Paper on SCADA
978-1-4799-3732-5/14/$31.00 ©2014 IEEE
Security and Intrusion Detection on Critical SCADA Systems for Water Management
I. Stoian, S. Ignat, D. Capatina, O. Ghiran SC IPA SA Cluj
Cluj-Napoca, Romania [email protected]
Abstract - SCADA systems are broadly employed in supervising and controlling industrial areas comprising manufacturing industries, traffic control, power plants, integrated water management systems (distribution, treatment and sewage).
The security of SCADA systems represents a significant subject on account of the critical function that these systems perform in offering vital utility services. In nowadays industrial systems ubiquitous access to Internet enhance the vulnerabilities of SCADA systems, for the reason that this allows a remote attacker to obtain control of, or produce interruption to the network critical functions. The attacks affect the network control plane and /or the data plane.
Critical infrastructures, requiring uninterrupted operation, maintenance, and protection, have need of robust and secured control SCADA systems. The paper intends to depicts the critical architectural constituents of these systems, detect vulnerabilities and possible threats, and illustrate protection techniques that may be set up in order to reduce attacks involving situation awareness solutions.
Keywords - SCADA security, computer and network vulnerability assessment, process control systems, Intrusion Detection, Cyber Security
I. INTRODUCTION Conventionally SCADA systems were considered
concerning safety and reliability and, when they were network linked, they were linked on closed private networks for the reason of management and control.
A critical infrastructure (CIs) is an interconnection of a set of systems and assets, either physical or virtual [1] that support 24/7 operation in the domain. Various critical infrastructures are large-scale, complex cyber-physical systems (CPSs) that are constantly increasing in volume and complexity. The sustainability of these systems is strongly based on defense systems for safe, secure, and reliable operation.
Cybersecurity Performance Measurement. Network security is challenging to evaluate, because of the fact that network negotiations occur constantly, often with user knowledge and more frequently lacking user knowledge. Assessing and estimating cybersecurity performance is
significant to lower risk. Increasing methodology and tactics develops a stronger defense for network security.
For critical systems security it is needed an approach based on trusted hardware, trusted software, and trusted management in their evolution. SCADA systems used in water management are large-scale systems, difficult to protect, include critical infrastructures (like spillways, dams, channels), and deliberated or accidentals attacks, could cause major damages. These attacks consist in malwares, viruses, Trojans hardware, communication attacks (interrupts or interferences on communication channels).
Recently it has a growth in the amount of cyber-attacks against critical SCADA systems at power generation, water treatment facilities, petroleum production, nuclear energy [2].
II. OVERVIEW ON SECURITY OF CRITICAL SCADA SYSTEMS
A. Analysis of Critical Infrastructure Protection SCADA system vulnerabilities and their possible risk are
depicted below. From the critical security issues surrounding SCADA systems, can be underlined:
-Weak protocols make systems vulnerable;
-Standard operating systems (Windows/Unix) make the device open toward security vulnerabilities;
-SCADA networks do not assure overall segmentation;
-SCADA don’t ensure antivirus protection;
-The majority IP-based communications within the SCADA network are based on unencrypted communications;
-Generally SCADA systems present limited or no logging enabled;
-Several companies are still strongly based on physical security measures;
-Mobile devices are not managed by intrusion-detection and prevention systems.
Threats to SCADA systems are classified into two key types: directed threats such as industrial sabotage and coordinated terrorist attacks, and indirect threats like
operational errors and viruses (the impacts of both groups of threat being critical). Possible consequences involve: critical disruption to critical infrastructure, deficiency of system availability, process stoppage, equipment break, damage of data and confidentiality, penalties coming from frequent disturbances, client and public trust alteration.
