Abstract
This paper introduces an innovative Analog electronics circuit designed to compute derivatives and integrals of a function with respect to any variable, extending beyond the conventional limitation to time-based operations. Unlike traditional Analog computers, which rely on time-dependent differential equations, this design utilizes operational amplifiers, diodes, and other Analog components to perform precise computations without requiring digital differential analyzers. By integrating a time derivative circuit, a multiplier, an integrator, and a function inverter, the proposed circuit addresses a broader class of differential problems. This work provides theoretical analysis, detailed circuit schematics, and component specifications to substantiate the approach, marking a significant advancement in Analog computing by broadening its scope to non-temporal systems.
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A Purely Analog Electronics Circuit for Computing Derivatives and Integrals with Respect to Any Variable | Authorea try { document.documentElement.classList.add('js'); } catch (e) { } var _gaq = _gaq || []; _gaq.push(['_setAccount', 'G-8VDV14Y67G']); _gaq.push(['_trackPageview']); (function() { var ga = document.createElement('script'); ga.type = 'text/javascript'; ga.async = true; ga.src = ('https:' == document.location.protocol ? 'https://ssl' : 'http://www') + '.google-analytics.com/ga.js'; var s = document.getElementsByTagName('script')[0]; s.parentNode.insertBefore(ga, s); })(); Skip to main content Preprints Collections Wiley Open Research IET Open Research Ecological Society of Japan All Collections About About Authorea FAQs Contact Us Quick Search anywhere Search for preprint articles, keywords, etc. Search Search ADVANCED SEARCH SCROLL This is a preprint and has not been peer reviewed. Data may be preliminary. 13 October 2025 V1 Latest version Share on A Purely Analog Electronics Circuit for Computing Derivatives and Integrals with Respect to Any Variable Author : Aris Skliros 0009-0005-2866-2748 [email protected] Authors Info & Affiliations https://doi.org/10.22541/au.176038360.04318654/v1 Published Archivos de Ciencia e Investigación Version of record Peer review timeline 189 views 76 downloads Contents Abstract Supplementary Material Information & Authors Metrics & Citations View Options References Figures Tables Media Share Abstract This paper introduces an innovative Analog electronics circuit designed to compute derivatives and integrals of a function with respect to any variable, extending beyond the conventional limitation to time-based operations. Unlike traditional Analog computers, which rely on time-dependent differential equations, this design utilizes operational amplifiers, diodes, and other Analog components to perform precise computations without requiring digital differential analyzers. By integrating a time derivative circuit, a multiplier, an integrator, and a function inverter, the proposed circuit addresses a broader class of differential problems. This work provides theoretical analysis, detailed circuit schematics, and component specifications to substantiate the approach, marking a significant advancement in Analog computing by broadening its scope to non-temporal systems. Supplementary Material File (researchpaperfinal.pdf) Download 283.54 KB Information & Authors Information Version history V1 Version 1 13 October 2025 Peer review timeline Published Archivos de Ciencia e Investigación Version of Record 23 Jan 2026 Published Copyright This work is licensed under a Non Exclusive No Reuse License. Keywords analog computing circuit design derivatives integrals operational amplifiers Authors Affiliations Aris Skliros 0009-0005-2866-2748 [email protected] View all articles by this author Metrics & Citations Metrics Article Usage 189 views 76 downloads .FvxKWukQNSOunydq8rnd { width: 100px; } Citations Download citation Aris Skliros. A Purely Analog Electronics Circuit for Computing Derivatives and Integrals with Respect to Any Variable. Authorea . 13 October 2025. DOI: https://doi.org/10.22541/au.176038360.04318654/v1 If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download. For more information or tips please see 'Downloading to a citation manager' in the Help menu . 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