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OJBench: A Competition Level Code Benchmark For Large Language Models

3 Pith papers cite this work. Polarity classification is still indexing.

3 Pith papers citing it

citation-role summary

background 1 dataset 1

citation-polarity summary

fields

cs.CL 2 cs.LG 1

years

2026 2 2025 1

representative citing papers

Kimi K2.5: Visual Agentic Intelligence

cs.CL · 2026-02-02 · unverdicted · novelty 5.0

Kimi K2.5 combines joint text-vision training with an Agent Swarm parallel orchestration framework to reach claimed state-of-the-art results on coding, vision, reasoning, and agent tasks while cutting latency up to 4.5 times.

Kimi K2: Open Agentic Intelligence

cs.LG · 2025-07-28 · unverdicted · novelty 5.0

Kimi K2 is a 1-trillion-parameter MoE model that leads open-source non-thinking models on agentic benchmarks including 65.8 on SWE-Bench Verified and 66.1 on Tau2-Bench.

citing papers explorer

Showing 3 of 3 citing papers.

  • How to Fine-Tune a Reasoning Model? A Teacher-Student Cooperation Framework to Synthesize Student-Consistent SFT Data cs.CL · 2026-03-23 · conditional · none · ref 45

    TESSY creates stylistically consistent synthetic data via teacher-student token interleaving, yielding 11.25% and 6.68% gains on code benchmarks where pure teacher data causes 3.25% and 10.02% drops.

  • Kimi K2.5: Visual Agentic Intelligence cs.CL · 2026-02-02 · unverdicted · none · ref 68

    Kimi K2.5 combines joint text-vision training with an Agent Swarm parallel orchestration framework to reach claimed state-of-the-art results on coding, vision, reasoning, and agent tasks while cutting latency up to 4.5 times.

  • Kimi K2: Open Agentic Intelligence cs.LG · 2025-07-28 · unverdicted · none · ref 82

    Kimi K2 is a 1-trillion-parameter MoE model that leads open-source non-thinking models on agentic benchmarks including 65.8 on SWE-Bench Verified and 66.1 on Tau2-Bench.