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Sonifying I²S Transport Signals to Detect Transmission Faults

Research output: Chapter in Book/Report/Conference proceedingsConference proceedingpeer-review

Abstract

This paper outlines a sonification design to support fault detection in the transmission of I²S transport signals. I²S is a protocol for communicating real-time digital audio between integrated circuits that, while in wide and general use, does not include built-in error detection. Moreover, given the nature of the protocol transmission faults affecting timing, framing and alignment can be difficult to identify using conventional visual methods. The proposed design addresses this with an approach informed by Audification, wherein oversampling controls temporal rescaling to render protocol structure (SCK and WS) and payload data (SD) across separate stereo channels. A preliminary computational feasibility study was carried out to measure feature-space separability of I2S faults in the generated auditory representations as opposed to listener performance. It evaluates the design across several payload types and error conditions including jitter, bit-slip, and word-length errors. Class separability was assessed through clustering analyses of extracted features. The evaluation results show that while oversampling produces systematic changes in feature values, it does not meaningfully improve separability between error classes. However, a modest but consistent improvement in separability is observed as a function of the joint representation of structural and payload information across channels. The findings suggest that feature-space separability in sonified communication protocol data may be dependent on the integration of complementary information streams, rather than on signal scaling alone.
Original languageEnglish (Ireland)
Title of host publicationProceedings of the 7th IEEE International Symposium on the Internet of Sounds
PublisherIEEE
Number of pages7
Publication statusAccepted/In press - 30 Oct 2026

UCC Futures

  • Future Humanities Institute
  • Future of Networks, Systems & Cybersecurity 

Keywords

  • Sound & Music Computing
  • Media Engineering
  • Sonificaiton
  • Internet of Sounds (IoS)
  • Audio

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