DracoBench Report: deepseek/deepseek-v4-pro

deepseek/deepseek-v4-pro
Pass rate
91.0%
Cases
91/100
Avg latency
11827 ms
Total time
19m 45s
Total cost
$0.110125
Prompt tokens
9385
Completion tokens
44207
Reasoning tokens
36756
Errors
0

By Suite

SuiteCasesPassedPass rateAvg latencyCost
chinese_writing44100.0%10077 ms$0.004011
coding282692.9%21185 ms$0.057355
debugging1919100.0%12367 ms$0.024848
instruction_following66100.0%6980 ms$0.002222
rag_long_context181688.9%6045 ms$0.009167
reasoning252080.0%6540 ms$0.012521

Failure Examples

challenge-coding-004

Suite: coding
Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(capacity: int, ops: list[str]) -> list[int],模拟 LRU cache。ops 包含 "put key value" 和 "get key"。get 返回 value,不存在返回 -1。put 已存在 key 要更新并变成最近使用。容量为 0 时所有 get 都返回 -1。
Standard Answer / Scoring Expectation
Reference tests:
ops = ['put a 1', 'put b 2', 'get a', 'put c 3', 'get b', 'get a', 'get c']
assert solution.solve(2, ops) == [1, -1, 1, 3]
assert solution.solve(0, ['put a 1', 'get a']) == [-1]
assert solution.solve(1, ['put a 1', 'put a 2', 'get a']) == [2]
Mistake Analysis
Failure type: runtime_type_assumption
题目里的 cache key 是字符串,例如 `a`、`b`、`c`,但模型把 key 强行写成 `int(parts[1])`。测试一遇到 `put a 1` 就在解析 `a` 时抛出 ValueError。根因是模型擅自补了“key 是整数”的类型假设。
Scorer Details
{
  "returncode": 1,
  "stdout": "",
  "stderr": "Traceback (most recent call last):\n  File \"/var/folders/x_/4cht1kfj1_j31gdv5w01sgmw0000gn/T/dracobench-code-zbhmi4m3/test_solution.py\", line 4, in <module>\n    assert solution.solve(2, ops) == [1, -1, 1, 3]\n           ^^^^^^^^^^^^^^^^^^^^^^\n  File \"/private/var/folders/x_/4cht1kfj1_j31gdv5w01sgmw0000gn/T/dracobench-code-zbhmi4m3/solution.py\", line 20, in solve\n    key = int(parts[1])\n          ^^^^^^^^^^^^^\nValueError: invalid literal for int() with base 10: 'a'\n"
}
Output
```python
from collections import OrderedDict
from typing import List

def solve(capacity: int, ops: List[str]) -> List[int]:
    results = []
    cache = OrderedDict()
    
    for op in ops:
        parts = op.split()
        if parts[0] == "get":
            key = int(parts[1])
            if capacity == 0:
                results.append(-1)
            elif key in cache:
                cache.move_to_end(key)
                results.append(cache[key])
            else:
                results.append(-1)
        else:  # put
            key = int(parts[1])
            value = int(parts[2])
            if capacity == 0:
                continue
            if key in cache:
                cache.move_to_end(key)
                cache[key] = value
            else:
                if len(cache) >= capacity:
                    cache.popitem(last=False)
                cache[key] = value
    return results
```

challenge-reasoning-003

Suite: reasoning
Finish: stop
Prompt
只回答最终数字:一个 4 位二进制数从 1011 开始,先左移一位并只保留低 4 位,再与 0110 做异或,最后转成十进制。结果是多少?
Standard Answer / Scoring Expectation
Answer: 0
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `9` 与标准答案 `0` 不一致。1011 左移一位并只保留低 4 位得到 0110;0110 XOR 0110 = 0000,十进制为 0。模型输出 `9`,说明它漏掉了“只保留低 4 位”或在 XOR 步骤中按位计算错误。
Scorer Details
{
  "expected": "0",
  "actual": "9"
}
Output
9

challenge-rag-001

Suite: rag_long_context
Finish: stop
Prompt
只根据资料回答。

资料 A:DracoBench v0.2 的目标是提高区分度,优先增加 coding、debugging、RAG 和 instruction_following 题。
资料 B:DracoBench v0.2 不会默认使用 LLM-as-judge;开放中文写作题只做少量规则校验和人工抽检。
资料 C:v0.2 的 HTML 报告必须展示通过率、成本、reasoning tokens、失败样例和逐题明细。

问题:v0.2 为什么没有把 LLM-as-judge 作为默认判分?
Standard Answer / Scoring Expectation
Required phrases: 人工抽检
At least one from each group: 默认使用 / 默认判分 / 默认采用 / 作为默认判分
Forbidden phrases: 因为成本太高、因为不支持中文
Length guidance (diagnostic only): min=n/a, max=160
Mistake Analysis
Failure type: missing_required_info
问题问的是“为什么 v0.2 不把 LLM-as-judge 作为默认判分”。资料 B 给出的关键依据是:开放中文写作题只做少量规则校验和人工抽检。模型回答 `资料未说明原因。` 只是复述“不会默认使用”或说资料未说明,没有说出替代判分方式里的“人工抽检”,因此缺少真正解释原因的证据链。
Scorer Details
{
  "missing": [
    "人工抽检"
  ],
  "missing_any": [
    [
      "默认使用",
      "默认判分",
      "默认采用",
      "作为默认判分"
    ]
  ],
  "present_forbidden": [],
  "char_count": 8,
  "length_ok": true,
  "length_scored": false
}
Output
资料未说明原因。

challenge-rag-004

Suite: rag_long_context
Finish: stop
Prompt
只根据资料回答,不要使用资料外知识。

资料:报告字段包括 pass_rate、avg_latency_ms、total_cost、prompt_tokens、completion_tokens、reasoning_tokens。报告不包含模型训练数据来源,也不包含供应商真实利润率。

问题:根据资料,能否从报告判断供应商利润率?
Standard Answer / Scoring Expectation
Required phrases: 不能、不包含、利润率
Forbidden phrases: 可以判断、训练数据
Length guidance (diagnostic only): min=n/a, max=100
Mistake Analysis
Failure type: missing_required_info
模型结论 `不能。` 方向正确,但回答过短,只给了“不能”而没有说明依据。这类 RAG 题要求同时回答结论和资料中的缺失字段;本题缺少 `不包含、利润率`,所以读者无法复查模型为什么不能判断。
Scorer Details
{
  "missing": [
    "不包含",
    "利润率"
  ],
  "missing_any": [],
  "present_forbidden": [],
  "char_count": 3,
  "length_ok": true,
  "length_scored": false
}
Output
不能。

challenge-coding-014

Suite: coding
Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(nums: list[int]) -> int。返回删除恰好一个元素后,剩余数组的最大连续子数组和。nums 长度至少为 2,可以全为负数。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve([1,-2,0,3]) == 4
assert solution.solve([1,-2,-2,3]) == 3
assert solution.solve([-1,-1,-1]) == -1
assert solution.solve([2,1,-2,3]) == 6
Mistake Analysis
Failure type: code_assertion_failure
模型采用了左右最大子数组拼接法,但没有正确覆盖“删除后可以只取一侧子数组”的情况。在 `[1,-2,-2,3]` 中,最佳做法是删除一个 `-2` 后取右侧 `[3]`,答案为 3;模型只算出 2,说明动态规划状态没有完整表达“恰好删除一个元素后的最大连续和”。
Scorer Details
{
  "returncode": 1,
  "stdout": "",
  "stderr": "Traceback (most recent call last):\n  File \"/var/folders/x_/4cht1kfj1_j31gdv5w01sgmw0000gn/T/dracobench-code-cmk_uboc/test_solution.py\", line 4, in <module>\n    assert solution.solve([1,-2,-2,3]) == 3\nAssertionError\n"
}
Output
```python
def solve(nums: list[int]) -> int:
    n = len(nums)
    if n == 2:
        return max(nums[0], nums[1])
    
    left = [0] * n
    left[0] = nums[0]
    for i in range(1, n):
        left[i] = max(nums[i], left[i-1] + nums[i])
    
    right = [0] * n
    right[-1] = nums[-1]
    for i in range(n-2, -1, -1):
        right[i] = max(nums[i], right[i+1] + nums[i])
    
    ans = max(left[-2], right[1])
    for i in range(1, n-1):
        ans = max(ans, left[i-1] + right[i+1])
    
    return ans
```

challenge-reasoning-012

Suite: reasoning
Finish: stop
Prompt
只回答最终数字:一个 5 位二进制数 10110 先循环右移 1 位,再与 00111 做异或,最后转成十进制。结果是多少?
Standard Answer / Scoring Expectation
Answer: 12
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `13` 与标准答案 `12` 不一致。10110 循环右移 1 位得到 01011;01011 XOR 00111 = 01100,十进制为 12。模型输出 `13`,根因是循环移位或 XOR 的二进制位计算错。
Scorer Details
{
  "expected": "12",
  "actual": "13"
}
Output
13

challenge-reasoning-019

Suite: reasoning
Finish: stop
Prompt
只回答最终数字:用 A、B、C 组成长度为 3 的字符串,要求恰好包含一个 A,并且最后一个字符不能是 C。满足条件的字符串有多少个?
Standard Answer / Scoring Expectation
Answer: 8
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `4` 与标准答案 `8` 不一致。恰好一个 A:A 在末位时前两位可为 B/C 共 4 种;A 在第 1 或第 2 位时末位只能是 B,各 2 种;总数 8。模型输出 `4`,说明它漏算了某些 A 的位置,或错误处理了“最后一个字符不能是 C”的限制。
Scorer Details
{
  "expected": "8",
  "actual": "4"
}
Output
4

challenge-reasoning-020

Suite: reasoning
Finish: stop
Prompt
只回答最终数字:栈操作从空栈开始。push n 表示入栈;dup 复制栈顶;add 弹出两个数并压入它们的和;swap 交换栈顶两个数;sub 先弹出 x 再弹出 y,并压入 y-x。依次执行:push 2, push 3, dup, add, push 4, swap, sub。最终栈顶是多少?
Standard Answer / Scoring Expectation
Answer: -2
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `4` 与标准答案 `-2` 不一致。栈执行到 `push 4, swap` 后为 `[2,4,6]`;`sub` 先弹 x=6,再弹 y=4,压入 y-x=-2。模型输出 `4`,根因是 `sub` 的出栈顺序或 `swap` 后栈顶理解错。
Scorer Details
{
  "expected": "-2",
  "actual": "4"
}
Output
4

challenge-reasoning-022

Suite: reasoning
Finish: stop
Prompt
只回答最终数字:映射初始为 {a:1, b:2}。依次执行:设置 c=a+b;设置 a=c-b;删除 b;设置 d=a+c。最终所有 value 之和是多少?
Standard Answer / Scoring Expectation
Answer: 8
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `10` 与标准答案 `8` 不一致。映射更新后 c=3,a=c-b=1,删除 b,再设置 d=a+c=4;最终 value 为 1、3、4,总和 8。模型输出 `10`,说明它漏做了删除 b、错误更新 a,或没有按顺序使用最新映射值。
Scorer Details
{
  "expected": "8",
  "actual": "10"
}
Output
10