B. Malwares and viruses Malware represents software components that exhibit
malicious behavior including viruses, botnets worms, and Trojans horses. They could affect critical physical infrastructures in inadequate security implementations. New malware attacks are based on knowledge regarding application structure. These malwares affect mainly data structures, and less execution software. They are encountered at all SCADA system levels: (i) at PLCs level (were detected malware that alter DLLs files); (ii) at dispatching level (data compliance in relational databases, modify trigger levels). These malwares target is industrial control systems, and exploit unpatched vulnerabilities. Their manifestations include: infect and hide in removable drives, propagates through network shares by SMB protocol, copy their selves to database server by SQL injection, are copied to another computer by print spooler vulnerabilities, use peer-to peer communication for update [3].
In case of potential security incidents, several challenges exist for conducting an effective forensic investigation [4]. Forensic investigation actions are focused on understanding the cause and effects of the intrusion on SCADA systems, in order to improve their cyber defense. Digital forensics is achieved on digital devices and is used to examine the origin and effect of an incident. Forensic practice becomes critical to discover the traces of an attack and acquire evidence beside the entity trying to damage the critical infrastructure. From a forensic viewpoint, SCADA systems may be considered in several layers, based on the connectivity of the different SCADA components and their network connectivity with other networks like the Internet: (i) layer 0 (individual field devices connected via bus network); (ii) layer 1 (controllers that receive input signals from the field devices and other controllers upon which they perform operations to steer the individual field devices, by sending output signals to them); (iii) layer 2 (supervisory network - local network connected to the lower layers for specific operations); (iv) layer 3 (operation demilitarizes zone DMZ, where historians, domain controllers and application servers are located); (v) layer 4, 5 (enterprise IT networks, business servers operate).
Mainly the SCADA systems forensic analysis employs the all layers those contain SCADA critical components.
The methodology that facilitates the forensics in SCADA systems recommends:
• Data acquisition plan - The acquisition process has to be quick and suitably targeted to acquiring the most significant data connected with an incident. The plan should outline what data have to be acquired for which incidents.
• Data acquisition monitoring - In forensic acquisition, there is a risk of disturbing the SCADA services availability. The risk may be reduced if the availability of SCADA system
services may be monitored during the data acquisition, thus the acquisition process may be blocked in any critical perturbation.
• Lightweight data acquisition - The data acquisition tools have to ensure a minimum impact on system resources, so that sufficient resources to be available for SCADA system services to operate accurately during the data acquisition process.
• Restrictions of forensic analysis tools on SCADA systems - Forensic analysis tools may not support the certain features of diverse SCADA environments, supporting SCADA protocols and different SCADA applications’ proprietary log format.
C. Trusted Hardware Because SCADA components include untrusted factories,
in these complex system could appear duplicated, cloned components, unwired components, or serial ports acting like radio antenna for intruders, or even hardware Trojans. In order to prevent this kind of threats the research community proposed new hardware Trojan taxonomy for a better understanding of the damages and their prevention [5]. Proposed hardware Trojan taxonomy is based on following attributes: (i)insertion phase (specification, design, fabrication, testing, assembling and package); (ii)abstraction level (system level, development environment, register-transfer level, gate level, physical level); (iii)activation mechanism (always on, triggered); (iv)effects (change the functionality, downgrade performance, leak information, denial of service); (v)location (processor, memory, input/output, clock grid).
Hardware Trojans taxonomy validation have to takes into account coverage (should be classified all Trojans) and resolution (should be distinguished Trojans having distinct capabilities or required countermeasures) criteria. Different Trojan may be identified related to their insertion phase, at the design, fabrication, or testing system stage.
D. Networking and mobility The enhancing networked and linked infrastructure of latest
SCADA systems has made initial security strategies outdated. By adding new applications, remote access points and links to other control systems, were introduced critical online risks and vulnerabilities that cannot be approached by physical control rules. These risks are misevaluated because of the network architecture complexity, the lack of proper network security strategies and suppositions related to the network privacy. The security of these systems signifies more than physically detaching the system and the components that are controlled and monitored.
Mobile security. Mobile devices ensuring improved features, has sustained employees to exploit these at work for complex missions. Mobile devices present a wide attack surface, by using several third-part software applications and could be connected to networks in various modes [6].
