sn99-f / proofs /87701.json
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{"schema": 2, "epoch": 87701, "nonce": "1767e641bd8749b1", "hotkey": "5FTZeWt4a9qGrMr89s7vZ47V1c3yY53ZTpRnqamWVtJZ72SH", "source_hash": "24837b9ae6895829747c5eb448673693fedbeb2e3e62a5ca170051a512053fc0", "weights_hash": "7870dc30c4bcf7089a89aebd25c7926d2b875424ed6cf65a30cbaf9de38c369c", "model_id": "router", "total_cost_usd": 0.008094500000000001, "n_calls": 6, "call_log_hash": "4dae7eda76dacf7ce21ba013929712f9bf86ea9818ddf986281b3fd8bf792585", "measurement": "1449fadb4821cadef93f7eecc8c3b040e2cd244e01a2607ea531e5f7055c38d8", "confined": true, "latency_s": 25.88, "tokens_in": 1417, "tokens_out": 1962, "results": [{"benchmark": "mmlu", "task_id": "mmlu-5567", "answer": "C", "cost_usd": 1.47e-05, "chosen_rung": 4, "rungs_used": [4], "distribution": [0.006476, 0.006476, 0.006476, 0.006476, 0.961143, 0.006476, 0.006476]}, {"benchmark": "mmlu", "task_id": "mmlu-3410", "answer": "B", "cost_usd": 3.22e-05, "chosen_rung": 4, "rungs_used": [4], "distribution": [0.006476, 0.006476, 0.006476, 0.006476, 0.961143, 0.006476, 0.006476]}, {"benchmark": "math", "task_id": "gsm8k-958", "answer": "Courtney\u2019s reported number, 48, was 20% greater than the actual attendance.\n\nSo, 48 represents 120% of the actual number:\n\n\\[\n\\text{Actual attendance}=\\frac{48}{1.2}=40\n\\]\n\n40", "cost_usd": 8.769999999999999e-05, "chosen_rung": 4, "rungs_used": [4], "distribution": [0.006476, 0.006476, 0.006476, 0.006476, 0.961143, 0.006476, 0.006476]}, {"benchmark": "math", "task_id": "gsm8k-245", "answer": "The difference in snails is:\n\n32 \u2212 4 = 28\n\nLet each aquarium have \\(x\\) fish. Together, they have \\(2x\\) fish. Twice that amount is \\(4x\\).\n\nSo:\n\n\\(4x = 28\\)\n\n\\(x = 7\\)\n\n7", "cost_usd": 9.639999999999999e-05, "chosen_rung": 4, "rungs_used": [4], "distribution": [0.006476, 0.006476, 0.006476, 0.006476, 0.961143, 0.006476, 0.006476]}, {"benchmark": "code", "task_id": "lcb-abc400_b", "answer": "import sys\n\n\ndef main():\n N, M = map(int, sys.stdin.read().split())\n\n X = 0\n term = 1\n for _ in range(M + 1):\n X += term\n if X > 10**9:\n print(\"inf\")\n return\n term *= N\n\n print(X)\n\n\nif __name__ == \"__main__\":\n main()", "cost_usd": 0.0073575, "chosen_rung": 5, "rungs_used": [5], "distribution": [0.0, 0.0, 0.0, 0.0, 0.0, 1.0, 0.0]}, {"benchmark": "code", "task_id": "lcb-abc392_d", "answer": "import sys\n\ndef main():\n data = list(map(int, sys.stdin.buffer.read().split()))\n n = data[0]\n idx = 1\n dice = []\n\n for _ in range(n):\n k = data[idx]\n idx += 1\n counts = {}\n for x in data[idx:idx + k]:\n counts[x] = counts.get(x, 0) + 1\n idx += k\n dice.append((k, counts))\n\n ans = 0.0\n\n for i in range(n):\n ki, ci = dice[i]\n for j in range(i + 1, n):\n kj, cj = dice[j]\n\n if len(ci) <= len(cj):\n small, large = ci, cj\n else:\n small, large = cj, ci\n\n matches = sum(count * large.get(value, 0) for value, count in small.items())\n probability = matches / (ki * kj)\n if probability > ans:\n ans = probability\n\n print(\"{:.15f}\".format(ans))\n\nif __name__ == \"__main__\":\n main()\n", "cost_usd": 0.0005060000000000004, "chosen_rung": 4, "rungs_used": [4], "distribution": [0.0, 0.0, 0.0, 0.0, 1.0, 0.0, 0.0]}], "quote": {"measurement": "1449fadb4821cadef93f7eecc8c3b040e2cd244e01a2607ea531e5f7055c38d8", "report_data": "145341e336d76e103e8ff9d2903949c903cb11597d4ac36d82f281c6372236dc", "platform_sig": 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