All Questions & Answers

challenge-coding-001 PASS
Suite: coding · Latency: 9255 ms · Cost: $0.000705 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(lines: list[str]) -> dict。lines 是简化 INI:空行和以 # 开头的行忽略;[section] 开始新 section;key=value 写入当前 section;key/value 两侧空白要去掉;同一 section 内重复 key 后者覆盖前者。返回嵌套 dict。
Standard Answer / Scoring Expectation
Reference tests:
lines = ['# comment', '[db]', ' host = localhost ', 'port=5432', '', '[feature]', 'enabled=true', 'enabled = false']
assert solution.solve(lines) == {'db': {'host': 'localhost', 'port': '5432'}, 'feature': {'enabled': 'false'}}
assert solution.solve(['[x]', 'a=1', 'a=2', '[y]', 'b = hi']) == {'x': {'a': '2'}, 'y': {'b': 'hi'}}
Output
```python
def solve(lines: list[str]) -> dict:
    result = {}
    current_section = None
    
    for line in lines:
        stripped = line.strip()
        if not stripped or stripped.startswith('#'):
            continue
        if stripped.startswith('[') and stripped.endswith(']'):
            current_section = stripped[1:-1].strip()
            if current_section not in result:
                result[current_section] = {}
        elif '=' in stripped and current_section is not None:
            key, value = stripped.split('=', 1)
            key = key.strip()
            value = value.strip()
            result[current_section][key] = value
    
    return result
```
challenge-coding-002 PASS
Suite: coding · Latency: 29612 ms · Cost: $0.002193 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(events: list[str]) -> int。事件格式:"<id> credit <amount>" 增加余额,"<id> debit <amount>" 减少余额,"rev <id>" 撤销此前尚未撤销过的同 id 事件。重复交易 id 只保留第一次,未知撤销忽略。返回最终余额。
Standard Answer / Scoring Expectation
Reference tests:
events = ['a credit 100', 'b debit 40', 'a credit 999', 'rev b', 'c debit 10']
assert solution.solve(events) == 90
events = ['x debit 5', 'rev y', 'rev x', 'rev x', 'z credit 7']
assert solution.solve(events) == 7
Output
```python
def solve(events):
    balance = 0
    records = {}
    for ev in events:
        parts = ev.split()
        if not parts:
            continue
        if parts[0] == 'rev':
            if len(parts) != 2:
                continue
            eid = parts[1]
            if eid in records:
                typ, amt, revoked = records[eid]
                if not revoked:
                    if typ == 'credit':
                        balance -= amt
                    else:
                        balance += amt
                    records[eid] = (typ, amt, True)
        else:
            if len(parts) != 3:
                continue
            eid, op, amt_str = parts
            if op not in ('credit', 'debit'):
                continue
            try:
                amt = int(amt_str)
            except ValueError:
                continue
            if eid in records:
                continue
            records[eid] = (op, amt, False)
            if op == 'credit':
                balance += amt
            else:
                balance -= amt
    return balance
```
challenge-coding-003 PASS
Suite: coding · Latency: 32317 ms · Cost: $0.002447 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(deps: dict[str, list[str]]) -> list[list[str]]。deps 表示 task -> prerequisites。返回可并行执行的拓扑层,每层任务按字典序排序;如果存在环,返回空列表。所有只出现在 prerequisites 中的任务也要包含。
Standard Answer / Scoring Expectation
Reference tests:
deps = {'build': ['lint', 'test'], 'test': ['install'], 'lint': ['install']}
assert solution.solve(deps) == [['install'], ['lint', 'test'], ['build']]
assert solution.solve({'a': ['b'], 'b': ['a']}) == []
assert solution.solve({'deploy': ['build'], 'build': []}) == [['build'], ['deploy']]
Output
```python
def solve(deps: dict[str, list[str]]) -> list[list[str]]:
    all_nodes = set(deps.keys())
    for prereqs in deps.values():
        all_nodes.update(prereqs)

    in_degree = {node: 0 for node in all_nodes}
    adj = {node: [] for node in all_nodes}

    for task, prereqs in deps.items():
        in_degree[task] = len(prereqs)
        for prereq in prereqs:
            adj[prereq].append(task)

    queue = sorted([node for node in all_nodes if in_degree[node] == 0])
    layers = []
    processed = 0

    while queue:
        layer = queue[:]
        layers.append(layer)
        processed += len(layer)
        next_queue = []
        for u in layer:
            for v in adj[u]:
                in_degree[v] -= 1
                if in_degree[v] == 0:
                    next_queue.append(v)
        queue = sorted(next_queue)

    if processed != len(all_nodes):
        return []

    return layers
```
challenge-coding-004 FAIL
Suite: coding · Latency: 6170 ms · Cost: $0.000499 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(capacity: int, ops: list[str]) -> list[int],模拟 LRU cache。ops 包含 "put key value" 和 "get key"。get 返回 value,不存在返回 -1。put 已存在 key 要更新并变成最近使用。容量为 0 时所有 get 都返回 -1。
Standard Answer / Scoring Expectation
Reference tests:
ops = ['put a 1', 'put b 2', 'get a', 'put c 3', 'get b', 'get a', 'get c']
assert solution.solve(2, ops) == [1, -1, 1, 3]
assert solution.solve(0, ['put a 1', 'get a']) == [-1]
assert solution.solve(1, ['put a 1', 'put a 2', 'get a']) == [2]
Mistake Analysis
Failure type: runtime_type_assumption
题目里的 cache key 是字符串,例如 `a`、`b`、`c`,但模型把 key 强行写成 `int(parts[1])`。测试一遇到 `put a 1` 就在解析 `a` 时抛出 ValueError。根因是模型擅自补了“key 是整数”的类型假设。
Output
```python
from collections import OrderedDict
from typing import List

def solve(capacity: int, ops: List[str]) -> List[int]:
    results = []
    cache = OrderedDict()
    
    for op in ops:
        parts = op.split()
        if parts[0] == "get":
            key = int(parts[1])
            if capacity == 0:
                results.append(-1)
            elif key in cache:
                cache.move_to_end(key)
                results.append(cache[key])
            else:
                results.append(-1)
        else:  # put
            key = int(parts[1])
            value = int(parts[2])
            if capacity == 0:
                continue
            if key in cache:
                cache.move_to_end(key)
                cache[key] = value
            else:
                if len(cache) >= capacity:
                    cache.popitem(last=False)
                cache[key] = value
    return results
```
challenge-coding-005 PASS
Suite: coding · Latency: 20766 ms · Cost: $0.000386 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(base: dict, patch: dict) -> dict,执行 JSON Merge Patch:patch 中值为 None 表示删除该 key;两个值都是 dict 时递归合并;其他值覆盖。不能修改输入对象。
Standard Answer / Scoring Expectation
Reference tests:
base = {'a': 1, 'b': {'x': 1, 'y': 2}, 'c': 3}
patch = {'b': {'y': None, 'z': 4}, 'c': None}
assert solution.solve(base, patch) == {'a': 1, 'b': {'x': 1, 'z': 4}}
assert base == {'a': 1, 'b': {'x': 1, 'y': 2}, 'c': 3}
assert solution.solve({'a': {'b': 1}}, {'a': 5}) == {'a': 5}
Output
```python
def solve(base: dict, patch: dict) -> dict:
    result = {k: v for k, v in base.items()}
    for key, value in patch.items():
        if value is None:
            result.pop(key, None)
        elif isinstance(value, dict) and isinstance(result.get(key), dict):
            result[key] = solve(result[key], value)
        else:
            result[key] = value
    return result
```
challenge-coding-006 PASS
Suite: coding · Latency: 7183 ms · Cost: $0.000458 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(text: str) -> int,把时长字符串转换成毫秒。支持整数单位 d、h、m、s、ms,可有空格,单位可重复,顺序任意。例如 "1h 30m 500ms"。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('1h 30m 500ms') == 5400500
assert solution.solve('2d 1h 2s') == 176402000
assert solution.solve('100ms 2s 3ms') == 2103
Output
```python
import re

def solve(text: str) -> int:
    total_ms = 0
    # 使用正则匹配数字和单位,单位可以是 ms, d, h, m, s
    pattern = re.compile(r'(\d+)\s*(ms|[dhms])')
    matches = pattern.findall(text)
    for num_str, unit in matches:
        val = int(num_str)
        if unit == 'd':
            total_ms += val * 86400000
        elif unit == 'h':
            total_ms += val * 3600000
        elif unit == 'm':
            total_ms += val * 60000
        elif unit == 's':
            total_ms += val * 1000
        elif unit == 'ms':
            total_ms += val
    return total_ms
```
challenge-coding-007 PASS
Suite: coding · Latency: 33254 ms · Cost: $0.003989 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(s: str) -> bool,检查括号 ()[]{} 是否配对。单引号或双引号内部的括号忽略;反斜杠会转义引号。输入字符串可以包含普通字符。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('{a:[(1)]}') is True
assert solution.solve("{'x': '(]'}") is True
assert solution.solve("['unterminated]") is False
assert solution.solve('([)]') is False
assert solution.solve("\"paren \\\" ) still quoted\"") is True
Output
```python
def solve(s: str) -> bool:
    stack = []
    i = 0
    n = len(s)
    in_single = False
    in_double = False
    while i < n:
        c = s[i]
        if in_single:
            if c == '\\':
                i += 2  # skip escaped char
                continue
            elif c == "'":
                in_single = False
            i += 1
        elif in_double:
            if c == '\\':
                i += 2
                continue
            elif c == '"':
                in_double = False
            i += 1
        else:
            if c == "'":
                in_single = True
            elif c == '"':
                in_double = True
            elif c in '([{':
                stack.append(c)
            elif c in ')]}':
                if not stack:
                    return False
                left = stack.pop()
                if (c == ')' and left != '(') or \
                   (c == ']' and left != '[') or \
                   (c == '}' and left != '{'):
                    return False
            i += 1
    return not stack
```
challenge-coding-008 PASS
Suite: coding · Latency: 7709 ms · Cost: $0.001458 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(rows: list[dict]) -> list[dict]。每行有 user、ts、value。对每个 user 保留 ts 最大的一行;若 ts 相同,保留在输入中更靠后的行。输出按 user 字典序排序。
Standard Answer / Scoring Expectation
Reference tests:
rows = [{'user':'b','ts':1,'value':'old'}, {'user':'a','ts':2,'value':'x'}, {'user':'b','ts':3,'value':'new'}]
assert solution.solve(rows) == [{'user':'a','ts':2,'value':'x'}, {'user':'b','ts':3,'value':'new'}]
rows = [{'user':'a','ts':1,'value':'first'}, {'user':'a','ts':1,'value':'second'}]
assert solution.solve(rows) == [{'user':'a','ts':1,'value':'second'}]
Output
```python
def solve(rows: list[dict]) -> list[dict]:
    best = {}
    for row in rows:
        user = row['user']
        ts = row['ts']
        if user not in best or ts >= best[user]['ts']:
            best[user] = row
    return [best[u] for u in sorted(best)]
```
challenge-debugging-001 PASS
Suite: debugging · Latency: 25804 ms · Cost: $0.000433 · Finish: stop
Prompt
下面代码在 total 之后再次读取数据会变成空列表。请指出根因,并给出最小修复。最后单独一行写 FIX: <修复后的第一行函数定义>。

```python
def summarize(items=iter([1, 2, 3])):
    return sum(items)
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*def\s+summarize\(items=None\)\s*:
Output
根本原因:`iter([1, 2, 3])` 作为默认参数只在函数定义时求值一次,返回的迭代器在第一次 `sum(items)` 调用时就被消耗完了。后续调用时迭代器已经耗尽,`sum()` 返回 0。

最小修复:将默认值改为 `None`,在函数内部创建新的迭代器。

```python
def summarize(items=None):
    if items is None:
        items = [1, 2, 3]
    return sum(items)
```

FIX: def summarize(items=None):
challenge-debugging-002 PASS
Suite: debugging · Latency: 6280 ms · Cost: $0.000550 · Finish: stop
Prompt
下面代码期望统计每个用户的事件数,但所有用户计数会互相影响。请指出根因,并给出最小修复。最后单独一行写 FIX: <修复后的 defaultdict 初始化行>。

```python
from collections import defaultdict
shared = {'seen': []}
counts = defaultdict(lambda: shared)

def add(user, event):
    counts[user]['seen'].append(event)
    return counts[user]
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*counts\s*=\s*defaultdict\(lambda\s*:\s*\{'seen'\s*:\s*\[\]\}\)\s*`?
Output
根因是 `defaultdict` 的工厂函数 `lambda: shared` 始终返回同一个字典对象 `shared`,导致所有用户共享同一个 `'seen'` 列表。  
最小修复:将工厂函数改为返回独立的新字典,即 `lambda: {'seen': []}`。

FIX: counts = defaultdict(lambda: {'seen': []})
challenge-debugging-003 PASS
Suite: debugging · Latency: 2058 ms · Cost: $0.000637 · Finish: stop
Prompt
下面分页代码会漏掉最后不足 page_size 的一页。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 range 行>。

```python
def pages(items, page_size):
    out = []
    for start in range(0, len(items) - page_size, page_size):
        out.append(items[start:start + page_size])
    return out
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*for\s+start\s+in\s+range\(0,\s*len\(items\),\s*page_size\)\s*:
Output
The bug is that `range(0, len(items) - page_size, page_size)` stops too early when `len(items)` is not a multiple of `page_size`.  
For example, if `len(items) = 10` and `page_size = 3`, the range generates `0, 3, 6` and stops before `9`, missing the last page `[9:10]`.

**Fix:** Change the stop value to `len(items)` so the last start index is included.

FIX: `for start in range(0, len(items), page_size):`
challenge-debugging-004 PASS
Suite: debugging · Latency: 5751 ms · Cost: $0.001034 · Finish: stop
Prompt
下面代码期望把数字字符串按数值排序,但结果是字典序。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 return 行>。

```python
def order(ids):
    return sorted(ids)
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*return\s+sorted\(ids,\s*key\s*=\s*int\)\s*`?
Output
Bug: `sorted(ids)` 默认按字符串字典序排序,例如 `"10" < "2"`,导致结果不符合数值顺序。  
最小修复:为 `sorted` 指定 `key=int`,使比较基于整数值。  
FIX: return sorted(ids, key=int)
challenge-debugging-005 PASS
Suite: debugging · Latency: 9102 ms · Cost: $0.002323 · Finish: stop
Prompt
下面缓存装饰器会把不同参数的调用混在一起。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 key 赋值行>。

```python
cache = {}
def memo(fn):
    def wrapper(*args, **kwargs):
        key = fn.__name__
        if key not in cache:
            cache[key] = fn(*args, **kwargs)
        return cache[key]
    return wrapper
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*key\s*=\s*\(fn\.__name__,\s*args,\s*(?:tuple\(sorted\(kwargs\.items\(\)\)\)|frozenset\(kwargs\.items\(\)\))\)\s*`?
Output
缓存装饰器的 bug 在于 `key = fn.__name__` 仅使用函数名作为缓存键,忽略了调用参数。这导致不同参数的调用共享同一个缓存结果,第一次调用后的所有调用(无论参数如何)都会返回第一次的结果。

最小修复是将参数信息也纳入缓存键,例如:
```python
key = (fn.__name__, args, tuple(sorted(kwargs.items())))
```
FIX: key = (fn.__name__, args, tuple(sorted(kwargs.items())))
challenge-debugging-006 PASS
Suite: debugging · Latency: 5684 ms · Cost: $0.000336 · Finish: stop
Prompt
下面代码期望浅拷贝列表后独立追加,但原列表也被修改。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 copy 行>。

