA A100 80GB PCIe\nGPU 3: NVIDIA A100 80GB PCIe\n\nNvidia driver version: 530.30.02\ncuDNN version: Could not collect\nHIP runtime version: N/A\nMIOpen runtime version: N/A\nIs XNNPACK available: True\n\nCPU:\nArchitecture: x86_64\nCPU op-mode(s): 32-bit, 64-bit\nByte Order: Little Endian\nAddress sizes: 48 bits physical, 48 bits virtual\nCPU(s): 96\nOn-line CPU(s) list: 0-95\nThread(s) per core: 1\nCore(s) per socket: 48\nSocket(s): 2\nNUMA node(s): 4\nVendor ID: AuthenticAMD\nCPU family: 25\nModel: 1\nModel name: AMD EPYC 7V13 64-Core Processor\nStepping: 1\nCPU MHz: 2445.435\nBogoMIPS: 4890.87\nHypervisor vendor: Microsoft\nVirtualization type: full\nL1d cache: 3 MiB\nL1i cache: 3 MiB\nL2 cache: 48 MiB\nL3 cache: 384 MiB\nNUMA node0 CPU(s): 0-23\nNUMA node1 CPU(s): 24-47\nNUMA node2 CPU(s): 48-71\nNUMA node3 CPU(s): 72-95\nVulnerability Gather data sampling: Not affected\nVulnerability Itlb multihit: Not affected\nVulnerability L1tf: Not affected\nVulnerability Mds: Not affected\nVulnerability Meltdown: Not affected\nVulnerability Mmio stale data: Not affected\nVulnerability Retbleed: Not affected\nVulnerability Spec rstack overflow: Mitigation; safe RET, no microcode\nVulnerability Spec store bypass: Vulnerable\nVulnerability Spectre v1: Mitigation; usercopy/swapgs barriers and __user pointer sanitization\nVulnerability Spectre v2: Mitigation; Retpolines, STIBP disabled, RSB filling, PBRSB-eIBRS Not affected\nVulnerability Srbds: Not affected\nVulnerability Tsx async abort: Not affected\nFlags: fpu vme de pse tsc msr pae mce cx8 apic sep mtrr pge mca cmov pat pse36 clflush mmx fxsr sse sse2 ht syscall nx mmxext fxsr_opt pdpe1gb rdtscp lm constant_tsc rep_good nopl tsc_reliable nonstop_tsc cpuid extd_apicid aperfmperf pni pclmulqdq ssse3 fma cx16 pcid sse4_1 sse4_2 movbe popcnt aes xsave avx f16c rdrand hypervisor lahf_lm cmp_legacy cr8_legacy abm sse4a misalignsse 3dnowprefetch osvw topoext perfctr_core invpcid_single vmmcall fsgsbase bmi1 avx2 smep bmi2 erms invpcid rdseed adx smap clflushopt clwb sha_ni xsaveopt xsavec xgetbv1 xsaves clzero xsaveerptr rdpru arat umip vaes vpclmulqdq rdpid fsrm\n\nVersions of relevant libraries:\n[pip3] numpy==1.26.4\n[pip3] torch==2.3.0\n[pip3] triton==2.3.0\n[conda] magma-cuda117 2.6.1 1 pytorch\n[conda] mkl 2022.2.1 pypi_0 pypi\n[conda] mkl-include 2022.2.1 pypi_0 pypi\n[conda] numpy 1.24.4 pypi_0 pypi\n[conda] pytorch-lightning 1.9.5 pypi_0 pypi\n[conda] torch 2.0.1 pypi_0 pypi\n[conda] torch-nebula 0.16.10 pypi_0 pypi\n[conda] torch-ort 1.17.0 pypi_0 pypi\n[conda] torchaudio 2.0.2+cu117 pypi_0 pypi\n[conda] torchdata 0.6.1 pypi_0 pypi\n[conda] torchmetrics 1.2.0 pypi_0 pypi\n[conda] torchsnapshot 0.1.0 pypi_0 pypi\n[conda] torchvision 0.15.2+cu117 pypi_0 pypi\n[conda] triton 2.0.0 pypi_0 pypi", |
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"transformers_version": "4.41.1", |
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"upper_git_hash": null, |
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"model_source": "hf", |
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"model_name": "/home/migel/Tess-v2.5-qwen2-72B-safetensors", |
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"model_name_sanitized": "__home__migel__Tess-v2.5-qwen2-72B-safetensors", |
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"system_instruction": null, |
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"system_instruction_sha": null, |
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"chat_template": null, |
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"chat_template_sha": null, |
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"start_time": 404120.678699121, |
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"end_time": 430406.206534399, |
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"total_evaluation_time_seconds": "26285.527835278015" |
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} |