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Where the Time Goes: Analysis of a Public LLM Serving System

  • HES-SO Valais-Wallis
  • University of Lausanne

Publikation: Konference artikel i Proceeding eller bog/rapport kapitelKonferencebidrag i proceedingsForskningpeer review

Abstract

In this study, we present a characterization of serving traces collected from Public Al's serving of Apertus, an open source Large Language Model (LLM). The trace spans roughly five months (September 2025-January 2026) and contains 337K requests. We analyzed request sizes, token and timing behaviour, latency, model-size effects, and temporal patterns. Our findings show insights that do not align with common assumptions; (1) time-to-first-token is often driven by queuing rather than prefill compute, especially for small requests; (2) the 8B and 70B models show nearly the same user-perceived latency despite a 9× parameter gap; (3) a substantial fraction of requests are prefill/queuing-dominated rather than decode-dominated; and; (4) observable input features are weak predictors of output, which makes size-aware scheduling difficult at arrival time. As a contribution to the research community, we will publish this anonymized trace along with its analysis.
OriginalsprogEngelsk
TitelProceedings of the Sixth European Workshop on Machine Learning and Systems, EuroMLSys 2026, Edinburgh, Scotland, UK, April 27-30, 2026
Antal sider12
ForlagAssociation for Computing Machinery
Publikationsdato28 apr. 2026
Sider171-182
ISBN (Trykt)979-8-4007-2605-7
DOI
StatusUdgivet - 28 apr. 2026
BegivenhedComputer Systems - Edinburgh, Storbritannien
Varighed: 27 apr. 202630 apr. 2026
Konferencens nummer: 21

Konference

KonferenceComputer Systems
Nummer21
Land/OmrådeStorbritannien
ByEdinburgh
Periode27/04/202630/04/2026

Emneord

  • LLM serving
  • inference latency
  • production trace
  • request scheduling
  • workload characterization

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