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Each "thing" is provided a unique identifier and the ability to automatically transfer data over a network. Allowing devices to connect to the internet opens them up to a number of serious vulnerabilities if they are not properly protected.\r\nIoT security has become the subject of scrutiny after a number of high-profile incidents where a common IoT device was used to infiltrate and attack the larger network. Implementing security measures is critical to ensuring the safety of networks with IoT devices connected to them.\r\nIoT security hacks can happen in any industry, from smart home to a manufacturing plant to a connected car. The severity of impact depends greatly on the individual system, the data collected and/or the information it contains.\r\nAn attack disabling the brakes of a connected car, for example, or on a connected health device, such as an insulin pump hacked to administer too much medication to a patient, can be life-threatening. Likewise, an attack on a refrigeration system housing medicine that is monitored by an IoT system can ruin the viability of a medicine if temperatures fluctuate. Similarly, an attack on critical infrastructure -- an oil well, energy grid or water supply -- can be disastrous.\r\nSo, a robust IoT security portfolio must allow protecting devices from all types of vulnerabilities while deploying the security level that best matches application needs. Cryptography technologies are used to combat communication attacks. Security services are offered for protecting against lifecycle attacks. Isolation measures can be implemented to fend off software attacks. And, finally, IoT security should include tamper mitigation and side-channel attack mitigation technologies for fighting physical attacks of the chip.","materialsDescription":" <span style=\"font-weight: bold;\">What are the key requirements of IoT Security?</span>\r\nThe key requirements for any IoT security solution are:\r\n<ul><li>Device and data security, including authentication of devices and confidentiality and integrity of data</li><li>Implementing and running security operations at IoT scale</li><li>Meeting compliance requirements and requests</li><li>Meeting performance requirements as per the use case</li></ul>\r\n<span style=\"font-weight: bold;\">What do connected devices require to participate in the IoT Securely?</span>\r\nTo securely participate in the IoT, each connected device needs a unique identification – even before it has an IP address. This digital credential establishes the root of trust for the device’s entire lifecycle, from initial design to deployment to retirement.\r\n<span style=\"font-weight: bold;\">Why is device authentication necessary for the IoT?</span>\r\nStrong IoT device authentication is required to ensure connected devices on the IoT can be trusted to be what they purport to be. Consequently, each IoT device needs a unique identity that can be authenticated when the device attempts to connect to a gateway or central server. With this unique ID in place, IT system administrators can track each device throughout its lifecycle, communicate securely with it, and prevent it from executing harmful processes. If a device exhibits unexpected behavior, administrators can simply revoke its privileges.\r\n<span style=\"font-weight: bold;\">Why is secure manufacturing necessary for IoT devices?</span>\r\nIoT devices produced through unsecured manufacturing processes provide criminals opportunities to change production runs to introduce unauthorized code or produce additional units that are subsequently sold on the black market.\r\nOne way to secure manufacturing processes is to use hardware security modules (HSMs) and supporting security software to inject cryptographic keys and digital certificates and to control the number of units built and the code incorporated into each.\r\n<span style=\"font-weight: bold;\">Why is code signing necessary for IoT devices?</span>\r\nTo protect businesses, brands, partners, and users from software that has been infected by malware, software developers have adopted code signing. In the IoT, code signing in the software release process ensures the integrity of IoT device software and firmware updates and defends against the risks associated with code tampering or code that deviates from organizational policies.\r\nIn public key cryptography, code signing is a specific use of certificate-based digital signatures that enables an organization to verify the identity of the software publisher and certify the software has not been changed since it was published.\r\n<span style=\"font-weight: bold;\">What is IoT PKI?</span>\r\nToday there are more things (devices) online than there are people on the planet! Devices are the number one users of the Internet and need digital identities for secure operation. As enterprises seek to transform their business models to stay competitive, rapid adoption of IoT technologies is creating increasing demand for Public Key Infrastructures (PKIs) to provide digital certificates for the growing number of devices and the software and firmware they run.\r\nSafe IoT deployments require not only trusting the devices to be authentic and to be who they say they are, but also trusting that the data they collect is real and not altered. If one cannot trust the IoT devices and the data, there is no point in collecting, running analytics, and executing decisions based on the information collected.\r\nSecure adoption of IoT requires:\r\n<ul><li>Enabling mutual authentication between connected devices and applications</li><li>Maintaining the integrity and confidentiality of the data collected by devices</li><li>Ensuring the legitimacy and integrity of the software downloaded to devices</li><li>Preserving the privacy of sensitive data in light of stricter security regulations</li></ul>","iconURL":"https://old.roi4cio.com/fileadmin/user_upload/iot.png","alias":"iot-internet-of-things-security"},"836":{"id":836,"title":"DRP - Digital Risk Protection","description":"Digital risks exist on social media and web channels, outside most organization's line of visibility. Organizations struggle to monitor these external, unregulated channels for risks targeting their business, their employees or their customers.\r\nCategories of risk include cyber (insider threat, phishing, malware, data loss), revenue (customer scams, piracy, counterfeit goods) brand (impersonations, slander) and physical (physical threats, natural disasters).\r\nDue to the explosive growth of digital risks, organizations need a flexible, automated approach that can monitor digital channels for organization-specific risks, trigger alerts and remediate malicious posts, profiles, content or apps.\r\nDigital risk protection (DRP) is the process of protecting social media and digital channels from security threats and business risks such as social engineering, external fraud, data loss, insider threat and reputation-based attacks. DRP reduces risks that emerge from digital transformation, protecting against the unwanted exposure of a company’s data, brand, and attack surface and providing actionable insight on threats from the open, deep, and dark web.<br /><br />","materialsDescription":"<span style=\"font-weight: bold;\">What is a digital risk?</span>\r\nDigital risks can take many forms. Most fundamentally, what makes a risk digital? Digital risk is any risk that plays out in one form or another online, outside of an organization’s IT infrastructure and beyond the security perimeter. This can be a cyber risk, like a phishing link or ransomware via LinkedIn, but can also include traditional risks with a digital component, such as credit card money flipping scams on Instagram.