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βš™οΈ SWE-rebench: Nebius AI R&D team presents new dataset for SWE tasks.

Researchers built an automated system to collect and validate thousands of real-world tasks from GitHub, designed for training and evaluation of LLMs in software engineering.

Main features of the system:
1️⃣ Automatic data collection: Continuously extracts issue-PR pairs from Python repositories.
2️⃣ LLM-based environment setup: LLM analyzes repositories, creates install instructions, and updates them if errors happen.
3️⃣ Execution-based validation: Each task is tested by automatic setup, test run, and dependency freezing to make it reproducible.
4️⃣ LLM quality annotation: Tasks are labeled for clarity, difficulty, and test correctness to support filtering.

Result:
SWE-rebench dataset: 21,000+ ready-to-use interactive tasks.
Continuous updates: Fresh data is added regularly.
Transparent evaluation: Tasks are used for public SWE-rebench leaderboard.

πŸš€ SWE-rebench gives researchers and developers real and validated tasks to work with LLMs in SWE field.

Technical report: arXiv
Dataset: SWE-rebench



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βš™οΈ SWE-rebench: Nebius AI R&D team presents new dataset for SWE tasks.

Researchers built an automated system to collect and validate thousands of real-world tasks from GitHub, designed for training and evaluation of LLMs in software engineering.

Main features of the system:
1️⃣ Automatic data collection: Continuously extracts issue-PR pairs from Python repositories.
2️⃣ LLM-based environment setup: LLM analyzes repositories, creates install instructions, and updates them if errors happen.
3️⃣ Execution-based validation: Each task is tested by automatic setup, test run, and dependency freezing to make it reproducible.
4️⃣ LLM quality annotation: Tasks are labeled for clarity, difficulty, and test correctness to support filtering.

Result:
SWE-rebench dataset: 21,000+ ready-to-use interactive tasks.
Continuous updates: Fresh data is added regularly.
Transparent evaluation: Tasks are used for public SWE-rebench leaderboard.

πŸš€ SWE-rebench gives researchers and developers real and validated tasks to work with LLMs in SWE field.

Technical report: arXiv
Dataset: SWE-rebench

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Telegram has exploded as a hub for cybercriminals looking to buy, sell and share stolen data and hacking tools, new research shows, as the messaging app emerges as an alternative to the dark web.An investigation by cyber intelligence group Cyberint, together with the Financial Times, found a ballooning network of hackers sharing data leaks on the popular messaging platform, sometimes in channels with tens of thousands of subscribers, lured by its ease of use and light-touch moderation.

Look for Channels Online

You guessed it – the internet is your friend. A good place to start looking for Telegram channels is Reddit. This is one of the biggest sites on the internet, with millions of communities, including those from Telegram.Then, you can search one of the many dedicated websites for Telegram channel searching. One of them is telegram-group.com. This website has many categories and a really simple user interface. Another great site is telegram channels.me. It has even more channels than the previous one, and an even better user experience.These are just some of the many available websites. You can look them up online if you’re not satisfied with these two. All of these sites list only public channels. If you want to join a private channel, you’ll have to ask one of its members to invite you.

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