```python
def append_copy(items, value):
    copied = items
    copied.append(value)
    return copied
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*copied\s*=\s*(?:items\.copy\(\)|items\[:\]|list\(items\))\s*`?
Output
Bug: `copied = items` 只是别名引用,没有创建新列表,因此对 `copied` 的修改会影响原列表。最小修复:使用浅拷贝。

FIX: copied = items.copy()
challenge-debugging-007 PASS
Suite: debugging · Latency: 10450 ms · Cost: $0.000948 · Finish: stop
Prompt
下面代码期望解析 JSON 字符串,但传入已经是 dict 时会报错。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 data 赋值行>。

```python
import json

def load(payload):
    data = json.loads(payload)
    return data['id']
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*data\s*=\s*(payload\s+if\s+isinstance\(payload,\s*dict\)\s+else\s+json\.loads\(payload\)|json\.loads\(payload\)\s+if\s+isinstance\(payload,\s*\(str,\s*bytes,\s*bytearray\)\)\s+else\s+payload|json\.loads\(payload\)\s+if\s+isinstance\(payload,\s*str\)\s+else\s+payload)\s*`?
Output
`json.loads` 只接受 `str`、`bytes` 或 `bytearray`,当 `payload` 已经是 `dict` 时会抛出 `TypeError`。  
最小修复是在解析前加一个类型判断:若已是 `dict`,直接使用;否则再用 `json.loads`。

```python
def load(payload):
    data = payload if isinstance(payload, dict) else json.loads(payload)
    return data['id']
```

FIX: `data = payload if isinstance(payload, dict) else json.loads(payload)`
challenge-debugging-008 PASS
Suite: debugging · Latency: 12218 ms · Cost: $0.001125 · Finish: stop
Prompt
下面代码期望 finally 后仍保留 try 中返回值,但实际总是返回 None。请指出 bug,并给出最小修复。最后单独一行写 FIX: <要删除或替换的 finally 行说明>。

```python
def read_value():
    try:
        return 42
    finally:
        return None
```
Standard Answer / Scoring Expectation
Accepted answers:
- 删除 finally 中的 return None
- 去掉 finally 的 return None
- 不要在 finally 里 return None
- remove return None
- 去掉 finally 中的 return None
- 删除或替换 finally 中的 return None
- 去掉 finally 中的 `return None`
- 删除或替换 finally 中的 `return None`
- 删除 finally 块中的 `return None`
- 删除 finally 块中的 return None
- 删除 finally 中的 `return None`
- 删除 `finally` 块中的 `return None`
- 删除 `finally` 中的 `return None`
- 删除 `finally: return None`
- 将 `finally:` 中的 `return None` 删除
- finally 中的 return None 删除
- finally: 中的 return None 删除
- 删除 finally 块中的 'return None'
- 删除 finally 子句中的 `return None`
- 删除 finally 子句中的 return None
- delete the line `return None` inside the finally block
- delete the line return None inside the finally block
- finally 块不应包含 return 语句
- finally 块不应包含 return
- finally 不应包含 return
Output
The bug is that a `return` statement inside a `finally` block overrides any return value from the `try` or `except` blocks. Therefore `finally: return None` always causes the function to return `None` instead of `42`.

Minimal fix: remove the `return` from the `finally` block so that the original return value is preserved. For example, change to `finally: pass` or simply delete the line.

FIX: delete the line `return None` inside the finally block
challenge-reasoning-001 PASS
Suite: reasoning · Latency: 8779 ms · Cost: $0.000372 · Finish: stop
Prompt
只回答最终数字:有 A、B、C、D 四个服务。A 每分钟处理 6 个请求,B 比 A 少 2 个,C 是 B 的 2 倍,D 是 A 和 C 的平均值。四个服务 5 分钟一共处理多少请求?
Standard Answer / Scoring Expectation
Answer: 125
Output
125
challenge-reasoning-002 PASS
Suite: reasoning · Latency: 26632 ms · Cost: $0.001865 · Finish: stop
Prompt
只回答一个字母:五个任务 A、B、C、D、E 排队。A 必须在 B 前,B 必须在 C 前;D 不能在两端;E 必须紧挨在 C 后面。在所有满足条件的队列中,按字典序最小的队列第三个任务是谁?
Standard Answer / Scoring Expectation
Answer: D
Output
D
challenge-reasoning-003 FAIL
Suite: reasoning · Latency: 1724 ms · Cost: $0.000144 · Finish: stop
Prompt
只回答最终数字:一个 4 位二进制数从 1011 开始,先左移一位并只保留低 4 位,再与 0110 做异或,最后转成十进制。结果是多少?
Standard Answer / Scoring Expectation
Answer: 0
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `9` 与标准答案 `0` 不一致。1011 左移一位并只保留低 4 位得到 0110;0110 XOR 0110 = 0000,十进制为 0。模型输出 `9`,说明它漏掉了“只保留低 4 位”或在 XOR 步骤中按位计算错误。
Output
9
challenge-reasoning-004 PASS
Suite: reasoning · Latency: 1622 ms · Cost: $0.000155 · Finish: stop
Prompt
只回答最终数字:一个集合最初为 {1,2,3,4,5}。依次执行:删除所有偶数;加入 6 和 7;把每个元素乘以 2;删除大于 10 的元素。最终集合元素之和是多少?
Standard Answer / Scoring Expectation
Answer: 18
Output
18
challenge-reasoning-005 PASS
Suite: reasoning · Latency: 6562 ms · Cost: $0.000609 · Finish: stop
Prompt
只回答“可满足”或“不可满足”:有三个布尔变量 x、y、z。约束为:x 或 y 为真;如果 x 为真则 z 为假;如果 y 为真则 z 为真;x 和 y 不能同时为真。是否存在赋值满足全部约束?
Standard Answer / Scoring Expectation
Answer: 可满足
Output
可满足
challenge-rag-001 FAIL
Suite: rag_long_context · Latency: 4539 ms · Cost: $0.000390 · Finish: stop
Prompt
只根据资料回答。

资料 A:DracoBench v0.2 的目标是提高区分度,优先增加 coding、debugging、RAG 和 instruction_following 题。
资料 B:DracoBench v0.2 不会默认使用 LLM-as-judge;开放中文写作题只做少量规则校验和人工抽检。
资料 C:v0.2 的 HTML 报告必须展示通过率、成本、reasoning tokens、失败样例和逐题明细。

问题:v0.2 为什么没有把 LLM-as-judge 作为默认判分?
Standard Answer / Scoring Expectation
Required phrases: 人工抽检
At least one from each group: 默认使用 / 默认判分 / 默认采用 / 作为默认判分
Forbidden phrases: 因为成本太高、因为不支持中文
Length guidance (diagnostic only): min=n/a, max=160
Mistake Analysis
Failure type: missing_required_info
问题问的是“为什么 v0.2 不把 LLM-as-judge 作为默认判分”。资料 B 给出的关键依据是:开放中文写作题只做少量规则校验和人工抽检。模型回答 `资料未说明原因。` 只是复述“不会默认使用”或说资料未说明,没有说出替代判分方式里的“人工抽检”,因此缺少真正解释原因的证据链。
Output
资料未说明原因。
challenge-rag-002 PASS
Suite: rag_long_context · Latency: 4490 ms · Cost: $0.000393 · Finish: stop
Prompt
只根据资料回答,不要自行补充。

资料:模型 Alpha 在 30 道 challenge 题中通过 24 道,成本 0.08 美元,平均延迟 9 秒。模型 Beta 通过 22 道,成本 0.02 美元,平均延迟 3 秒。资料没有给出两者在多模态任务上的表现。

问题:如果要写低成本高吞吐摘要服务,资料更支持选择哪个模型?另外,多模态表现能否判断?
Standard Answer / Scoring Expectation
Required phrases: Beta、成本、延迟、判断
Forbidden phrases: Alpha 更适合、多模态更强
Length guidance (diagnostic only): min=n/a, max=180
Output
根据资料,模型 Beta 成本更低(0.02 美元)且平均延迟更短(3 秒),更适合低成本高吞吐的摘要服务。多模态表现无法判断,因为资料未提供相关信息。
challenge-rag-003 PASS
Suite: rag_long_context · Latency: 16921 ms · Cost: $0.001409 · Finish: stop
Prompt
只根据资料回答。

资料:一次评测中,K 模型在 smoke set 上 7/7,通过率 100%;在 hard set 上原始结果 47/50,其中 2 题后来被认定为题面歧义,单独复测通过。另有 1 题因 reasoning tokens 用尽而空输出。

问题:更公平的文字结论应该如何描述 K 模型这次 hard set 表现?
Standard Answer / Scoring Expectation
Required phrases: 题面歧义
At least one from each group: 47/50 / 47 题 / 47题;空输出 / 输出为空 / 未输出
Forbidden phrases: 满分、完全失败
Length guidance (diagnostic only): min=n/a, max=240
Output
在排除两道存在题面歧义的题目后,K 模型在 hard set 剩余 48 道有效题中正确作答 47 题,仅 1 题因 reasoning tokens 耗尽导致空输出未能通过。
challenge-rag-004 FAIL
Suite: rag_long_context · Latency: 20605 ms · Cost: $0.000354 · Finish: stop
Prompt
只根据资料回答,不要使用资料外知识。

资料:报告字段包括 pass_rate、avg_latency_ms、total_cost、prompt_tokens、completion_tokens、reasoning_tokens。报告不包含模型训练数据来源,也不包含供应商真实利润率。

问题:根据资料,能否从报告判断供应商利润率?
Standard Answer / Scoring Expectation
Required phrases: 不能、不包含、利润率
Forbidden phrases: 可以判断、训练数据
Length guidance (diagnostic only): min=n/a, max=100
Mistake Analysis
Failure type: missing_required_info
模型结论 `不能。` 方向正确,但回答过短,只给了“不能”而没有说明依据。这类 RAG 题要求同时回答结论和资料中的缺失字段;本题缺少 `不包含、利润率`,所以读者无法复查模型为什么不能判断。
Output
不能。
challenge-if-001 PASS
Suite: instruction_following · Latency: 7060 ms · Cost: $0.000928 · Finish: stop
Prompt
只输出 JSON 对象,不要 Markdown。字段 status 必须是 "review";字段 scores 必须是对象,包含 coding、debugging、rag 三个整数;字段 note 必须是不超过 12 个汉字的中文字符串。
Standard Answer / Scoring Expectation
Expected JSON schema:
{
  "type": "object",
  "required": [
    "status",
    "scores",
    "note"
  ],
  "additionalProperties": false,
  "properties": {
    "status": {
      "type": "string",
      "const": "review"
    },
    "scores": {
      "type": "object",
      "required": [
        "coding",
        "debugging",
        "rag"
      ],
      "additionalProperties": false,
      "properties": {
        "coding": {
          "type": "integer"
        },
        "debugging": {
          "type": "integer"
        },
        "rag": {
          "type": "integer"
        }
      }
    },
    "note": {
      "type": "string"
    }
  }
}
Output
{"status": "review", "scores": {"coding": 8, "debugging": 7, "rag": 9}, "note": "综合能力良好"}
challenge-if-002 PASS
Suite: instruction_following · Latency: 2820 ms · Cost: $0.000143 · Finish: stop
Prompt
只输出 4 行,不要解释。第 1 行是 BEGIN,第 4 行是 END。第 2 行必须包含“模型评测”,第 3 行必须包含“HTML报告”。不能出现任何项目符号。
Standard Answer / Scoring Expectation
Expected regex pattern:
^\s*BEGIN\s*\n[^\n]*模型评测[^\n]*\n[^\n]*HTML报告[^\n]*\nEND\s*$
Output
BEGIN
模型评测
HTML报告
END
challenge-if-003 PASS
Suite: instruction_following · Latency: 8233 ms · Cost: $0.000225 · Finish: stop
Prompt
只输出一个中文句子,不能超过 28 个汉字。必须同时包含“难题”和“区分度”,不能包含“最强”“吊打”“遥遥领先”。
Standard Answer / Scoring Expectation
Required phrases: 难题、区分度
Forbidden phrases: 最强、吊打、遥遥领先
Length guidance (diagnostic only): min=n/a, max=28
Output
这道难题的区分度很高,能精准筛选出不同水平的学生。
challenge-zh-writing-001 PASS
Suite: chinese_writing · Latency: 1527 ms · Cost: $0.000301 · Finish: stop
Prompt
写一段不超过 120 个汉字的公众号结论,主题是“模型在简单题满分不代表真实强”。必须包含“简单题”“真实能力”“失败样例”,不能出现“吊打”。
Standard Answer / Scoring Expectation
Required phrases: 简单题、真实能力、失败样例
Forbidden phrases: 吊打
Length guidance (diagnostic only): min=n/a, max=120
Output
模型在简单题拿满分,不代表真实能力强。许多系统能轻松应对基础问答,却在复杂推理中暴露短板。真正的考验来自失败样例——那些看似简单却暗藏逻辑陷阱的题目,才是衡量真实能力的试金石。
challenge-zh-writing-002 PASS
Suite: chinese_writing · Latency: 9149 ms · Cost: $0.000395 · Finish: stop
Prompt
把下面口语句改写成专业表达,不超过 80 个汉字:这个模型看起来很猛,但一遇到复杂调试就开始掉链子。必须包含“复杂调试”和“稳定性”,不能包含“猛”“掉链子”。
Standard Answer / Scoring Expectation
Required phrases: 复杂调试、稳定性
Forbidden phrases: 猛、掉链子
Length guidance (diagnostic only): min=n/a, max=80
Output
模型表面性能强劲,复杂调试场景下稳定性显著不足。
challenge-coding-009 PASS
Suite: coding · Latency: 6372 ms · Cost: $0.000973 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(events: list[dict]) -> dict[str, int]。每个事件包含 user、type、amount;type 为 "add" 或 "remove"。按 user 汇总 add 减 remove 后的库存,结果中去掉库存为 0 的用户,按 key 字典序返回普通 dict。amount 可能是字符串数字。
Standard Answer / Scoring Expectation
Reference tests:
events=[{'user':'b','type':'add','amount':'5'},{'user':'a','type':'add','amount':3},{'user':'b','type':'remove','amount':2},{'user':'a','type':'remove','amount':3}]
assert solution.solve(events) == {'b': 3}
assert solution.solve([]) == {}
assert solution.solve([{'user':'x','type':'remove','amount':'2'}]) == {'x': -2}
Output
```python
def solve(events: list[dict]) -> dict[str, int]:
    stock = {}
    for e in events:
        user = e["user"]
        amount = int(e["amount"])
        if e["type"] == "add":
            stock[user] = stock.get(user, 0) + amount
        else:  # remove
            stock[user] = stock.get(user, 0) - amount
    # 去掉库存为0的用户
    result = {k: v for k, v in stock.items() if v != 0}
    # 按键字典序排序,返回普通dict
    return dict(sorted(result.items()))
```
challenge-coding-010 PASS
Suite: coding · Latency: 61705 ms · Cost: $0.007975 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(expr: str) -> int。expr 只包含非负整数、+、-、空格和括号,计算表达式结果。不要使用 eval。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('1 + 2 - 3') == 0
assert solution.solve('10 - (2 + 3) + 4') == 9
assert solution.solve('(1+(4+5+2)-3)+(6+8)') == 23
Output
```python
def solve(expr: str) -> int:
    s = expr.replace(' ', '')
    i = 0
    n = len(s)

