[Submitted on 14 Jul 2026]
Title:Register Bias in Complexity-Based Large Language Model Routing
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Abstract:Large language model services increasingly route each query to one of several models of differing capability, using a cheap estimate of query complexity to send easy queries to small models and hard queries to large ones. I show that this routing step is not register neutral: text written in a non-standard English register, African American English or the English of second-language writers, is systematically assigned a lower-capacity tier than a meaning-equivalent standard-English version of the same query. The effect is driven by a specific, common routing signal, input length, because non-standard registers omit function words and thus look shorter and therefore simpler; other complexity signals do not carry it. I demonstrate the disparity on 37,704 authentic learner sentence pairs and on a controlled parallel corpus. I then measure the quality consequence on a device, edge, and cloud model ladder and find that the harm is driven by pervasive model bias, every tier, including a frontier cloud model, answers non-standard-register queries significantly less accurately, while the marginal quality cost of the routing decision itself is not significant on this benchmark. Complexity-based routing thus compounds the exposure of the users that the models already serve worst.
Comments: 4 pages, 2 figures. Code: this https URL
Subjects:
Computation and Language (cs.CL); Computers and Society (cs.CY)
ACM classes: I.2.7; K.4.1
Cite as: arXiv:2609.17542 [cs.CL]
(or arXiv:2609.17542v1 [cs.CL] for this version)
https://doi.org/10.48550/arXiv.2609.17542
arXiv-issued DOI via DataCite
Submission history
From: Simran Koul [view email] [v1] Tue, 14 Jul 2026 19:55:46 UTC (29 KB)
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