Bidirectional Preference Synthesis: Learning Prompt-Conditioned Preferences from Boundary Failures
Junbo Wang (Kuaishou TechnologyNanjing University)Lidong Lu (Nanjing University)Zhuoqun Li (Kuaishou Technology)Guiping Jiang (Kuaishou Technology)Xiangyu Wu (Kuaishou Technology)Tinghai Zhang (Kuaishou Technology)Tong Lu (Nanjing University)
Oct 2026
Artificial IntelligenceNatural Language Processing
Abstract
Correction-based offline preference pipelines commonly treat model failures only as rejected responses under the original prompt. This supervision is incomplete for boundary failures: responses that violate the given instruction yet coherently satisfy a nearby intent or constraint setting. We introduce Bidirectional Preference Synthesis (BPS), a data-construction method for standard Direct Preference Optimization (DPO) that makes this missing prompt dependence explicit. For each validated boundary failure, BPS keeps the conventional forward pair under the original prompt and adds a reverse pair under a synthesized achieved prompt, so the same response is rejected where it is wrong and chosen where it is right, without changing the DPO objective, training a reward model, or requiring online sampling. On Qwen3-4B-Instruct-2507, BPS preserves original-side pairwise ranking while raising achieved-side ranking accuracy from 6.8% to 62.3% on held-out crossed anchors, with a similar shift under a Kimi-K2.6 cross-teacher probe. A blind human audit supports the intended reverse preference direction, and downstream evaluations show the clearest separation from Forward-DPO in multilingual multi-turn instruction following, with consistent capability-retention patterns on agentic, tool-use, and code checks.
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