kth.sePublications KTH
Change search
Link to record
Permanent link

Direct link
Publications (10 of 13) Show all publications
Zhang, C., Gracy, S., Basar, T. & Pare, P. E. (2022). A Networked Competitive Multi-Virus SIR Model: Analysis and Observability. In: IFAC Papersonline: . Paper presented at 9th IFAC Conference on Networked Systems (NECSYS), July 05-07, 2022, Zurich, Switzerland (pp. 13-18). Elsevier BV, 55(13)
Open this publication in new window or tab >>A Networked Competitive Multi-Virus SIR Model: Analysis and Observability
2022 (English)In: IFAC Papersonline, Elsevier BV , 2022, Vol. 55, no 13, p. 13-18Conference paper, Published paper (Refereed)
Abstract [en]

This paper proposes a novel discrete-time multi-virus SIR (susceptible-infected-recovered) model that captures the spread of competing SIR epidemics over a population network. First, we provide a sufficient condition for the infection level of all the viruses over the networked model to converge to zero in exponential time. Second, we propose an observation model which captures the summation of all the viruses' infection levels in each node, which represents the individuals who are infected by different viruses but share similar symptoms. We present a sufficient condition for the model to be locally observable. We propose a Luenberger observer for the system state estimation and show via simulations that the estimation error of the Luenberger observer converges to zero before the viruses die out. Copyright

Place, publisher, year, edition, pages
Elsevier BV, 2022
Keywords
Biological networks and epidemics dynamics
National Category
Probability Theory and Statistics
Identifiers
urn:nbn:se:kth:diva-319466 (URN)10.1016/j.ifacol.2022.07.228 (DOI)000852734000003 ()2-s2.0-85135449442 (Scopus ID)
Conference
9th IFAC Conference on Networked Systems (NECSYS), July 05-07, 2022, Zurich, Switzerland
Note

QC 20220930

Available from: 2022-09-30 Created: 2022-09-30 Last updated: 2022-09-30Bibliographically approved
Gracy, S., Morarescu, I. C., Varma, V. S. & Pare, P. E. (2022). Analysis and On/Off Lockdown Control for Time-Varying SIS Epidemics with a Shared Resource. In: 2022 EUROPEAN CONTROL CONFERENCE (ECC): . Paper presented at European Control Conference (ECC), July 12-15, 2022, London, ENGLAND (pp. 1660-1665). Institute of Electrical and Electronics Engineers (IEEE)
Open this publication in new window or tab >>Analysis and On/Off Lockdown Control for Time-Varying SIS Epidemics with a Shared Resource
2022 (English)In: 2022 EUROPEAN CONTROL CONFERENCE (ECC), Institute of Electrical and Electronics Engineers (IEEE) , 2022, p. 1660-1665Conference paper, Published paper (Refereed)
Abstract [en]

The paper studies the spread of a virus over a (possibly) time-varying graph, with the spread being (possibly) worsened by the presence of a shared resource. We propose a time-varying susceptible-infected-water-susceptible (SIWS) model, with the water compartment representing the contamination level in the shared resource. We say that the system is in the disease-free equilibrium (DFE) if none of the nodes (representative of sub-populations, such as cities, districts, etc.) are infected, and the shared resource is contaminant-free. We identify multiple sufficient conditions for exponential convergence to the DFE. Based on one of the aforementioned sufficient conditions, an on/off lockdown strategy that eradicates the infection spread is proposed. More specifically, we design a switching rule between lockdown and free (i.e., no lockdown) modes to guarantee exponential convergence to the DFE.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2022
National Category
Control Engineering Public Health, Global Health and Social Medicine
Identifiers
urn:nbn:se:kth:diva-320700 (URN)10.23919/ECC55457.2022.9838125 (DOI)000857432300230 ()2-s2.0-85136612739 (Scopus ID)
Conference
European Control Conference (ECC), July 12-15, 2022, London, ENGLAND
Note

Not duplicate with diva 1622798

Part of ISBN 9783907144077

QC 20251021

Available from: 2022-10-31 Created: 2022-10-31 Last updated: 2025-10-21Bibliographically approved
Lindström, L., Gracy, S., Magnusson, S. & Sandberg, H. (2022). Leakage Localization in Water Distribution Networks: A Model-Based Approach. In: Proceedings 2022 European Control Conference (ECC): . Paper presented at European Control Conference (ECC), JUL 12-15, 2022, London, ENGLAND (pp. 1515-1520). Institute of Electrical and Electronics Engineers (IEEE)
Open this publication in new window or tab >>Leakage Localization in Water Distribution Networks: A Model-Based Approach
2022 (English)In: Proceedings 2022 European Control Conference (ECC), Institute of Electrical and Electronics Engineers (IEEE), 2022, p. 1515-1520Conference paper, Published paper (Refereed)
Abstract [en]