    def helper():
        nonlocal i
        stack = []
        sign = 1
        while i < n and s[i] != ')':
            if s[i].isdigit():
                num = 0
                while i < n and s[i].isdigit():
                    num = num * 10 + int(s[i])
                    i += 1
                stack.append(sign * num)
            elif s[i] == '+':
                sign = 1
                i += 1
            elif s[i] == '-':
                sign = -1
                i += 1
            elif s[i] == '(':
                i += 1
                num = helper()
                stack.append(sign * num)
                i += 1  # skip ')'
        return sum(stack)

    return helper()
```
challenge-coding-011 PASS
Suite: coding · Latency: 25158 ms · Cost: $0.002262 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(rows: list[str]) -> list[tuple[str, int]]。每行格式为 "name score",空白数量不定;同名保留最高分;输出按分数降序、同分按 name 升序。忽略空行。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve(['alice 10','bob   12','alice 15','','bob 11']) == [('alice',15),('bob',12)]
assert solution.solve(['x -1','a -1','b 0']) == [('b',0),('a',-1),('x',-1)]
Output
```python
def solve(rows):
    max_scores = {}
    for line in rows:
        line = line.strip()
        if not line:
            continue
        parts = line.split()
        if len(parts) != 2:
            continue
        name, score_str = parts
        score = int(score_str)
        if name not in max_scores or score > max_scores[name]:
            max_scores[name] = score
    return sorted(max_scores.items(), key=lambda x: (-x[1], x[0]))
```
challenge-coding-012 PASS
Suite: coding · Latency: 8273 ms · Cost: $0.000970 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(pattern: str, text: str) -> bool。pattern 支持 ? 匹配任意单字符,* 匹配任意长度字符串。必须匹配完整 text。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('a*b?d', 'axxxbc d'.replace(' ','')) is True
assert solution.solve('a*c', 'ab') is False
assert solution.solve('*', '') is True
assert solution.solve('file-??.txt', 'file-ab.txt') is True
Output
```python
def solve(pattern: str, text: str) -> bool:
    m, n = len(pattern), len(text)
    dp = [[False] * (n + 1) for _ in range(m + 1)]
    dp[0][0] = True
    for i in range(1, m + 1):
        if pattern[i-1] == '*':
            dp[i][0] = dp[i-1][0]
        else:
            break
    for i in range(1, m + 1):
        for j in range(1, n + 1):
            if pattern[i-1] == '*':
                dp[i][j] = dp[i-1][j] or dp[i][j-1]
            elif pattern[i-1] == '?' or pattern[i-1] == text[j-1]:
                dp[i][j] = dp[i-1][j-1]
    return dp[m][n]
```
challenge-coding-013 PASS
Suite: coding · Latency: 19463 ms · Cost: $0.001126 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(tree: dict) -> list[str]。tree 是嵌套字典,叶子是字符串或数字。返回所有叶子的路径,路径用点连接,按字典序排序。例如 {'a': {'b': 1}} -> ['a.b=1']。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve({'a': {'b': 1, 'c': 'x'}, 'd': 2}) == ['a.b=1','a.c=x','d=2']
assert solution.solve({'z': {'a': {'b': 3}}}) == ['z.a.b=3']
assert solution.solve({}) == []
Output
```python
def solve(tree: dict) -> list[str]:
    result = []
    def dfs(node, path):
        if not isinstance(node, dict):
            result.append('.'.join(path) + '=' + str(node))
            return
        for key in sorted(node.keys()):
            path.append(key)
            dfs(node[key], path)
            path.pop()
    dfs(tree, [])
    result.sort()
    return result
```
challenge-coding-014 FAIL
Suite: coding · Latency: 10173 ms · Cost: $0.000571 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(nums: list[int]) -> int。返回删除恰好一个元素后,剩余数组的最大连续子数组和。nums 长度至少为 2,可以全为负数。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve([1,-2,0,3]) == 4
assert solution.solve([1,-2,-2,3]) == 3
assert solution.solve([-1,-1,-1]) == -1
assert solution.solve([2,1,-2,3]) == 6
Mistake Analysis
Failure type: code_assertion_failure
模型采用了左右最大子数组拼接法,但没有正确覆盖“删除后可以只取一侧子数组”的情况。在 `[1,-2,-2,3]` 中,最佳做法是删除一个 `-2` 后取右侧 `[3]`,答案为 3;模型只算出 2,说明动态规划状态没有完整表达“恰好删除一个元素后的最大连续和”。
Output
```python
def solve(nums: list[int]) -> int:
    n = len(nums)
    if n == 2:
        return max(nums[0], nums[1])
    
    left = [0] * n
    left[0] = nums[0]
    for i in range(1, n):
        left[i] = max(nums[i], left[i-1] + nums[i])
    
    right = [0] * n
    right[-1] = nums[-1]
    for i in range(n-2, -1, -1):
        right[i] = max(nums[i], right[i+1] + nums[i])
    
    ans = max(left[-2], right[1])
    for i in range(1, n-1):
        ans = max(ans, left[i-1] + right[i+1])
    
    return ans
```
challenge-debugging-009 PASS
Suite: debugging · Latency: 9340 ms · Cost: $0.001642 · Finish: stop
Prompt
下面代码期望把输入按逗号拆分并去掉空白,但会把空字段也保留下来。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 return 行>。

```python
def parse(s):
    return [part.strip() for part in s.split(',')]
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*return\s+\[part\.strip\(\)\s+for\s+part\s+in\s+s\.split\('\,'\)\s+if\s+part\.strip\(\)\]\s*`?
Output
该代码的 bug 在于列表推导式没有过滤空字段:`s.split(',')` 会保留连续逗号产生的空字符串,`strip()` 无法去除这些空字段,因此最终结果中仍会包含空字符串。

最小修复是增加一个条件,过滤掉 `strip()` 后为空的字段:

```python
def parse(s):
    return [part.strip() for part in s.split(',') if part.strip()]
```

FIX: return [part.strip() for part in s.split(',') if part.strip()]
challenge-debugging-010 PASS
Suite: debugging · Latency: 31464 ms · Cost: $0.003606 · Finish: stop
Prompt
下面代码期望用 UTC 时间戳排序,但字符串排序会错。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 sort 行>。

```python
rows.sort(key=lambda r: r['ts'])
```
Standard Answer / Scoring Expectation
Accepted answers:
- datetime.fromisoformat
- dateutil.parser
- 解析 ts 后排序
- parse ts
- fromisoformat
- int(r['ts'])
- float(r['ts'])
- key=lambda r: int(r['ts'])
- key=lambda r: float(r['ts'])
Output
Bug:`r['ts']` 是字符串格式的时间戳,直接按字符串排序会使用字典序而非时序,导致跨长度(如 9 位与 10 位 Unix 时间戳)或非零填充日期时顺序错乱。  
最小修复:将字符串转换为数值或日期时间对象再比较。若 `ts` 是 Unix 时间戳字符串,转 `float`;若是 ISO 格式,用 `datetime.fromisoformat` 解析。常见场景为数字字符串,修复如下:

FIX: rows.sort(key=lambda r: float(r['ts']))
challenge-debugging-011 PASS
Suite: debugging · Latency: 23374 ms · Cost: $0.001912 · Finish: stop
Prompt
下面代码在输入包含 0 时会误判为默认值 10。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 limit 赋值行>。

```python
def query(limit=None):
    limit = limit or 10
    return list(range(limit))
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*(?:limit\s*=\s*10\s+if\s+limit\s+is\s+None\s+else\s+limit|limit\s*=\s*limit\s+if\s+limit\s+is\s+not\s+None\s+else\s+10|if\s+limit\s+is\s+None\s*:\s*limit\s*=\s*10)\s*`?
Output
问题在于 `limit = limit or 10` 使用了布尔短路运算:当 `limit` 为 `0`、空字符串等假值时,都会返回默认值 `10`,而不仅仅是 `None`。题目中 `limit=0` 是合法输入,却被误判成 `10`。

最小修复:使用显式 `is None` 判断,只在参数未提供时才使用默认值。

```python
def query(limit=None):
    limit = 10 if limit is None else limit
    return list(range(limit))
```

FIX: limit = 10 if limit is None else limit
challenge-debugging-012 PASS
Suite: debugging · Latency: 18952 ms · Cost: $0.001695 · Finish: stop
Prompt
下面代码期望复制嵌套配置后修改副本,但原配置也被修改。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 copied 赋值行>。

```python
def update(config):
    copied = dict(config)
    copied['db']['host'] = 'localhost'
    return copied
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*copied\s*=\s*(?:copy\.deepcopy\(config\)|__import__\(['\"]copy['\"]\)\.deepcopy\(config\))\s*`?
Output
该 bug 是由于 `dict(config)` 只进行了浅拷贝:顶层字典是新的,但内部嵌套的可变对象(如 `db` 字典)仍与原配置共享同一个引用。因此修改 `copied['db']['host']` 会直接改动原配置的 `db` 对象。

最小修复是对整个配置进行深拷贝。需要引入 `copy` 模块,并使用 `copy.deepcopy` 替代 `dict()`。

FIX: copied = copy.deepcopy(config)
challenge-debugging-013 PASS
Suite: debugging · Latency: 11968 ms · Cost: $0.001150 · Finish: stop
Prompt
下面代码期望找到第一个匹配项,但找不到时会抛 StopIteration。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 return 行>。

```python
def find_user(users, name):
    return next(u for u in users if u['name'] == name)
```
Standard Answer / Scoring Expectation
Expected regex pattern:
\*{0,2}FIX\*{0,2}:\*{0,2}\s*`?\s*return\s+next\(\(u\s+for\s+u\s+in\s+users\s+if\s+u\['name'\]\s*==\s*name\),\s*None\)\s*`?
Output
代码中的 `next()` 在生成器耗尽时会抛出 `StopIteration` 异常,而不是返回一个表示“未找到”的值。最小修复是为 `next()` 提供一个默认值(如 `None`),使其在找不到匹配项时返回该默认值。

