django_method_gen / README.md
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---
dataset_info:
features:
- name: data_source
dtype: string
- name: prompt
list:
- name: content
dtype: string
- name: role
dtype: string
- name: ability
dtype: string
- name: reward_model
struct:
- name: ground_truth
dtype: 'null'
- name: style
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- name: extra_info
struct:
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dtype: string
- name: tools_kwargs
struct:
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struct:
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struct:
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- name: class_name
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- name: line_numbers
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- name: method
struct:
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- name: description
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list: int64
- name: global_method_declaration_index
list: int64
- name: method_body_index
list: int64
- name: method_declaration_index
list: int64
- name: name
dtype: string
- name: num_lines
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- name: num_lines_quartile
dtype: int64
- name: method_count
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- name: qwen3-8b_pass_repair
dtype: bool
- name: qwen3-8b_pass_single
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- name: raw_doc
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- name: raw_file_content
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- name: split
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struct:
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- name: methods
list: string
- name: modules
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- name: test_output
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- name: time_cat
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- name: time_edit
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- name: time_reset_norm
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- name: time_test
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- name: time_total
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- name: agent_name
dtype: string
splits:
- name: train
num_bytes: 232713631
num_examples: 1364
- name: test
num_bytes: 14568916
num_examples: 100
download_size: 247410221
dataset_size: 247282547
configs:
- config_name: default
data_files:
- split: train
path: data/train-*
- split: test
path: data/test-*
---
`JetBrains-Research/django_method_gen` is a code generation benchmark built from the Django codebase.
This dataset is used in the example of [IDEGym](https://github.com/JetBrains-Research/idegym/) usage for VERL-based RL training (see [`this repo`](https://github.com/JetBrains-Research/idegym/tree/main/examples/verl)).
Each example is a task to regenerate a single Python method that has been cut from its class. The dataset provides the surrounding class code, file imports, and docstrings as context. Reward is rule-based: the agent's submission is evaluated by running the original unit tests.
The dataset follows the VERL multi-turn format: each row contains a `prompt` (chat-style system + user messages), an `agent_name` field (`"idegym_django"`), and an `extra_info` blob carrying the raw task data passed to the IDEGym server — including the method body to recover, file context, and test metadata. There are 1,364 training examples and 100 test examples, spanning four difficulty levels.