The paper studies the problem of leakage localization in water distribution networks. For the case of a single pipe that suffers from a single leak, by taking recourse to pressure and flow measurements, and assuming those are noiseless, we provide a closed-form expression for leak localization, leak exponent and leak constant. For the aforementioned setting, but with noisy pressure and flow measurements, an expression for estimating the location of the leak is provided. Finally, assuming the existence of a single leak, for a network comprising of more than one pipe and assuming that the network has a tree structure, we provide a systematic procedure for determining the leak location, the leak exponent, and the leak constant.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2022
National Category
Control Engineering Reliability and Maintenance
Identifiers
urn:nbn:se:kth:diva-320696 (URN)10.23919/ECC55457.2022.9838006 (DOI)000857432300209 ()2-s2.0-85128629362 (Scopus ID)
Conference
European Control Conference (ECC), JUL 12-15, 2022, London, ENGLAND
Note

Part of ISBN 9783907144077

QC 20250924

Available from: 2022-10-31 Created: 2022-10-31 Last updated: 2025-09-24Bibliographically approved
Gracy, S., Pare, P. E., Sandberg, H. & Johansson, K. H. (2021). Analysis and Distributed Control of Periodic Epidemic Processes. IEEE Transactions on Control of Network Systems, 8(1), 123-134
Open this publication in new window or tab >>Analysis and Distributed Control of Periodic Epidemic Processes
2021 (English)In: IEEE Transactions on Control of Network Systems, E-ISSN 2325-5870, Vol. 8, no 1, p. 123-134Article in journal (Refereed) Published
Abstract [en]

This article studies epidemic processes over discrete-time periodic time-varying networks. We focus on the susceptible-infected-susceptible (SIS) model that accounts for a (possibly) mutating virus. We say that an agent is in the disease-free state if it is not infected by the virus. Our objective is to devise a control strategy which ensures that all agents in a network exponentially (respectively asymptotically) converge to the disease-free equilibrium (DFE). Toward this end, we first provide 1) sufficient conditions for exponential (respectively, asymptotic) convergence to the DFE and 2) a necessary and sufficient condition for asymptotic convergence to the DFE. The sufficient condition for global exponential stability (GES) [respectively global asymptotic stability (GAS)] of the DFE is in terms of the joint spectral radius of a set of suitably defined matrices, whereas the necessary and sufficient condition for GAS of the DFE involves the spectral radius of an appropriately defined product of matrices. Subsequently, we leverage the stability results in order to design a distributed control strategy for eradicating the epidemic.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2021
Keywords
Discrete-time networks, distributed control strategy, epidemic processes, global asymptotic stability (GAS), global exponential stability (GES), susceptible-infected-susceptible (SIS) models, time-varying systems
National Category
Control Engineering
Identifiers
urn:nbn:se:kth:diva-293581 (URN)10.1109/TCNS.2020.3017717 (DOI)000626322000011 ()2-s2.0-85091352412 (Scopus ID)
Note

QC 20210519

Available from: 2021-05-19 Created: 2021-05-19 Last updated: 2025-03-18Bibliographically approved
Gracy, S., Milosevic, J. & Sandberg, H. (2021). Security index based on perfectly undetectable attacks: Graph-theoretic conditions. Automatica, 134, Article ID 109925.
Open this publication in new window or tab >>Security index based on perfectly undetectable attacks: Graph-theoretic conditions
2021 (English)In: Automatica, ISSN 0005-1098, E-ISSN 1873-2836, Vol. 134, article id 109925Article in journal (Refereed) Published
Abstract [en]

The notion of security index quantifies the least effort involved in conducting perfectly undetectable attacks. Thus, the security index enables a systems operator to assess the vulnerability of a component, informs sensor placement strategies, and helps in deciding the feasibility of secure estimators and fault detectors. In this paper, we investigate the (possible) variation in this index as a consequence of variation in the system parameters. To this end, we adopt a structured systems approach, typically represented by a directed graph, with the edges of the said graph being in one-to-one correspondence with the system parameters. We first show that the security index is generic. That is, for almost all choices of edge weights, the security index of a component remains the same. We refer to such an index as the generic security index. Secondly, we derive graph-theoretic conditions (and based on those an algorithm) for computing the generic security index. Third, we provide graph-theoretic conditions for computing lower (resp. upper) bounds on the values that the security index of a component can take for all nonzero choices of the edge weights of the directed graph. Finally, we provide a brute force search method for calculating the said bounds.