FIX: return next((u for u in users if u['name'] == name), None)
challenge-debugging-014 PASS
Suite: debugging · Latency: 27857 ms · Cost: $0.003469 · Finish: stop
Prompt
下面代码期望按请求顺序记录日志,但默认参数导致多次调用共用同一个列表。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的函数定义行>。

```python
def log_request(req, logs=[]):
    logs.append(req['id'])
    return logs
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*(?:```(?:python)?\s*)?`?\s*def\s+log_request\(req,\s*logs=None\)\s*:
Output
代码的 bug 在于使用空列表 `[]` 作为默认参数。Python 只在函数定义时对默认参数求值一次,因此多次不带 `logs` 参数的调用会共享同一个列表对象,导致所有调用都往同一个列表追加,返回结果互相干扰。

最小修复是将默认值改为 `None`,在函数体内再实例化新列表。修复后的函数定义行为:

FIX: ```def log_request(req, logs=None):```
challenge-reasoning-006 PASS
Suite: reasoning · Latency: 7374 ms · Cost: $0.000539 · Finish: stop
Prompt
只回答最终数字:一个队列从左到右是 A,B,C,D,E。依次执行:把第 2 个移到末尾;删除第 3 个;在最前面插入 X;把最后两个反转。最终队列中 C 的位置是第几位?
Standard Answer / Scoring Expectation
Answer: 3
Output
3
challenge-reasoning-007 PASS
Suite: reasoning · Latency: 6638 ms · Cost: $0.000403 · Finish: stop
Prompt
只回答最终数字:某缓存命中率从 60% 提升到 75%。如果总请求数为 800,未命中请求减少了多少个?
Standard Answer / Scoring Expectation
Answer: 120
Output
120
challenge-rag-005 PASS
Suite: rag_long_context · Latency: 3884 ms · Cost: $0.000245 · Finish: stop
Prompt
只根据资料回答。

资料:A 模型在 ability mode 中通过 46/50,成本 0.12 美元;在 efficiency mode 中通过 34/50,成本 0.04 美元。报告建议把 ability mode 用于能力判断,把 efficiency mode 用于成本和稳定性判断。

问题:如果文章讨论“模型真实能力”,应该优先引用哪个模式?如果讨论“低预算可用性”,应该优先引用哪个模式?
Standard Answer / Scoring Expectation
Required phrases: ability mode、efficiency mode、真实能力、低预算
Forbidden phrases: 只看一个模式
Length guidance (diagnostic only): min=n/a, max=180
Output
根据资料,如果讨论“模型真实能力”,应优先引用 ability mode;如果讨论“低预算可用性”,应优先引用 efficiency mode。
challenge-rag-006 PASS
Suite: rag_long_context · Latency: 3783 ms · Cost: $0.000324 · Finish: stop
Prompt
只根据资料回答。

资料:一次失败分析显示,模型输出了 key = int(parts[1]),但测试数据里的 key 是字符串 a、b、c。报告认为这是“擅自补类型假设”,不是 token 截断。

问题:这次失败的根因是什么?
Standard Answer / Scoring Expectation
Required phrases: key
At least one from each group: 字符串 / 类型不匹配;整数 / int;类型假设 / 假设 key 为整数 / 假设 key 是整数 / key 为整数类型
Length guidance (diagnostic only): min=n/a, max=120
Output
根因是模型擅自补充了类型假设(错误假设 key 为整数),而实际测试数据中的 key 是字符串。
challenge-rag-007 PASS
Suite: rag_long_context · Latency: 3186 ms · Cost: $0.000415 · Finish: stop
Prompt
只根据资料回答,不要自行补充。

资料:DracoBench 的 HTML 报告目前展示 Summary、By Suite、Failure Examples 和 Case Details。Failure Examples 中包括 Prompt、Mistake Analysis、Scorer Details 和 Output。资料没有提到图表功能。

问题:报告是否已经支持图表?回答时说明依据。
Standard Answer / Scoring Expectation
Required phrases: 图表、资料
At least one from each group: 提到 / 提及
Forbidden phrases: 已经支持、折线图、柱状图
Length guidance (diagnostic only): min=n/a, max=100
Output
根据资料,报告目前**不支持**图表功能。依据是资料中明确指出“资料没有提到图表功能”,因此当前展示的内容仅包含 Summary、By Suite、Failure Examples 和 Case Details。
challenge-if-004 PASS
Suite: instruction_following · Latency: 16950 ms · Cost: $0.000422 · Finish: stop
Prompt
只输出 JSON 对象。字段 mode 必须是 "ability";字段 limits 必须是对象,包含 max_tokens:4096 和 temperature:0;字段 warnings 必须是正好两个字符串组成的数组。不要 Markdown。
Standard Answer / Scoring Expectation
Expected JSON schema:
{
  "type": "object",
  "required": [
    "mode",
    "limits",
    "warnings"
  ],
  "additionalProperties": false,
  "properties": {
    "mode": {
      "type": "string",
      "const": "ability"
    },
    "limits": {
      "type": "object",
      "required": [
        "max_tokens",
        "temperature"
      ],
      "additionalProperties": false,
      "properties": {
        "max_tokens": {
          "type": "integer",
          "const": 4096
        },
        "temperature": {
          "type": "integer",
          "const": 0
        }
      }
    },
    "warnings": {
      "type": "array",
      "minItems": 2,
      "maxItems": 2,
      "items": {
        "type": "string"
      }
    }
  }
}
Output
{"mode":"ability","limits":{"max_tokens":4096,"temperature":0},"warnings":["This is a simulated warning","Another warning message"]}
challenge-if-005 PASS
Suite: instruction_following · Latency: 5196 ms · Cost: $0.000247 · Finish: stop
Prompt
只输出 Markdown 表格,必须有 3 列:模式、用途、风险。必须包含 ability mode 和 efficiency mode 两行。不能添加表格外说明。
Standard Answer / Scoring Expectation
Expected regex pattern:
^\s*\|\s*模式\s*\|\s*用途\s*\|\s*风险\s*\|\s*\n\s*\|\s*-+\s*\|\s*-+\s*\|\s*-+\s*\|[\s\S]*ability mode[\s\S]*efficiency mode[\s\S]*$
Output
| 模式 | 用途 | 风险 |
|------|------|------|
| ability mode | 最大化模型能力,处理复杂任务 | 可能产生不可控输出,资源消耗高 |
| efficiency mode | 优化资源使用,快速响应常规请求 | 能力受限,可能无法处理复杂需求 |
challenge-zh-writing-003 PASS
Suite: chinese_writing · Latency: 24395 ms · Cost: $0.002998 · Finish: stop
Prompt
写一段不超过 140 个汉字的公众号小结,主题是“为什么要同时展示原题、模型输出和错误解释”。必须包含“原题”“错误解释”“可复查”,不能出现“玄学”。
Standard Answer / Scoring Expectation
Required phrases: 原题、错误解释、可复查
Forbidden phrases: 玄学
Length guidance (diagnostic only): min=n/a, max=140
Output
同时展示原题、模型输出与错误解释,让判断有据可依。原题还原上下文,错误解释点明偏差,三者结合可复查,杜绝主观臆测。透明即信赖。
challenge-reasoning-008 PASS
Suite: reasoning · Latency: 6536 ms · Cost: $0.000489 · Finish: stop
Prompt
只回答最终数字:变量初始为 x=2, y=5, z=1。若 x<y,交换 x 和 y;然后令 z=z+x-y;若 z 为偶数,令 y=y+z,否则令 x=x+z。最终 x+y+z 等于多少?
Standard Answer / Scoring Expectation
Answer: 15
Output
15
challenge-reasoning-009 PASS
Suite: reasoning · Latency: 29463 ms · Cost: $0.002238 · Finish: stop
Prompt
只回答一个字母:任务 A、B、C、D、E、F 排列。C 必须紧挨在 A 后面;B 必须在 D 前;D 必须在 F 前;F 必须最后;E 不能第一。在所有满足条件的排列中字典序最小的排列,第三个任务是谁?
Standard Answer / Scoring Expectation
Answer: B
Output
B
challenge-reasoning-010 PASS
Suite: reasoning · Latency: 7116 ms · Cost: $0.000655 · Finish: stop
Prompt
只回答“可满足”或“不可满足”:布尔变量 x、y、z 满足:x 和 y 恰好一个为真;如果 x 为真则 z 为真;如果 y 为真则 z 为假;z 为真。是否存在赋值满足全部约束?
Standard Answer / Scoring Expectation
Answer: 可满足
Output
可满足
challenge-reasoning-011 PASS
Suite: reasoning · Latency: 3748 ms · Cost: $0.000341 · Finish: stop
Prompt
只回答最终数字:列表 [2,4,6,8] 中每个数先减去它的位置编号(从 1 开始),然后删除所有奇数,再把剩余数平方,最后求和。结果是多少?
Standard Answer / Scoring Expectation
Answer: 20
Output
20
challenge-reasoning-012 FAIL
Suite: reasoning · Latency: 1839 ms · Cost: $0.000132 · Finish: stop
Prompt
只回答最终数字:一个 5 位二进制数 10110 先循环右移 1 位,再与 00111 做异或,最后转成十进制。结果是多少?
Standard Answer / Scoring Expectation
Answer: 12
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `13` 与标准答案 `12` 不一致。10110 循环右移 1 位得到 01011;01011 XOR 00111 = 01100,十进制为 12。模型输出 `13`,根因是循环移位或 XOR 的二进制位计算错。
Output
13
challenge-reasoning-013 PASS
Suite: reasoning · Latency: 3218 ms · Cost: $0.000587 · Finish: stop
Prompt
只回答一个字母:模型 A 通过 18 题、成本 0.06;模型 B 通过 20 题、成本 0.10;模型 C 通过 16 题、成本 0.04。按“通过题数/成本”最高选择,应该选哪个模型?
Standard Answer / Scoring Expectation
Answer: C
Output
C
challenge-reasoning-014 PASS
Suite: reasoning · Latency: 6592 ms · Cost: $0.000315 · Finish: stop
Prompt
只回答最终数字:同一套 100 道题中,失败题数从 12 降到 7。错误率降低了多少个百分点?
Standard Answer / Scoring Expectation
Answer: 5
Output
5
challenge-reasoning-015 PASS
Suite: reasoning · Latency: 4641 ms · Cost: $0.000296 · Finish: stop
Prompt
只回答最终数字:集合 S 初始为 {a,b,c,d}。删除字母序在 c 之前的元素;加入 e 和 b;再删除所有元音字母。最终集合有几个元素?
Standard Answer / Scoring Expectation
Answer: 3
Output
3
challenge-reasoning-016 PASS
Suite: reasoning · Latency: 5024 ms · Cost: $0.000113 · Finish: stop
Prompt
只回答最终数字:3x3 矩阵按行是 1 2 3 / 4 5 6 / 7 8 9。顺时针旋转 90 度后,第二行元素之和是多少?
Standard Answer / Scoring Expectation
Answer: 15
Output
15
challenge-reasoning-017 PASS
Suite: reasoning · Latency: 3923 ms · Cost: $0.000261 · Finish: stop
Prompt
只回答最终数字:依赖关系为 a 无依赖;b 依赖 a;c 依赖 a;d 依赖 b 和 c;e 依赖 b;f 依赖 d 和 e;g 依赖 a。按可并行执行的拓扑层划分,第二层有几个任务?
Standard Answer / Scoring Expectation
Answer: 3
Output
3
challenge-reasoning-018 PASS
Suite: reasoning · Latency: 3834 ms · Cost: $0.000275 · Finish: stop
Prompt
只回答星期几:第 0 天是星期二。每 7 天循环一次。第 17 天是星期几?
Standard Answer / Scoring Expectation
Answer: 星期五
Output
星期五
challenge-reasoning-019 FAIL
Suite: reasoning · Latency: 1152 ms · Cost: $0.000094 · Finish: stop
Prompt
只回答最终数字:用 A、B、C 组成长度为 3 的字符串,要求恰好包含一个 A,并且最后一个字符不能是 C。满足条件的字符串有多少个?
Standard Answer / Scoring Expectation
Answer: 8
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `4` 与标准答案 `8` 不一致。恰好一个 A:A 在末位时前两位可为 B/C 共 4 种;A 在第 1 或第 2 位时末位只能是 B,各 2 种;总数 8。模型输出 `4`,说明它漏算了某些 A 的位置,或错误处理了“最后一个字符不能是 C”的限制。
Output
4
challenge-reasoning-020 FAIL
Suite: reasoning · Latency: 927 ms · Cost: $0.000157 · Finish: stop
Prompt
只回答最终数字:栈操作从空栈开始。push n 表示入栈;dup 复制栈顶;add 弹出两个数并压入它们的和;swap 交换栈顶两个数;sub 先弹出 x 再弹出 y,并压入 y-x。依次执行:push 2, push 3, dup, add, push 4, swap, sub。最终栈顶是多少?
Standard Answer / Scoring Expectation
Answer: -2
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `4` 与标准答案 `-2` 不一致。栈执行到 `push 4, swap` 后为 `[2,4,6]`;`sub` 先弹 x=6,再弹 y=4,压入 y-x=-2。模型输出 `4`,根因是 `sub` 的出栈顺序或 `swap` 后栈顶理解错。
Output
4
challenge-reasoning-021 PASS
Suite: reasoning · Latency: 7556 ms · Cost: $0.000697 · Finish: stop
Prompt
只回答最终数字:三个队列 Q1、Q2、Q3 初始长度分别为 2、1、0。每一轮先从所有非空队列各处理 1 个元素,然后向 Q3 加入 2 个元素。执行 3 轮后,三个队列总长度是多少?
Standard Answer / Scoring Expectation
Answer: 4
Output
4
challenge-reasoning-022 FAIL
Suite: reasoning · Latency: 2084 ms · Cost: $0.000110 · Finish: stop
Prompt
只回答最终数字:映射初始为 {a:1, b:2}。依次执行:设置 c=a+b;设置 a=c-b;删除 b;设置 d=a+c。最终所有 value 之和是多少?
Standard Answer / Scoring Expectation
Answer: 8
Mistake Analysis
Failure type: answer_mismatch
模型最终答案 `10` 与标准答案 `8` 不一致。映射更新后 c=3,a=c-b=1,删除 b,再设置 d=a+c=4;最终 value 为 1、3、4,总和 8。模型输出 `10`,说明它漏做了删除 b、错误更新 a,或没有按顺序使用最新映射值。
Output
10
challenge-reasoning-023 PASS
Suite: reasoning · Latency: 8653 ms · Cost: $0.000974 · Finish: stop
Prompt
只回答“甲”“乙”或“丙”:甲说“乙说的是真话”;乙说“丙说的是假话”;丙说“甲说的是假话”。如果恰好一人说真话,说真话的人是谁?
Standard Answer / Scoring Expectation
Answer: 丙
Output
challenge-reasoning-024 PASS
Suite: reasoning · Latency: 2934 ms · Cost: $0.000453 · Finish: stop
Prompt
只回答一个字母:综合分 = 通过率百分数 - 成本乘以 10。模型 A 通过率 92%、成本 0.20;模型 B 通过率 88%、成本 0.05;模型 C 通过率 90%、成本 0.10。综合分最高的是哪个模型?
Standard Answer / Scoring Expectation
Answer: A
Output
A
challenge-reasoning-025 PASS
Suite: reasoning · Latency: 4940 ms · Cost: $0.000248 · Finish: stop
Prompt
只回答最终三位数:一个三位数的百位为 a、十位为 b、个位为 c。已知 a+b+c=13,a=c+1,b=2c。这个三位数是多少?
Standard Answer / Scoring Expectation
Answer: 463
Output
463
challenge-coding-015 PASS
Suite: coding · Latency: 32800 ms · Cost: $0.002447 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(line: str) -> list[str],解析一行简化 CSV:逗号分隔;字段可以用双引号包裹;引号内逗号保留;引号内两个连续双引号表示一个双引号;空字段保留;空格是普通字符,不要自动 trim。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('a,"b,c",d') == ['a', 'b,c', 'd']
assert solution.solve('"a""b",,x') == ['a"b', '', 'x']
assert solution.solve('  a ," b " ') == ['  a ', ' b  ']
Output
```python
def solve(line: str) -> list[str]:
    fields = []
    current = []
    in_quotes = False
    i = 0
    n = len(line)
    while i < n:
        ch = line[i]
        if not in_quotes:
            if ch == '"':
                if len(current) == 0:
                    in_quotes = True
                else:
                    current.append('"')
            elif ch == ',':
                fields.append(''.join(current))
                current = []
            else:
                current.append(ch)
        else:
            if ch == '"':
                if i + 1 < n and line[i + 1] == '"':
                    current.append('"')
                    i += 1
                else:
                    in_quotes = False
            else:
                current.append(ch)
        i += 1
    fields.append(''.join(current))
    return fields
```
challenge-coding-016 PASS
Suite: coding · Latency: 8258 ms · Cost: $0.000685 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(intervals: list[tuple[int, int]]) -> list[tuple[int, int]]。intervals 是整数闭区间,先按起点排序;重叠或端点相邻的区间要合并,例如 [1,2] 和 [3,4] 合并为 [1,4]。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve([(5,7),(1,2),(3,4),(10,10)]) == [(1,7),(10,10)]
assert solution.solve([(1,1),(3,3)]) == [(1,1),(3,3)]
assert solution.solve([]) == []
Output
```python
def solve(intervals: list[tuple[int, int]]) -> list[tuple[int, int]]:
    if not intervals:
        return []
    intervals.sort(key=lambda x: x[0])
    merged = []
    for start, end in intervals:
        if not merged:
            merged.append([start, end])
        else:
            prev_start, prev_end = merged[-1]
            if start <= prev_end + 1:
                merged[-1][1] = max(prev_end, end)
            else:
                merged.append([start, end])
    return [tuple(x) for x in merged]
```
challenge-coding-017 PASS
Suite: coding · Latency: 19679 ms · Cost: $0.001900 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(events: list[tuple[str, int]], window: int, limit: int) -> list[bool],模拟按用户限流。events 按时间非降序排列。某用户在当前事件时间 ts 的窗口 (ts-window, ts] 内,已放行事件数少于 limit 才放行;被拒绝的事件不计入窗口。
Standard Answer / Scoring Expectation
Reference tests:
events=[('a',1),('a',2),('a',3),('a',4),('a',8)]
assert solution.solve(events, 5, 2) == [True, True, False, False, True]
assert solution.solve([('x',10),('x',11),('x',16)], 5, 1) == [True, False, True]
Output
```python
from collections import defaultdict, deque

