Energetic Resilience under Temporal Logic Specifications

Fuente: arXiv
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Hauptverfasser: Das, Ratnangshu, Padmanabhan, Ram, Ornik, Melkior, Jagtap, Pushpak
Format: Preprint
Veröffentlicht: 2026
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author Das, Ratnangshu
Padmanabhan, Ram
Ornik, Melkior
Jagtap, Pushpak
author_facet Das, Ratnangshu
Padmanabhan, Ram
Ornik, Melkior
Jagtap, Pushpak
contents In environments with uncertainties or undesirable influences, control systems can require additional energy to achieve their task while remaining resilient to these influences. In this paper, we present an energetic resilience metric that quantifies the maximal additional energy used by a system under undesired effects, while satisfying complex specifications encoded through temporal logic. We prove that this metric satisfies properties that enable its computation even for compositions of these specifications, thus allowing considerations of sequential reachability and safety tasks. For specifications related to finite-horizon reachability and safety, we describe how synthesizing a control input and computing this metric reduces to solving efficient quadratic programs. Two case studies on a fighter-jet model and a planar mobile robot illustrate how the synthesized control inputs satisfy given specifications despite undesired and potentially adversarial effects. Further, we demonstrate how the energetic resilience metric varies with the initial state as well as the magnitude of undesired effects.
format Preprint
id arxiv_https___arxiv_org_abs_2604_14203
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Energetic Resilience under Temporal Logic Specifications
Das, Ratnangshu
Padmanabhan, Ram
Ornik, Melkior
Jagtap, Pushpak
Systems and Control
In environments with uncertainties or undesirable influences, control systems can require additional energy to achieve their task while remaining resilient to these influences. In this paper, we present an energetic resilience metric that quantifies the maximal additional energy used by a system under undesired effects, while satisfying complex specifications encoded through temporal logic. We prove that this metric satisfies properties that enable its computation even for compositions of these specifications, thus allowing considerations of sequential reachability and safety tasks. For specifications related to finite-horizon reachability and safety, we describe how synthesizing a control input and computing this metric reduces to solving efficient quadratic programs. Two case studies on a fighter-jet model and a planar mobile robot illustrate how the synthesized control inputs satisfy given specifications despite undesired and potentially adversarial effects. Further, we demonstrate how the energetic resilience metric varies with the initial state as well as the magnitude of undesired effects.
title Energetic Resilience under Temporal Logic Specifications
topic Systems and Control
url https://arxiv.org/abs/2604.14203