Pipelined information flow in molecular mechanical circuits leads to increased error and irreversibility

Fuente: arXiv
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Hauptverfasser: Seet, Ian, Ouldridge, Thomas E., Doye, Jonathan P. K.
Format: Preprint
Veröffentlicht: 2023
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author Seet, Ian
Ouldridge, Thomas E.
Doye, Jonathan P. K.
author_facet Seet, Ian
Ouldridge, Thomas E.
Doye, Jonathan P. K.
contents Pipelining is a design technique for logical circuits that allows for higher throughput than circuits in which multiple computations are fed through the system one after the other. It allows for much faster computation than architectures in which inputs must pass through every layer of the circuit before the next computation can begin (phased chaining). We explore the hypothesis that these advantages may be offset by a higher error rate, logical irreversibility and greater thermodynamic costs by simulating pipelined molecular mechanical circuits using an explicit physical model. We observe the emergent logical irreversibility, and see that the simultaneous action of multiple components indeed leads to a higher error rate than in phase-chained circuits. The thermodynamic costs of operating the gates are much larger than in equivalent phase-chained circuits, and these costs do not appear to tend to zero in the limit of slow gate operation. Redesigning the gates to eliminate errors and artificially enforcing logical reversibility reduces the thermodynamic costs and recovers thermodynamically reversible behaviour in the limit of slow gate operation. The breakdown of logical reversibility and accuracy are both associated with a breakdown of the digital behaviour of the device, likely contributing to thermodynamic costs that are large relative to the scale of the information being processed.
format Preprint
id arxiv_https___arxiv_org_abs_2306_11568
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Pipelined information flow in molecular mechanical circuits leads to increased error and irreversibility
Seet, Ian
Ouldridge, Thomas E.
Doye, Jonathan P. K.
Computational Physics
Pipelining is a design technique for logical circuits that allows for higher throughput than circuits in which multiple computations are fed through the system one after the other. It allows for much faster computation than architectures in which inputs must pass through every layer of the circuit before the next computation can begin (phased chaining). We explore the hypothesis that these advantages may be offset by a higher error rate, logical irreversibility and greater thermodynamic costs by simulating pipelined molecular mechanical circuits using an explicit physical model. We observe the emergent logical irreversibility, and see that the simultaneous action of multiple components indeed leads to a higher error rate than in phase-chained circuits. The thermodynamic costs of operating the gates are much larger than in equivalent phase-chained circuits, and these costs do not appear to tend to zero in the limit of slow gate operation. Redesigning the gates to eliminate errors and artificially enforcing logical reversibility reduces the thermodynamic costs and recovers thermodynamically reversible behaviour in the limit of slow gate operation. The breakdown of logical reversibility and accuracy are both associated with a breakdown of the digital behaviour of the device, likely contributing to thermodynamic costs that are large relative to the scale of the information being processed.
title Pipelined information flow in molecular mechanical circuits leads to increased error and irreversibility
topic Computational Physics
url https://arxiv.org/abs/2306.11568