def solve(events, window, limit):
    user_queues = defaultdict(deque)
    result = []
    for user, ts in events:
        q = user_queues[user]
        while q and q[0] <= ts - window:
            q.popleft()
        if len(q) < limit:
            q.append(ts)
            result.append(True)
        else:
            result.append(False)
    return result
```
challenge-coding-018 PASS
Suite: coding · Latency: 11449 ms · Cost: $0.000865 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(path: str) -> str,规范化绝对 Unix 路径:处理重复斜杠、.、..;.. 在根目录时仍留在根目录;返回结果必须以 / 开头且除根目录外不能以 / 结尾。不要使用 os.path。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('/a//b/./c/../') == '/a/b'
assert solution.solve('/../../x') == '/x'
assert solution.solve('/') == '/'
Output
```python
def solve(path: str) -> str:
    parts = path.split('/')
    stack = []
    for part in parts:
        if part == '' or part == '.':
            continue
        elif part == '..':
            if stack:
                stack.pop()
        else:
            stack.append(part)
    return '/' + '/'.join(stack)
```
challenge-coding-019 PASS
Suite: coding · Latency: 7630 ms · Cost: $0.001200 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(words: list[str]) -> list[list[str]],按变位词分组。大小写敏感;组内保持输入顺序;组的顺序按该组第一个单词在输入中出现的位置。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve(['eat','tea','tan','ate','nat','bat']) == [['eat','tea','ate'], ['tan','nat'], ['bat']]
assert solution.solve(['b','B','bb']) == [['b'], ['B'], ['bb']]
Output
```python
def solve(words):
    groups = {}
    for w in words:
        key = ''.join(sorted(w))
        if key not in groups:
            groups[key] = []
        groups[key].append(w)
    return list(groups.values())
```
challenge-coding-020 PASS
Suite: coding · Latency: 22798 ms · Cost: $0.004366 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(text: str) -> dict,解析 Markdown front matter。只有第一行正好是 --- 时才解析,直到下一行 --- 结束;每行 key: value,key 和 value 两侧 trim;形如 [a, b] 的 value 返回字符串列表;其他 value 返回字符串。没有完整 front matter 返回 {}。
Standard Answer / Scoring Expectation
Reference tests:
text='---\ntitle: Test\ntags: [ai, bench,  v0]\ndraft: false\n---\nbody'
assert solution.solve(text) == {'title':'Test','tags':['ai','bench','v0'],'draft':'false'}
assert solution.solve('hello\n---\na: b') == {}
assert solution.solve('---\na: 1') == {}
Output
```python
def solve(text: str) -> dict:
    lines = text.splitlines()
    if not lines or lines[0].strip() != '---':
        return {}
    
    end_index = -1
    for i in range(1, len(lines)):
        if lines[i].strip() == '---':
            end_index = i
            break
    if end_index == -1:
        return {}
    
    result = {}
    for i in range(1, end_index):
        line = lines[i].strip()
        if not line:
            continue
        if ':' not in line:
            continue
        key, _, value = line.partition(':')
        key = key.strip()
        value = value.strip()
        if value.startswith('[') and value.endswith(']'):
            inner = value[1:-1].strip()
            if inner == '':
                result[key] = []
            else:
                items = [item.strip() for item in inner.split(',')]
                result[key] = items
        else:
            result[key] = value
    return result
```
challenge-coding-021 PASS
Suite: coding · Latency: 11027 ms · Cost: $0.000998 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(items: list[str], k: int) -> list[str],返回出现次数最高的前 k 个元素;次数相同按第一次出现的先后排序;k 大于不同元素数量时返回全部。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve(['b','a','b','c','a','b'], 2) == ['b','a']
assert solution.solve(['x','y','z','y','z','x'], 2) == ['x','y']
assert solution.solve(['a'], 5) == ['a']
Output
```python
from collections import Counter

def solve(items: list[str], k: int) -> list[str]:
    freq = Counter(items)
    first_index = {}
    for idx, item in enumerate(items):
        if item not in first_index:
            first_index[item] = idx
    sorted_items = sorted(freq.keys(), key=lambda x: (-freq[x], first_index[x]))
    return sorted_items[:k]
```
challenge-coding-022 PASS
Suite: coding · Latency: 37570 ms · Cost: $0.003337 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(config: dict, overrides: dict[str, object]) -> dict。overrides 的 key 是点号路径;值为 None 表示删除该路径的叶子 key;其他值写入路径,必要时创建中间 dict;不能修改输入 config。
Standard Answer / Scoring Expectation
Reference tests:
base={'db':{'host':'old','port':5432},'feature':{'x':1}}
overrides={'db.host':'new','feature.x':None,'api.timeout':30}
res=solution.solve(base, overrides)
assert res == {'db':{'host':'new','port':5432},'feature':{},'api':{'timeout':30}}
assert base == {'db':{'host':'old','port':5432},'feature':{'x':1}}
assert solution.solve({'a':1}, {'a.b':2}) == {'a': {'b': 2}}
Output
```python
import copy

def solve(config: dict, overrides: dict[str, object]) -> dict:
    res = copy.deepcopy(config)
    for path, val in overrides.items():
        parts = path.split('.')
        if val is None:
            # 删除路径
            d = res
            for i, key in enumerate(parts):
                if not isinstance(d, dict):
                    break
                if i == len(parts) - 1:
                    if key in d:
                        del d[key]
                    break
                if key not in d:
                    break
                d = d[key]
        else:
            # 写入路径
            d = res
            parent = None
            last_key = None
            for i, key in enumerate(parts):
                if not isinstance(d, dict):
                    # 当前节点不是字典,用新字典替换父级中的引用
                    new_dict = {}
                    if parent is not None:
                        parent[last_key] = new_dict
                    d = new_dict
                if i == len(parts) - 1:
                    d[key] = val
                else:
                    if key not in d or not isinstance(d[key], dict):
                        d[key] = {}
                    parent = d
                    last_key = key
                    d = d[key]
    return res
```
challenge-coding-023 PASS
Suite: coding · Latency: 25669 ms · Cost: $0.003969 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(query: str) -> dict[str, list[str]],解析 URL query string。& 分隔参数;没有 = 的参数值为空字符串;+ 表示空格;%XX 需要按 UTF-8 百分号解码;同名 key 保留所有值的列表。可以使用标准库。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('a=1&b=two+words&a=3') == {'a':['1','3'], 'b':['two words']} 
assert solution.solve('empty=&flag&x=a%2Bb') == {'empty':[''], 'flag':[''], 'x':['a+b']} 
assert solution.solve('') == {}
Output
```python
def solve(query: str) -> dict[str, list[str]]:
    from urllib.parse import parse_qs
    return parse_qs(query, keep_blank_values=True)
```
challenge-coding-024 PASS
Suite: coding · Latency: 20466 ms · Cost: $0.002146 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(html: str) -> bool,校验简化 HTML 标签是否配对。标签形如 <a>、</a>、<br/>,标签名只含小写字母;自闭合标签不入栈;普通文本忽略。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve('<div><br/><p>x</p></div>') is True
assert solution.solve('<a><b></a></b>') is False
assert solution.solve('text<a><b/></a>') is True
Output
```python
def solve(html: str) -> bool:
    stack = []
    i = 0
    n = len(html)
    while i < n:
        if html[i] != '<':
            i += 1
            continue
        j = i + 1
        while j < n and html[j] != '>':
            j += 1
        if j == n:
            break
        tag = html[i+1:j]
        i = j + 1
        if tag.startswith('/'):
            name = tag[1:]
            if not name.islower():
                return False
            if not stack or stack.pop() != name:
                return False
        elif tag.endswith('/'):
            continue
        else:
            if not tag.islower():
                return False
            stack.append(tag)
    return len(stack) == 0
```
challenge-coding-025 PASS
Suite: coding · Latency: 12179 ms · Cost: $0.001164 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(grid: list[str]) -> int。grid 中 S 是起点,E 是终点,# 是墙,. 可走。每步上下左右移动一格,返回从 S 到 E 的最短步数;不可达返回 -1。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve(['S..','##.','..E']) == 4
assert solution.solve(['S#','##','E.']) == -1
assert solution.solve(['SE']) == 1
Output
```python
from collections import deque

def solve(grid: list[str]) -> int:
    if not grid:
        return -1
    rows, cols = len(grid), len(grid[0])
    start = end = None
    for r in range(rows):
        for c in range(cols):
            if grid[r][c] == 'S':
                start = (r, c)
            elif grid[r][c] == 'E':
                end = (r, c)
    if not start or not end:
        return -1
    
    sr, sc = start
    er, ec = end
    visited = [[False] * cols for _ in range(rows)]
    q = deque()
    q.append((sr, sc, 0))
    visited[sr][sc] = True
    
    while q:
        r, c, d = q.popleft()
        if r == er and c == ec:
            return d
        for dr, dc in ((0, 1), (0, -1), (1, 0), (-1, 0)):
            nr, nc = r + dr, c + dc
            if 0 <= nr < rows and 0 <= nc < cols and not visited[nr][nc] and grid[nr][nc] != '#':
                visited[nr][nc] = True
                q.append((nr, nc, d + 1))
    return -1
```
challenge-coding-026 PASS
Suite: coding · Latency: 67624 ms · Cost: $0.005086 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(nums: list[int], k: int) -> list[float],返回每个长度为 k 的滑动窗口中位数。k 为奇数时返回中间值;k 为偶数时返回两个中间值平均数。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve([1,3,-1,-3,5,3,6,7], 3) == [1, -1, -1, 3, 5, 6]
assert solution.solve([1,2,3,4], 2) == [1.5, 2.5, 3.5]
Output
```python
from heapq import heappush, heappop
from collections import defaultdict
from typing import List