Mobile security relies on a data-security approach, involving: (i) a secure browser for delivery and access to company applications; (ii) data and applications isolation related to other components of a device; (iii) robust online/offline access credential.
E. Overview Summary For achieving security of SCADA systems is necessary to
implement the data and the system structure and functions protection. This means to enhance the security mechanisms in the knowledge domain (architectures, plans, topologies, protocols).
There are requirements related to approaches and practices to build up proactive security plans, and guidance for successfully incorporating cybersecurity into organizational procedures.
Defense mechanisms are commonly implemented according with system security priorities and criticality. SCADA systems require particular security method, since unavailability of data or resources or alteration of their content may trigger a key security risk, instead of basically posing a threat to confidentiality.
In order to reduce possible online vulnerabilities and threats the SCADA owners, frequently needs the assistance of a security partner that detains both expertise in vulnerability assessment and planning, and broad skill operating SCADA and Process Control Systems.
Lately was proposed a new protection paradigm Wide-Area Situational Awareness (WASA) in order to achieve dynamic prevention and responsive services. Relevant companies involved in CIs development, together with international standards organizations, recommend the requirements for WASA that is classified as one of the key priority areas to be considered when defending CIs like smart grids [7]. Situational awareness is relate to the knowledge state (high-level information), justifying what an application domain is experiencing at one specified point in time.
There are demanded specific techniques for building awareness and integrating cybersecurity into the utility company and operational background. Actions may be focused on particular procedures that enhance efficiency of interfacing with peers, staff, and proactively connection of the management [8].
Cyber Security for SCADA Utilities. There are several attempts for exploring the diversity of challenges occurring while securing Industrial Control Protocol (ICP) networks, encountered in SCADA utility environments. These approaches address the limitations of existing solutions and offer new technologies to deal with several vulnerabilities intrinsic in communication networks [9].
III. CASE STUDY – SCADA FOR WATER MANAGEMENT IN EXTREME CONDITIONS (FLOODS AND DROUGHTS) ON LARGE
RIVER CATCHMENT The article illustrates how to implement a protection
structure to cyber attacks and treats on a critical infrastructure for surface water management in a hydrographic basin. It is a basin where there are over 80 automatic measuring stations: i)hydrological (water level, flow, speed, temperature); ii)pluvial (level of liquid and solid precipitations); iii)meteorological information. Additional, control architecture includes another eleven stations, involved in control operations
of different permanent or temporary accumulations, as well as dams related to these.
Now a comprehensive Decision Support Systems for pro- active operation of cascade reservoirs in extreme conditions (floods and droughts) is in implementation stage. The project purpose will be to examine the predictive operation rules of the spillways and bottom gates of a cascade of reservoirs in order to obtain the maximum attenuation of the extreme conditions for the whole river stretch as well as for the downstream, taking into consideration technological constraints, like: (i) the maximum volume in the reservoirs; (ii) the maximum gradients of the water increase or decrease in the reservoirs; (iii) the maximum value of the water depth on the spillways; (iv) the maximum discharge acceptable downstream reservoirs; (v) the elimination of strong discharge variation downstream reservoirs; (vi) type of soil, type of crops, relief etc. Flood attenuation and drought mitigation will be achieved both on permanent and temporary reservoirs (polders) using complex decision and control systems [10].
SCADA system architecture for dispatching at zonal water authority level the river showed in fig. 1. At the zonal dispatcher there are acquired data from measure hydrological stations, located on different water courses, and from reservoirs SCADA stations.
Zonal dispatcher perform analyses on gathered data, prognosis, predictions, and send data toward national dispatcher, or in danger, emits warnings to inhabited areas from scope of action. Zonal SCADA server achieves the following functions: monitoring, control, alarms management, communication, historical archives, reports, maintenance.