Place, publisher, year, edition, pages
Elsevier BV, 2021
National Category
Control Engineering
Identifiers
urn:nbn:se:kth:diva-304180 (URN)10.1016/j.automatica.2021.109925 (DOI)000707897700010 ()2-s2.0-85116025760 (Scopus ID)
Note

QC 20211105

Available from: 2021-11-05 Created: 2021-11-05 Last updated: 2022-12-12Bibliographically approved
Gracy, S., Milosevic, J. & Sandberg, H. (2021). Security index based on perfectly undetectable attacks: Graph-theoretic conditions- Supplementary Material.
Open this publication in new window or tab >>Security index based on perfectly undetectable attacks: Graph-theoretic conditions- Supplementary Material
2021 (English)Other (Refereed)
Publisher
p. 4
National Category
Engineering and Technology
Identifiers
urn:nbn:se:kth:diva-299442 (URN)
Note

QC 20210811

Available from: 2021-08-09 Created: 2021-08-09 Last updated: 2022-12-12Bibliographically approved
Garin, F., Gracy, S. & Kibangou, A. Y. (2021). Strong structural input and state observability of linear time-invariant systems: Graphical conditions and algorithms. European Journal of Control, 58, 27-42
Open this publication in new window or tab >>Strong structural input and state observability of linear time-invariant systems: Graphical conditions and algorithms
2021 (English)In: European Journal of Control, ISSN 0947-3580, E-ISSN 1435-5671, Vol. 58, p. 27-42Article in journal (Refereed) Published
Abstract [en]

The paper studies input and state observability (ISO) of discrete-time linear time-invariant network systems whose dynamics are affected by unknown inputs. More precisely, we aim at reconstructing the initial state and the sequence of unknown inputs from the system outputs, and we will use the term ISO when the input reconstruction is possible with delay one, namely the inputs up to time k - 1 and the states up to time k can be obtained from the outputs up to time k, while the term unconstrained ISO will refer to the case where there is some arbitrary delay in the input reconstruction. We focus on the problem of s-structural ISO (resp. s-structural unconstrained ISO) wherein the objective is to find conditions such that for all system matrices that carry the same network structure, the resulting system is ISO (resp. unconstrained ISO). We provide first a graphical characterization for s-structural unconstrained ISO, and subsequently, sufficient conditions and necessary conditions for s-structural ISO. For the latter, under the assumption of zero feedthrough, these conditions coincide and characterise ISO. The conditions presented are in terms of existence of suitable uniquely restricted matchings in bipartite graphs associated with the structured system. In order to test these conditions, we present polynomial-time algorithms. Finally, we discuss an equivalent reformulation of the main conditions in terms of coloring algorithms as in the literature of zero forcing sets.

Place, publisher, year, edition, pages
ELSEVIER, 2021
Keywords
Linear time-invariant network systems, Input and state observability, Structured systems, Strong structural observability, Uniquely restricted matchings, Zero forcing sets
National Category
Control Engineering
Identifiers
urn:nbn:se:kth:diva-292267 (URN)10.1016/j.ejcon.2020.12.004 (DOI)000620926100004 ()2-s2.0-85099554755 (Scopus ID)
Note

QC 20210401

Available from: 2021-04-01 Created: 2021-04-01 Last updated: 2022-06-25Bibliographically approved
Wang, Y., Gracy, S., Ishii, H. & Johansson, K. H. (2021). Suppressing the endemic equilibrium in SIS epidemics: A state dependent approach. In: IFAC PAPERSONLINE: . Paper presented at 11th IFAC Symposium on Biological and Medical Systems (BMS), SEP 19-22, 2021, Ghent, BELGIUM (pp. 163-168). Elsevier BV, 54(15)
Open this publication in new window or tab >>Suppressing the endemic equilibrium in SIS epidemics: A state dependent approach
2021 (English)In: IFAC PAPERSONLINE, Elsevier BV , 2021, Vol. 54, no 15, p. 163-168Conference paper, Published paper (Refereed)
Abstract [en]

This paper considers the susceptible-infected-susceptible (SIS) epidemic model with an underlying network structure and focuses on the effect of social distancing to regulate the epidemic level. We demonstrate that if each subpopulation is informed of its infection rate and reduces interactions accordingly, the fraction of the subpopulation infected stays below half for all time instants. To this end, we first modify the basic SIS model by introducing a state dependent parameter representing the frequency of interactions between subpopulations. Thereafter, we show that for this modified SIS model, the spectral radius of a suitably-defined matrix being not greater than one causes all the agents, regardless of their initial sickness levels, to converge to the healthy state; assuming non-trivial disease spread, the spectral radius being greater than one leads to the existence of a unique endemic equilibrium, which is also asymptotically stable. Finally, by leveraging the aforementioned results, we show that the fraction of (sub)populations infected never exceeds half. Copyright