def solve(nums: List[int], k: int) -> List[float]:
    max_heap = []   # 负数
    min_heap = []   # 正数
    delayed = defaultdict(int)
    balance = 0

    def prune():
        while max_heap and delayed.get(-max_heap[0], 0) > 0:
            delayed[-max_heap[0]] -= 1
            heappop(max_heap)
        while min_heap and delayed.get(min_heap[0], 0) > 0:
            delayed[min_heap[0]] -= 1
            heappop(min_heap)

    def rebalance():
        nonlocal balance
        prune()
        while balance > 1:
            val = -heappop(max_heap)
            heappush(min_heap, val)
            balance -= 2
            prune()
        while balance < 0:
            val = heappop(min_heap)
            heappush(max_heap, -val)
            balance += 2
            prune()

    def add(num: int):
        nonlocal balance
        if not max_heap or num <= -max_heap[0]:
            heappush(max_heap, -num)
            balance += 1
        else:
            heappush(min_heap, num)
            balance -= 1
        rebalance()

    def remove(num: int):
        nonlocal balance
        delayed[num] += 1
        if max_heap and num <= -max_heap[0]:
            balance -= 1
        else:
            balance += 1
        prune()
        rebalance()

    def get_median() -> float:
        prune()
        if k % 2 == 1:
            return float(-max_heap[0])
        else:
            return (-max_heap[0] + min_heap[0]) / 2.0

    res = []
    for i in range(k):
        add(nums[i])
    res.append(get_median())

    for i in range(k, len(nums)):
        remove(nums[i - k])
        add(nums[i])
        res.append(get_median())

    return res
```
challenge-coding-027 PASS
Suite: coding · Latency: 18914 ms · Cost: $0.001788 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(versions: list[str]) -> list[str],按简化语义版本排序。版本为 major.minor.patch 或 major.minor.patch-label;major/minor/patch 按数字比较;同一数字版本下,带 label 的预发布版本低于正式版本;label 按字典序比较。
Standard Answer / Scoring Expectation
Reference tests:
assert solution.solve(['1.0.0','1.0.0-alpha','1.0.1','1.0.0-beta','0.9.9']) == ['0.9.9','1.0.0-alpha','1.0.0-beta','1.0.0','1.0.1']
assert solution.solve(['1.0.10','1.0.2']) == ['1.0.2','1.0.10']
Output
```python
def solve(versions):
    def key(v):
        if '-' in v:
            base, label = v.split('-', 1)
            pre = 0
        else:
            base, label = v, ''
            pre = 1
        major, minor, patch = map(int, base.split('.'))
        return (major, minor, patch, pre, label)
    return sorted(versions, key=key)
```
challenge-coding-028 PASS
Suite: coding · Latency: 19698 ms · Cost: $0.001394 · Finish: stop
Prompt
只输出 Python 代码,不要解释。实现 solve(deps: dict[str, list[str]], changed: list[str]) -> list[str]。deps 表示 package -> 直接依赖。返回所有 changed 包,以及直接或间接依赖 changed 包的包,按字典序排序;只出现在依赖列表中的包也要能作为 changed 包返回。
Standard Answer / Scoring Expectation
Reference tests:
deps={'app':['lib','ui'],'ui':['core'],'lib':['core'],'core':[],'docs':[]}
assert solution.solve(deps, ['core']) == ['app','core','lib','ui']
assert solution.solve({'a':['x']}, ['x']) == ['a','x']
assert solution.solve({'a':['b'], 'b':[]}, ['a']) == ['a']
Output
```python
from collections import defaultdict, deque

def solve(deps: dict[str, list[str]], changed: list[str]) -> list[str]:
    rev_graph = defaultdict(list)
    all_packages = set(deps.keys())
    for p, deps_list in deps.items():
        for dep in deps_list:
            rev_graph[dep].append(p)
            all_packages.add(dep)
    
    result_set = set(changed)
    queue = deque(changed)
    while queue:
        current = queue.popleft()
        for dependent in rev_graph.get(current, []):
            if dependent not in result_set:
                result_set.add(dependent)
                queue.append(dependent)
    return sorted(result_set)
```
challenge-rag-008 PASS
Suite: rag_long_context · Latency: 4698 ms · Cost: $0.000358 · Finish: stop
Prompt
只根据资料回答。

资料 A:早期草案说 v0.3 只新增 20 道题。
资料 B:2026-06-16 的确认方案是 v0.3-challenge100,在现有 50 题基础上新增 50 道题。
资料 C:新增题应先生成审题 HTML,确认后再跑模型,不要立即消耗 API。

问题:下一步应该新增多少题?是否应该立刻跑模型?
Standard Answer / Scoring Expectation
Required phrases: 50、审题
At least one from each group: 不跑 / 不要立刻 / 先不跑 / 不应立刻 / 不应该立刻 / 不应立即 / 不应该立即 / 不应立刻跑 / 不应该立刻跑 / 不应立即跑 / 不应该立即跑
Length guidance (diagnostic only): min=n/a, max=160
Output
根据资料B和资料C,下一步应新增50题,且不应立刻跑模型,应先生成审题HTML、确认后再跑模型。
challenge-rag-009 PASS
Suite: rag_long_context · Latency: 2756 ms · Cost: $0.000179 · Finish: stop
Prompt
只根据资料回答,不要自行补充。

资料:报告展示 pass_rate、avg_latency_ms、total_cost、reasoning_tokens、失败样例和逐题明细。资料没有包含用户满意度调查,也没有包含模型训练数据来源。

问题:能否根据这份报告判断用户满意度?
Standard Answer / Scoring Expectation
Required phrases: 不能、用户满意度
At least one from each group: 没有包含 / 没有提供 / 资料没有 / 未包含
Forbidden phrases: 可以判断
Length guidance (diagnostic only): min=n/a, max=120
Output
不能。因为资料中没有包含用户满意度调查。
challenge-rag-010 PASS
Suite: rag_long_context · Latency: 2591 ms · Cost: $0.000382 · Finish: stop
Prompt
只根据资料回答。

资料:模型 A 通过 48/50,平均延迟 20 秒,成本 0.20 美元,没有超时失败。模型 B 通过 44/50,平均延迟 4 秒,成本 0.05 美元,没有超时失败。模型 C 通过 46/50,平均延迟 9 秒,成本 0.04 美元,但有 3 次 API 超时。

问题:如果要选低延迟且稳定的生产摘要模型,资料更支持选择哪个?
Standard Answer / Scoring Expectation
Required phrases: B、延迟
At least one from each group: 没有超时 / 无超时
Forbidden phrases: 选择 A、选择 C
Length guidance (diagnostic only): min=n/a, max=160
Output
根据资料,模型 B 更符合“低延迟且稳定”的要求。它的平均延迟最低(4 秒),没有超时失败,且成本较低。虽然模型 A 通过率更高且同样无超时,但延迟是模型 B 的 5 倍。模型 C 有 3 次超时,稳定性不足。
challenge-rag-011 PASS
Suite: rag_long_context · Latency: 3856 ms · Cost: $0.000770 · Finish: stop
Prompt
只根据资料回答。

资料:DracoBench 当前 scoring policy 中,text_rules 的 max_chars/min_chars 只作为诊断信息记录,length_scored 为 false。缺少 required、required_any 或出现 forbidden 才会导致失败。

问题:如果答案超过 max_chars,但 required 都满足且没有 forbidden,会因为长度直接扣分吗?
Standard Answer / Scoring Expectation
Required phrases: 诊断
At least one from each group: 不扣分 / 不会 / 不会因长度 / 不会因此被扣分 / 不会直接导致扣分 / 不会导致扣分 / 不会导致失败或扣分;length_scored / 长度
Forbidden phrases: 直接失败、必须重跑
Length guidance (diagnostic only): min=n/a, max=140
Output
不会。根据资料,`max_chars/min_chars` 仅作为诊断信息记录,且 `length_scored` 为 `false`,只有缺少 `required`、`required_any` 或出现 `forbidden` 才会导致失败。因此答案超过 `max_chars` 但满足其他条件时,不会因长度而扣分。
challenge-rag-012 PASS
Suite: rag_long_context · Latency: 1238 ms · Cost: $0.000212 · Finish: stop
Prompt
只根据资料回答。

资料 A:某模型原始结果为 45/50。
资料 B:修正一个同义表达评分规则后,rescored 结果为 46/50。
资料 C:总览 index 使用 rescored JSONL 作为展示结果。

问题:写文章引用总览结果时,应写 45/50 还是 46/50?
Standard Answer / Scoring Expectation
Required phrases: 46/50
Forbidden phrases: 45/50 更合适、原始结果为准
Length guidance (diagnostic only): min=n/a, max=140
Output
根据资料 C,总览 index 使用 rescored JSONL 作为展示结果,因此应写 **46/50**。
challenge-rag-013 PASS
Suite: rag_long_context · Latency: 11809 ms · Cost: $0.000211 · Finish: stop
Prompt
只根据资料回答。

资料:为了复现一次 benchmark,记录中包含 model、case_id、prompt_hash、parameters、scorer details、output、latency_ms 和 usage。记录不包含 chain of thought,也不包含训练数据。

问题:复现评测主要应该依赖哪些记录字段?
Standard Answer / Scoring Expectation
Required phrases: model、prompt_hash、parameters、scorer
Forbidden phrases: chain of thought、训练数据
Length guidance (diagnostic only): min=n/a, max=200
Output
复现评测主要应该依赖以下记录字段:model、case_id、prompt_hash、parameters、scorer details、output、latency_ms 和 usage。
challenge-rag-014 PASS
Suite: rag_long_context · Latency: 3139 ms · Cost: $0.000606 · Finish: stop
Prompt
只根据资料回答。

资料 A:早期 ability mode 使用 4096 max_tokens。
资料 B:后来为了公平,ability mode 统一放宽到 16384 max_tokens。
资料 C:当前总览页只展示 v0.2-challenge50 且 ability16384 的结果。

问题:当前总览页对应的 token limit 是多少?
Standard Answer / Scoring Expectation
Required phrases: 16384
Forbidden phrases: 4096
Length guidance (diagnostic only): min=n/a, max=100
Output
16384
challenge-rag-015 PASS
Suite: rag_long_context · Latency: 7181 ms · Cost: $0.001094 · Finish: stop
Prompt
只根据资料回答。

资料:coding-004 的失败是代码运行时 ValueError,根因是把字符串 key 强转 int。rag-006 的失败曾经是规则没有把 int 类型视作“整数”的同义表达,后来通过人工复查修正规则。

问题:哪类失败更需要人工复查评分规则?回答时也说明 coding-004 是否属于这种情况。
Standard Answer / Scoring Expectation
Required phrases: 人工复查、coding-004
At least one from each group: rag-006 / 规则 / 评分规则 / 同义表达;不属于 / 不是 / 不需要
Length guidance (diagnostic only): min=n/a, max=180
Output
根据资料,rag-006 这类失败更需要人工复查评分规则,因为其失败原因是规则未能识别“int 类型”与“整数”的同义表达,后来通过人工复查才修正了规则。coding-004 不属于这种情况,它的失败是代码运行时 ValueError,根因是强制类型转换,属于代码执行错误,不涉及评分规则。
challenge-rag-016 PASS
Suite: rag_long_context · Latency: 6044 ms · Cost: $0.000487 · Finish: stop
Prompt
只根据资料回答。

资料:usage 字段包含 prompt_tokens、completion_tokens、reasoning_tokens 和 cost。报告没有供应商真实利润率,也没有供应商内部成本。

问题:能否从 usage 字段判断供应商利润率?
Standard Answer / Scoring Expectation
Required phrases: 不能、利润率
At least one from each group: 不包含 / 没有
Forbidden phrases: 可以判断
Length guidance (diagnostic only): min=n/a, max=120
Output
不能。资料明确指出,报告中没有供应商真实利润率和内部成本信息,仅凭 usage 字段中的 token 用量和费用数据无法判断利润率。
challenge-rag-017 PASS
Suite: rag_long_context · Latency: 6072 ms · Cost: $0.001141 · Finish: stop
Prompt
只根据资料回答。

资料:当前 index 页只显示最后这版 50 道题的 v0.2-challenge50 结果,并且 token limit 都统一为 ability16384。之前的版本和 ability4096 结果不显示在 index 页。

问题:index 页是否应该展示旧版本结果?当前展示范围是什么?
Standard Answer / Scoring Expectation
Required phrases: v0.2-challenge50、ability16384
At least one from each group: 不应该 / 不展示 / 未展示 / 不显示 / 均不显示 / 不应展示;旧版本 / 之前的版本
Length guidance (diagnostic only): min=n/a, max=160
Output
根据资料,当前 index 页**只显示**最后这版 50 道题的 v0.2-challenge50 结果,token limit 统一为 ability16384。之前的版本和 ability4096 结果均**不显示**在 index 页。  

资料未提及“是否应该展示旧版本结果”,仅说明了**当前展示范围**:仅限 v0.2-challenge50 版本的结果。
challenge-rag-018 PASS
Suite: rag_long_context · Latency: 2014 ms · Cost: $0.000198 · Finish: stop
Prompt
只根据资料回答。

资料:某 coding 题中,模型响应的 finish_reason 为 length,output 为空,测试报错为 module has no attribute solve。报告认为这不是算法逻辑错误,而是输出被截断后没有形成可执行函数。

问题:这次失败应如何归因?
Standard Answer / Scoring Expectation
Required phrases: 输出
At least one from each group: 截断 / length / token
Length guidance (diagnostic only): min=n/a, max=140
Output
根据资料,这次失败应归因于**输出被截断**,导致没有形成可执行函数,而非算法逻辑错误。
challenge-debugging-015 PASS
Suite: debugging · Latency: 5974 ms · Cost: $0.000377 · Finish: stop
Prompt
下面代码期望 funcs[0]()、funcs[1]()、funcs[2]() 分别返回 0、1、2,但实际都会返回 2。请指出根因,并给出最小修复。最后单独一行写 FIX: <修复后的 append 行>。