Fig. 1. SCADA zonal dispaching unit for a large river with redundancy
Graphic stations, after connecting to this server, allows monitoring and control of all the processes performed on reservoir SCADA station, by the means of user graphic
interfaces. The main functions of architectural components are:
Zonal dispatching SCADA servers ensure: (i)communication with water stocks management system, and with superior hierarchical level (national dispatcher); (ii)communication with meteorological and hydrological data monitoring systems, at basin level; (iii)management functions related to water stocks; (iv)facilities for generating reports related to water storage, available capacity of reservoirs and polders, maintenance actions.
Graphic server: ensure graphical panel control.
Database server ensure: (i)storage of a certain minimum number of acquired data (considered critical); (ii)long-term archive generation for all SCADA data; (iii)trend analysis mechanisms implementation.
Communication with accumulation SCADA station level is achieved through a GPRS router, equipped with a firewall. Protocols involved in this connection are industrial type, with deterministic response time: IEC 60870-5-104, IEC 61850, Modbus/TCP, EtherNet/IP, DNP3, OPC-UA.
SCADA architecture at zonal dispatching level can be extended by ensuring partial/entire redundancy at the level of data hubs/routers, servers, and communication channels.
Entire system availability and reliability requirements (expressed on the base of some primary indicators: reliability, availability, maintainability, maintenance, redundancy), impose effective system architecture, together with equipment redundancy level. Above mentioned SCADA systems vulnerability is due to low-cost interconnection solutions of different equipment [2].
Fig. 2. SCADA traffic monitoring
The defense mechanism implemented is based on data traffic analysis between monitoring stations of hydrologic and climate parameters and the river dispatching level. The SCADA system layered structure is presented in figure 2 and illustrates the connections with remote hydrometric, pluviometric, meteorological station and sub-SCADA systems for reservoir and their dam monitoring. These remote stations monitor wired and wireless sensors and wireless network of sensors having different types.
In this context in the SCADA described are used security techniques related to: (i)firewall, intrusion detection system (IDS) and DMZ usage; (ii)unidirectional data channels; (iii)separate commands channels; (iv)data traffic volume (when the traffic exceeded); (v)encryption of data and commands; (vi)dynamic encryption codes; (vii)access of operator at critical HMI and historical databases, only after authentication, (based on “username/password”, biometric parameters or other techniques); (vii)mobile device remote access/authentication (when using wireless and Bluetooth networks); (ix)secured operational access based on water management corporate virtual private networks.
In figure 3 is presented the principle schema for the mechanisms related to SCADA flows traffic analysis (data and commands), achieved at the cyber security layer. There are performed port monitoring (once excepted from firewall) network protocol pattern recognition (Modbus TCP/UDP), and server applications (OPC, database, diagnosis, remote access services), network activity (logging/authentication, data/configuration request, data storage). Security mechanisms are prioritized according with different intrusion detection taxonomy.
Fig. 3. SCADA traffic monitoring
There are performed port monitoring (once excepted from firewall) network protocol pattern recognition (Modbus TCP/UDP), and server applications (OPC, database, diagnosis, remote access services), network activity (logging/authentication, data/configuration request, data storage). Security mechanisms are prioritized according with different intrusion detection taxonomy. Cyber security is accomplished in concordance with different operational scenarios (when corporate information is properly managed and limited).
Network traffic traces allow investigation of patterns related to SCADA network activity. Network traffic analysis
may be classified into four major types: traffic matrix, traffic volume, traffic dynamics, and traffic mixture measurement.
Ex post incident analysis (first step in digital forensic procedure). The main purpose of an ex post incident analysis is to find significant data related security incidents to generate an in-depth knowledge of events occurred. By investigating diverse system components, may be obtained useful knowledge. This allow to: (i)generate a body of strong evidence, to answer to the changing type of threats, diminishing the outages of SCADA systems; (ii)assure that sufficient studying was done for deploying durable systems.
Security measures. To increase the security of SCADA systems, it is critical to improve the security aspects of SCADA protocols. This is conducted by analyzing these protocols, such as Modbus, and identify the present vulnerabilities. Main advices on protecting Modbus RTU/ASCII, are related to: (i)traffic monitoring or logging; (ii)intrusion detection use; (iii)external SCADA links have to be encrypted if feasible; (iv)protection via firewalls or virtual private networks (VPNs) for links to trusted 3rd parties.