Place, publisher, year, edition, pages
Elsevier BV, 2021
Keywords
Epidemic processes, Infection reduction, Characterization of endemic equilibrium, Suppressing endemic equilibrium
National Category
Control Engineering
Identifiers
urn:nbn:se:kth:diva-305499 (URN)10.1016/j.ifacol.2021.10.249 (DOI)000714393600028 ()2-s2.0-85120713218 (Scopus ID)
Conference
11th IFAC Symposium on Biological and Medical Systems (BMS), SEP 19-22, 2021, Ghent, BELGIUM
Note

QC 20250922

Available from: 2021-12-01 Created: 2021-12-01 Last updated: 2025-09-22Bibliographically approved
Gracy, S., Milosevic, J. & Sandberg, H. (2020). Actuator Security Index for Structured Systems. In: Proceedings 2020 American Control Conference, ACC 2020, Denver, CO, USA, July 1-3, 2020: . Paper presented at 2020 American Control Conference, ACC 2020, Denver, CO, USA, July 1-3, 2020 (pp. 2993-2998). Institute of Electrical and Electronics Engineers (IEEE)
Open this publication in new window or tab >>Actuator Security Index for Structured Systems
2020 (English)In: Proceedings 2020 American Control Conference, ACC 2020, Denver, CO, USA, July 1-3, 2020, Institute of Electrical and Electronics Engineers (IEEE) , 2020, p. 2993-2998Conference paper, Published paper (Refereed)
Abstract [en]

Given a network with a set of vulnerable actuators (and sensors), the security index of an actuator equals the minimum number of sensors and actuators that needs to be compromised so as to conduct a perfectly undetectable attack using the said actuator. This paper deals with the problem of computing actuator security indices for discrete-time LTI network systems, using a structured systems framework. We show that the actuator security index is generic, that is for almost all realizations the actuator security index remains the same. We refer to such an index as generic security index (generic index) of an actuator. Given that the security index quantifies the vulnerability of a network, the generic index is quite valuable for large scale energy systems. Our second contribution is to provide graph-theoretic conditions for computing the generic index. The said conditions are in terms of existence of linkings on appropriately-defined directed (sub)graphs. Based on these conditions, we present an algorithm for computing the generic index.

Place, publisher, year, edition, pages
Institute of Electrical and Electronics Engineers (IEEE), 2020
Series
Proceedings of the American Control Conference, ISSN 0743-1619
National Category
Control Engineering
Identifiers
urn:nbn:se:kth:diva-292719 (URN)10.23919/ACC45564.2020.9147483 (DOI)000618079802149 ()2-s2.0-85089568799 (Scopus ID)
Conference
2020 American Control Conference, ACC 2020, Denver, CO, USA, July 1-3, 2020
Note

QC 20210413

Available from: 2021-04-13 Created: 2021-04-13 Last updated: 2022-12-12Bibliographically approved
Janson, A., Gracy, S., Pare, P. E., Sandberg, H. & Johansson, K. H. (2020). Analysis of a Networked SIS Multi-Virus Model with a Shared Resource. In: IFAC PAPERSONLINE: . Paper presented at 3rd IFAC Workshop pn Cyber-Physical and Human Systems (CPHS), DEC 03-05, 2020, Beijing, PEOPLES R CHINA (pp. 797-802). Elsevier BV, 53(5)
Open this publication in new window or tab >>Analysis of a Networked SIS Multi-Virus Model with a Shared Resource
Show others...
2020 (English)In: IFAC PAPERSONLINE, Elsevier BV , 2020, Vol. 53, no 5, p. 797-802Conference paper, Published paper (Refereed)
Abstract [en]

In this paper, we introduce a continuous-time competing virus model with a shared resource. We say that the system is in the healthy state if all the agents are healthy, and the shared resource is not contaminated. If the epidemic remains persistent, and the shared resource is contaminated, we say that the system is in the endemic state. First of all we show, under appropriate assumptions, that the model we introduce is well-posed. Secondly, we establish sufficient conditions for exponential (resp. asymptotic) eradication of a virus. Thirdly, for the single-virus case with a shared resource, we establish conditions that lead to existence of an endemic equilibrium. Finally, we provide a necessary and sufficient condition for uniqueness of the healthy state. 

Place, publisher, year, edition, pages
Elsevier BV, 2020
Keywords
Epidemic processes, Competing viruses, Shared resource, Exponential stability, Asymptotic Stability, Endemic equilibrium
National Category
Control Engineering
Identifiers
urn:nbn:se:kth:diva-298148 (URN)10.1016/j.ifacol.2021.04.220 (DOI)000656589700141 ()2-s2.0-85107894738 (Scopus ID)
Conference
3rd IFAC Workshop pn Cyber-Physical and Human Systems (CPHS), DEC 03-05, 2020, Beijing, PEOPLES R CHINA
Note

QC 20210802

Available from: 2021-08-02 Created: 2021-08-02 Last updated: 2022-06-30Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-2136-3957

Search in DiVA

Show all publications