```python
funcs = []
for i in range(3):
    funcs.append(lambda: i)
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*funcs\.append\(lambda\s+i=i\s*:\s*i\)\s*`?
Output
根本原因是 Python 的闭包延迟绑定:lambda 中的 `i` 捕获的是变量本身而非其值,循环结束后 `i` 为 2,所有 lambda 都引用同一个 `i`。

最小修复是让 lambda 在定义时立即捕获当前值,可通过默认参数实现:

```python
funcs.append(lambda i=i: i)
```

FIX: funcs.append(lambda i=i: i)
challenge-debugging-016 PASS
Suite: debugging · Latency: 11588 ms · Cost: $0.001237 · Finish: stop
Prompt
下面 context manager 期望异常继续向外抛出,但实际异常被吞掉。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 return 行>。

```python
class Span:
    def __enter__(self):
        return self
    def __exit__(self, exc_type, exc, tb):
        return True
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*return(?:\s+False|\s+None)?\s*`?
Output
在 `context manager` 中,`__exit__` 返回 `True` 会吞掉异常,阻止其向外抛出;若期望异常继续传播,应返回 `False`(或 `None`)。  
最小修复:将 `return True` 改为 `return False`。

FIX: return False
challenge-debugging-017 PASS
Suite: debugging · Latency: 1678 ms · Cost: $0.000251 · Finish: stop
Prompt
下面代码期望每个 Bag 实例都有独立列表,但不同实例会共享 items。请指出 bug,并给出最小修复。最后单独一行写 FIX: <新增到 __init__ 中的赋值行>。

```python
class Bag:
    items = []
    def add(self, x):
        self.items.append(x)
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*self\.items\s*=\s*\[\]\s*`?
Output
Bug: `items = []` 是类属性,所有实例共享同一个列表。  
最小修复:在 `__init__` 中为每个实例创建独立的列表。

FIX: `self.items = []`
challenge-debugging-018 PASS
Suite: debugging · Latency: 10736 ms · Cost: $0.001890 · Finish: stop
Prompt
下面代码期望每次不传 ts 时使用当前时间,但默认时间只会在函数定义时计算一次。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的函数定义行>。

```python
from datetime import datetime

def mark(ts=datetime.utcnow()):
    return ts.isoformat()
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*def\s+mark\(ts=None\)\s*:
Output
默认参数值在函数定义时被求值并固化,因此 `ts=datetime.utcnow()` 仅在 `def` 语句执行时调用一次,之后每次无参调用 `mark()` 都会得到定义时刻的时间,而不是调用时的当前时间。

最小修复:将默认值改为 `None`,并在函数体内重新获取当前时间。

修复后的函数定义行:

FIX: def mark(ts=None):
challenge-debugging-019 PASS
Suite: debugging · Latency: 4703 ms · Cost: $0.000235 · Finish: stop
Prompt
下面代码期望返回小写字符串,但实际返回的是方法对象。请指出 bug,并给出最小修复。最后单独一行写 FIX: <修复后的 return 行>。

```python
def normalize(s):
    return s.strip().lower
```
Standard Answer / Scoring Expectation
Expected regex pattern:
FIX:\s*`?\s*return\s+s\.strip\(\)\.lower\(\)\s*`?
Output
代码中 `lower` 后面缺少了调用括号 `()`,所以返回的是方法对象而不是调用结果。

修复方法是为 `lower` 添加括号。

FIX: return s.strip().lower()
challenge-if-006 PASS
Suite: instruction_following · Latency: 1623 ms · Cost: $0.000257 · Finish: stop
Prompt
只输出 JSON 对象,不要 Markdown。字段 version 必须是 "v0.3";字段 ready 必须是 true;字段 cases 必须是正好两个对象组成的数组。cases 中每个对象只能包含 id、weight、active 三个字段;id 是字符串且匹配 case-1 或 case-2;weight 是整数;active 是布尔值。
Standard Answer / Scoring Expectation
Expected JSON schema:
{
  "type": "object",
  "required": [
    "version",
    "ready",
    "cases"
  ],
  "additionalProperties": false,
  "properties": {
    "version": {
      "type": "string",
      "const": "v0.3"
    },
    "ready": {
      "type": "boolean",
      "const": true
    },
    "cases": {
      "type": "array",
      "minItems": 2,
      "maxItems": 2,
      "items": {
        "type": "object",
        "required": [
          "id",
          "weight",
          "active"
        ],
        "additionalProperties": false,
        "properties": {
          "id": {
            "type": "string",
            "pattern": "^case-[12]$"
          },
          "weight": {
            "type": "integer"
          },
          "active": {
            "type": "boolean"
          }
        }
      }
    }
  }
}
Output
{"version":"v0.3","ready":true,"cases":[{"id":"case-1","weight":1,"active":true},{"id":"case-2","weight":1,"active":true}]}
challenge-zh-writing-004 PASS
Suite: chinese_writing · Latency: 5237 ms · Cost: $0.000317 · Finish: stop
Prompt
写一段不超过 160 个汉字的公众号小结,主题是“为什么 v0.3 要扩到 100 题”。必须包含“推理题”“边界条件”“人工复查”,不能出现“排行榜”。
Standard Answer / Scoring Expectation
Required phrases: 推理题、边界条件、人工复查
Forbidden phrases: 排行榜
Length guidance (diagnostic only): min=n/a, max=160
Output
v0.3 扩容至 100 题,是为了更充分考察模型的推理题能力,并覆盖更多边界条件,检验其在极限场景下的稳定性。每道新增题都经过严格的人工复查,确保逻辑严谨与答案准确,让评测更可信。

Case Details

CaseSuiteStatusFailure TypeScoreLatencyCostFinish
challenge-coding-001codingPASS-1.09255 ms$0.000705stop
challenge-coding-002codingPASS-1.029612 ms$0.002193stop
challenge-coding-003codingPASS-1.032317 ms$0.002447stop
challenge-coding-004codingFAILruntime_type_assumption0.06170 ms$0.000499stop
challenge-coding-005codingPASS-1.020766 ms$0.000386stop
challenge-coding-006codingPASS-1.07183 ms$0.000458stop
challenge-coding-007codingPASS-1.033254 ms$0.003989stop
challenge-coding-008codingPASS-1.07709 ms$0.001458stop
challenge-debugging-001debuggingPASS-1.025804 ms$0.000433stop
challenge-debugging-002debuggingPASS-1.06280 ms$0.000550stop
challenge-debugging-003debuggingPASS-1.02058 ms$0.000637stop
challenge-debugging-004debuggingPASS-1.05751 ms$0.001034stop
challenge-debugging-005debuggingPASS-1.09102 ms$0.002323stop
challenge-debugging-006debuggingPASS-1.05684 ms$0.000336stop
challenge-debugging-007debuggingPASS-1.010450 ms$0.000948stop
challenge-debugging-008debuggingPASS-1.012218 ms$0.001125stop
challenge-reasoning-001reasoningPASS-1.08779 ms$0.000372stop
challenge-reasoning-002reasoningPASS-1.026632 ms$0.001865stop
challenge-reasoning-003reasoningFAILanswer_mismatch0.01724 ms$0.000144stop
challenge-reasoning-004reasoningPASS-1.01622 ms$0.000155stop
challenge-reasoning-005reasoningPASS-1.06562 ms$0.000609stop
challenge-rag-001rag_long_contextFAILmissing_required_info0.04539 ms$0.000390stop
challenge-rag-002rag_long_contextPASS-1.04490 ms$0.000393stop
challenge-rag-003rag_long_contextPASS-1.016921 ms$0.001409stop
challenge-rag-004rag_long_contextFAILmissing_required_info0.020605 ms$0.000354stop
challenge-if-001instruction_followingPASS-1.07060 ms$0.000928stop
challenge-if-002instruction_followingPASS-1.02820 ms$0.000143stop
challenge-if-003instruction_followingPASS-1.08233 ms$0.000225stop
challenge-zh-writing-001chinese_writingPASS-1.01527 ms$0.000301stop
challenge-zh-writing-002chinese_writingPASS-1.09149 ms$0.000395stop
challenge-coding-009codingPASS-1.06372 ms$0.000973stop
challenge-coding-010codingPASS-1.061705 ms$0.007975stop
challenge-coding-011codingPASS-1.025158 ms$0.002262stop
challenge-coding-012codingPASS-1.08273 ms$0.000970stop
challenge-coding-013codingPASS-1.019463 ms$0.001126stop
challenge-coding-014codingFAILcode_assertion_failure0.010173 ms$0.000571stop
challenge-debugging-009debuggingPASS-1.09340 ms$0.001642stop
challenge-debugging-010debuggingPASS-1.031464 ms$0.003606stop
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challenge-debugging-013debuggingPASS-1.011968 ms$0.001150stop
challenge-debugging-014debuggingPASS-1.027857 ms$0.003469stop
challenge-reasoning-006reasoningPASS-1.07374 ms$0.000539stop
challenge-reasoning-007reasoningPASS-1.06638 ms$0.000403stop
challenge-rag-005rag_long_contextPASS-1.03884 ms$0.000245stop
challenge-rag-006rag_long_contextPASS-1.03783 ms$0.000324stop
challenge-rag-007rag_long_contextPASS-1.03186 ms$0.000415stop
challenge-if-004instruction_followingPASS-1.016950 ms$0.000422stop
challenge-if-005instruction_followingPASS-1.05196 ms$0.000247stop
challenge-zh-writing-003chinese_writingPASS-1.024395 ms$0.002998stop
challenge-reasoning-008reasoningPASS-1.06536 ms$0.000489stop
challenge-reasoning-009reasoningPASS-1.029463 ms$0.002238stop
challenge-reasoning-010reasoningPASS-1.07116 ms$0.000655stop
challenge-reasoning-011reasoningPASS-1.03748 ms$0.000341stop
challenge-reasoning-012reasoningFAILanswer_mismatch0.01839 ms$0.000132stop
challenge-reasoning-013reasoningPASS-1.03218 ms$0.000587stop
challenge-reasoning-014reasoningPASS-1.06592 ms$0.000315stop
challenge-reasoning-015reasoningPASS-1.04641 ms$0.000296stop
challenge-reasoning-016reasoningPASS-1.05024 ms$0.000113stop
challenge-reasoning-017reasoningPASS-1.03923 ms$0.000261stop
challenge-reasoning-018reasoningPASS-1.03834 ms$0.000275stop
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challenge-reasoning-020reasoningFAILanswer_mismatch0.0927 ms$0.000157stop
challenge-reasoning-021reasoningPASS-1.07556 ms$0.000697stop
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challenge-reasoning-023reasoningPASS-1.08653 ms$0.000974stop
challenge-reasoning-024reasoningPASS-1.02934 ms$0.000453stop
challenge-reasoning-025reasoningPASS-1.04940 ms$0.000248stop
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challenge-coding-016codingPASS-1.08258 ms$0.000685stop
challenge-coding-017codingPASS-1.019679 ms$0.001900stop
challenge-coding-018codingPASS-1.011449 ms$0.000865stop
challenge-coding-019codingPASS-1.07630 ms$0.001200stop
challenge-coding-020codingPASS-1.022798 ms$0.004366stop
challenge-coding-021codingPASS-1.011027 ms$0.000998stop
challenge-coding-022codingPASS-1.037570 ms$0.003337stop
challenge-coding-023codingPASS-1.025669 ms$0.003969stop
challenge-coding-024codingPASS-1.020466 ms$0.002146stop
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challenge-coding-027codingPASS-1.018914 ms$0.001788stop
challenge-coding-028codingPASS-1.019698 ms$0.001394stop
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challenge-rag-009rag_long_contextPASS-1.02756 ms$0.000179stop
challenge-rag-010rag_long_contextPASS-1.02591 ms$0.000382stop
challenge-rag-011rag_long_contextPASS-1.03856 ms$0.000770stop
challenge-rag-012rag_long_contextPASS-1.01238 ms$0.000212stop
challenge-rag-013rag_long_contextPASS-1.011809 ms$0.000211stop
challenge-rag-014rag_long_contextPASS-1.03139 ms$0.000606stop
challenge-rag-015rag_long_contextPASS-1.07181 ms$0.001094stop
challenge-rag-016rag_long_contextPASS-1.06044 ms$0.000487stop
challenge-rag-017rag_long_contextPASS-1.06072 ms$0.001141stop
challenge-rag-018rag_long_contextPASS-1.02014 ms$0.000198stop
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challenge-debugging-016debuggingPASS-1.011588 ms$0.001237stop
challenge-debugging-017debuggingPASS-1.01678 ms$0.000251stop
challenge-debugging-018debuggingPASS-1.010736 ms$0.001890stop
challenge-debugging-019debuggingPASS-1.04703 ms$0.000235stop
challenge-if-006instruction_followingPASS-1.01623 ms$0.000257stop
challenge-zh-writing-004chinese_writingPASS-1.05237 ms$0.000317stop