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Three CN Lite tasks have prompt/manifest inconsistencies (tasks 23, 127, and 386)

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评估

难度
3/5
预计耗时
1-2 天
新手友好度
68/100
Issue 类型
缺陷
描述清晰度
描述清楚
活跃度
活跃
技术栈
python
领域
data, testing-qa

调研方向

将 CN Lite 的 data_manifest 和 file_dep_graph 与任务 23、127 和 386 的打包输入及完整 workspace 索引进行比较。检查任务 23 缺失的工作簿、任务 127 的 Python 文件数量,以及任务 386 提供的转录文本和元数据。当 prompts、清单、依赖关系图和 solver 可见的输入一致地描述可用文件时,即表示完成。

由索引模型根据 Issue 内容生成。

描述

Summary

Three Chinese Workspace-Bench Lite tasks contain inconsistencies between their prompts, manifests, and the files available in the full workspace image:

  • opendatabox-workspace-bench-23
  • opendatabox-workspace-bench-127
  • opendatabox-workspace-bench-386

I checked each task's CN Lite metadata and packaged inputs, the complete filename index of filesys_cn.zip, and the repository's workspace construction logic.

1. Task 23: the current-inventory workbook is missing from the task manifest

The prompt asks the agent to correlate the stocktaking report, current inventory list, and inbound/outbound logs. However, the task's data_manifest and file_dep_graph omit:

当前库存物品总清单_2024-12.xlsx

The workbook does exist in the full CN workspace image at:

LogisticsManager_Workdir/后勤/库存/物品清单/当前库存物品总清单_2024-12.xlsx

The original runner normally copies the complete raw persona workspace before overlaying manifest files, so the file may remain visible in the original full-workspace evaluation. Nevertheless, the task package is not self-contained, the declared dependency graph is incomplete, and manifest-only conversions omit a source explicitly required by the prompt.

Suggested fix

Add the existing workbook to:

  • data_manifest
  • file_dep_graph
  • Any generated setup/input manifest or solver-visible input list

No workspace image rebuild should be necessary because the workbook is already present in filesys_cn.zip.

2. Task 127: prompt says 10 Python files, but only 8 exist

The prompt says:

测试项目文件夹的python目录下有10个python文件

However, all other sources consistently show 8 files:

  • The Lite data_manifest contains 8 Python files.
  • The file_dep_graph contains 8 Python source nodes.
  • The packaged task data contains 8 Python files.
  • Research_Workdir/桌面/项目/测试项目/python/ in the full CN image contains 8 Python files.
  • One rubric explicitly refers to all 8 Python files.

The files are:

  1. data_process.py
  2. database.py
  3. image.py
  4. machine_learning.py
  5. parsing.py
  6. utils.py
  7. visualization.py
  8. web_network.py
Suggested fix

Change the task text from 10 Python files to 8. No image, manifest, dependency-graph, or rubric change is otherwise required.

3. Task 386: the prompt requires transcription of four absent .m4a recordings

The prompt describes four .m4a recordings and explicitly asks the system to perform:

音频→文字→结构化决策表

The complete CN workspace image contains no .m4a files. It contains only:

  • 会议录音元数据.json
  • D1_上午场_转写稿.txt
  • D2_下午场_转写稿.txt
  • The five spreadsheet inputs used by the task

The metadata describes four recording sessions and marks ASR as completed for all four. It references four transcript paths, but only two transcript TXT files are actually supplied: D1 morning and D2 afternoon. The D1 afternoon and D2 morning transcript files are also absent.

The existing rubrics evaluate conclusions derived from the supplied transcripts, recording metadata, NPS survey, DAU logs, CRM data, and competitor report. They do not evaluate audio decoding or ASR execution.

Suggested fix

Revise the prompt to describe the supplied recording metadata and the available completed ASR transcripts, and remove the unsupported requirement to transcribe four recordings. To avoid implying that all four transcripts exist, wording such as the following would be accurate:

Analyze the supplied recording metadata and the available completed ASR transcripts.

Alternatively, add the four original .m4a files and the two missing transcript files if audio transcription is intended to remain part of the task.

Expected outcome

Please align these task prompts and manifests with the actual workspace inputs so that each task is self-contained and does not claim unavailable input files or incorrect file counts.

主要语言
Python
星标
72
派生
7
平均合并
7 分钟
30 天内合并 PR
6

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从这里开始

  1. 先读完整个 Issue,再读项目的贡献指南。
  2. 在 Issue 下留言说明你要接手 —— 这能避免两个人做同样的事。
  3. Fork 仓库,在一个分支上完成修改。
  4. 提交 Pull Request,并在描述里引用这个 Issue 编号。

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