Modbus TCP allows SCADA attackers the ability to exploit a system despite the place. The text protocol format causes it vulnerable. Monitoring and sniffing of significant data can be collected without problems, and passwords may be gathered from the communication.
IPsec VPN link have to be employed to encapsulate the traffic when it is crossed a vulnerable environment.
In river dispatching SCADA network, following the recommendations [4] for capturing and analyzing sensor data and control actions, it is designed a network-forensic architecture that will be also use in IDS. This architecture involves two components: agents and data bases structures. The agents are positioned at strategic places inside SCADA, to capture the network traffic in its local network segment and forward a significant part of packets (synopsis) to the data bases. After the analysis of the synopsis it is generate its digital signature. These signatures will be verified related to several intrusion detection ones.
Fig. 4. Preliminary ahitecture of software agents for IDS
Complementary to static policy-verification technique, above mentioned, the SCADA systems for river basins propose dynamic policy evaluations. They are focused on
security decisions, designed based on mechanisms for collaborative decentralized strategy enforcement that may be revisited at any time. The exchanged information includes policy decisions made by the various components during the session, changes in session environment – like when traffic starts arriving and information from the sensors, including intrusion detection system, behavior-based anomaly detectors. Dynamic policy evaluation model is reevaluated when new information is available, and privileges are revoked or restricted [11].
IV. CONCLUSION AND FUTURE WORK Security represents a great problem in SCADA systems,
those are critical infrastructures. The design of software components involved in ensuring the systems security begins with analyzing of system components, their operational context, and potential intruders.
Presented paper investigates security techniques involved in data transfer and automation equipment’s physical layer, exposed by scientific community, and applies them to a SCADA system from the field of surface water management, achieved in order to sustain operator decisions related to critical situations, like floods or drought. Authors present several implemented security mechanisms, targeting the cyber layer.
Investigations of different security incidents generate useful knowledge that may be employed to consolidate the SCADA system beside potential attacks and diminish the consequence of these incidents by integrating the suitable proactive protection procedures.
Deficiencies inside SCADA architecture enhance the risk that internet based concessions may compromise the SCADA system. The most frequent architectural weak points are: (i)configuration of file transfer protocol (FTP), web, and e- mail servers provide unrequested internal SCADA network access; (ii)networks links with SCADA partners could not be secluded by a firewall; (iii)access via dial-up modem is granted without need and dial access rules are frequently skipped.
The growth of SCADA networks interconnectivity induces an increasing risk of cyber attacks and thus there is a critical necessitate to enhance the security of these SCADA networks.
Usually SCADA systems developed based on reliability, availability, and speed, pay no or little attention to security. Particularly Modbus is exposed at inherent protocol vulnerabilities generated by the lack of common security mechanisms in the protocol like authentication, confidentiality and integrity. The huge Internet expansion, sustain protocol producers to include the ability of these protocols to incorporate TCP/IP. This generated several robustness
questions, like simple framing formats and lack of structure, that allow attacks to be performed in an undemanding way.
For future, it is intended to extend accomplished analysis on SCADA traffic, including the classification of the flow arrival process and the regular patterns mining. Regarding the possible developments, may be achieved models for traffic tracking for the purpose of intruders’ detections and these models will serve to dynamic adaptation of the security configuration applied at one time. Also, security components could be equipped with learning modules, those enhanced the system features with the experiences gained on detected intrusive situations.
ACKNOWLEDGMENT This work was supported by a grant of the Romanian
National Authority for Scientific Research, CNDI– UEFISCDI, project number PN-II-PT-PCCA-2011-3.2-0344 - “Pro-active operation of cascade reservoirs in extreme conditions (floods and droughts) using a Comprehensive Decision Support Systems (CDSS). Case study: Jijia catchment”. The authors would like to thank SC IPA SA, Cluj Subsidiary for helpful and constructive remarks and implication on achieving the paper.
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