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Designer-RSI: Evolving Procedural Memory from User Traffic for Agentic Graphic Design

A framework called Designer-RSI, submitted to arXiv on 18 Sep 2026, raised GenEval2 execution success on Claude-Sonnet-4 from 72.7% to 99.3% by evolving an external procedural memory of natural-language design skills, with no weight updates and no human labels. Over five rounds on 1,406 real user briefs and 1,869 automatically graded trajectories, the skill bank grew from 76 documentation-derived skills to 139, and the approach posted 61.8% and 67.6% win rates against a no-skill agent across four specialized design benchmarks on Claude-Sonnet-4 and Claude-Opus-4.6. On 200 held-out briefs, widening or deepening the memory alone reached 49.4% and 48.6% win rates over the no-skill agent, while their combination reached 58.5% (p = 0.025).

read2 min views2 publishedSep 21, 2026
Designer-RSI: Evolving Procedural Memory from User Traffic for Agentic Graphic Design
Image: source
  [Submitted on 18 Sep 2026]


[View PDF](http://arxiv.org/pdf/2609.22086v1)

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Abstract:Professional graphic design is a long-horizon agentic task in which structured, editable artifacts emerge from many interdependent actions, yet outcomes admit no reliable programmatic oracle. We introduce a continual adaptation framework in which a frozen frontier model operates professional design software through more than 230 tools, while an external procedural memory of natural-language skills accumulates and refines reusable design procedures from experience. The memory widens by acquiring procedures for recurring uncovered subtasks and deepens by revising existing procedures against their own successful and failed executions, while a matched replay gate admits only changes that repair failures without regressing observed successes. Five rounds over 1,406 real user briefs and 1,869 automatically graded trajectories, with no weight updates and no human labels, grow the bank from 76 documentation-derived skills to 139 and raise GenEval2 execution success on Claude-Sonnet-4 from 72.7% to 99.3% (+11.99 points in generation quality), with 61.8% and 67.6% win rates against the no-skill agent across four specialized design benchmarks on Claude-Sonnet-4 and Claude-Opus-4.6. We further show the two mechanisms are effective in combination: on 200 held-out briefs from user-traffic benchmark, widening or deepening alone reaches a 49.4% / 48.6% win rate over the no-skill agent, while their combination reaches 58.5% (p = 0.025). Procedural memory offers a practical route to continual adaptation of agents under noisy, unverifiable feedback.

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