\r\n<span style=\"font-weight: bold;\">What are the features of Digital Risk Protection?</span>\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">The features are:</span></span>\r\n<ul><li>Protecting yourself from digital risk by building a watchtower, not a wall. A new Forrester report identifies two objectives for any digital risk protection effort: identifying risks and resolving them.</li><li>Digital risk comes in many forms, like unauthorized data disclosure, threat coordination from cybercriminals, risks inherent in the technology you use and in your third-party associates and even from your own employees.</li><li>The best solutions should automate the collection of data and draw from many sources; should have the capabilities to map, monitor, and mitigate digital risk and should be flexible enough to be applied in multiple use cases — factors that many threat intelligence solutions excel in.</li></ul>\r\n<span style=\"font-weight: bold;\">What elements constitute a digital risk?</span>\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Unauthorized Data Disclosure</span></span>\r\nThis includes the theft or leakage of any kind of sensitive data, like the personal financial information of a retail organization’s customers or the source code for a technology company’s proprietary products.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Threat Coordination Activity</span></span>\r\nMarketplaces and criminal forums on the dark web or even just on the open web are potent sources of risk. Here, a vulnerability identified by one group or individual who can’t act on it can reach the hands of someone who can. This includes the distribution of exploits in both targeted and untargeted campaigns.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Supply Chain Issues</span></span>\r\nBusiness partners, third-party suppliers, and other vendors who interact directly with your organization but are not necessarily following the same security practices can open the door to increased risk.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Employee Risk</span></span>\r\nEven the most secure and unbreakable lock can still easily be opened if you just have the right key. Through social engineering efforts, identity or access management and manipulation, or malicious insider attacks coming from disgruntled employees, even the most robust cybersecurity program can be quickly subverted.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Technology Risks</span></span>\r\nThis broad category includes all of the risks you must consider across the different technologies your organization might rely on to get your work done, keep it running smoothly, and tell people about it.\r\n<ul><li><span style=\"font-weight: bold;\">Physical Infrastructure:</span> Countless industrial processes are now partly or completely automated, relying on SCADA, DCS, or PLC systems to run smoothly — and opening them up to cyber- attacks (like the STUXNET attack that derailed an entire country’s nuclear program).</li><li><span style=\"font-weight: bold;\">IT Infrastructure:</span> Maybe the most commonsensical source of digital risk, this includes all of the potential vulnerabilities in your software and hardware. The proliferation of the internet of things devices poses a growing and sometimes underappreciated risk here.</li><li><span style=\"font-weight: bold;\">Public-Facing Presence:</span> All of the points where you interact with your customers and other public entities, whether through social media, email campaigns, or other marketing strategies, represent potential sources of risk.</li></ul>","iconURL":"https://old.roi4cio.com/fileadmin/user_upload/icon_Digital_Risk_Protection.png","alias":"drp-digital-risk-protection"},"856":{"id":856,"title":"Secure Communications","description":" <span style=\"font-weight: bold;\">Secure communication</span> is when two entities are communicating and do not want a third party to listen in. For that, they need to communicate in a way not susceptible to eavesdropping or interception. Secure communication includes means by which people can share information with varying degrees of certainty that third parties cannot intercept what was said. Other than spoken face-to-face communication with no possible eavesdropper, it is probably safe to say that no communication is guaranteed secure in this sense, although practical obstacles such as legislation, resources, technical issues (interception and encryption), and the sheer volume of communication serve to limit surveillance.\r\nWith many communications taking place over long distances and mediated by technology, and increasing awareness of the importance of interception issues, technology, and its compromise are at the heart of this debate.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Encryption</span></span> is a method in which data is rendered hard to read by an unauthorized party. Since encryption methods are created to extremely hard to break, many communication methods either use deliberately weaker encryption than possible or have backdoors inserted to permit rapid decryption. In some cases, government authorities have required backdoors to be installed in secret. Many methods of encryption are also subject to "man in the middle" attack whereby a third party who can 'see' the establishment of the secure communication is made privy to the encryption method, this would apply for example to the interception of computer use at an ISP. Provided it is correctly programmed, sufficiently powerful, and the keys not intercepted, encryption would usually be considered secure.\r\nEncryption can be implemented in a way that requires the use of encryption, i.e. if encrypted communication is impossible then no traffic is sent, or opportunistically. Opportunistic encryption is a lower security method to generally increase the percentage of generic traffic which is encrypted. This is analogous to beginning every conversation with "Do you speak Navajo?" If the response is affirmative, then the conversation proceeds in Navajo, otherwise, it uses the common language of the two speakers. This method does not generally provide authentication or anonymity but it does protect the content of the conversation from eavesdropping.\r\nAn Information-theoretic security technique known as physical layer encryption ensures that a wireless communication link is provably secure with communications and coding techniques.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Steganography</span></span> ("hidden writing") is also the means by which data can be hidden within other more innocuous data. Thus a watermark proving ownership embedded in the data of a picture, in such a way it is hard to find or remove unless you know how to find it. Or, for communication, the hiding of important data (such as a telephone number) in apparently innocuous data (an MP3 music file). An advantage of steganography is plausible deniability, that is unless one can prove the data is there (which is usually not easy), it is deniable that the file contains any.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Identity-based networks</span></span> are one of the tools to obtain security. Unwanted or malicious behavior is possible on the web since the internet is inherently anonymous. True identity-based networks replace the ability to remain anonymous and are inherently more trustworthy since the identity of the sender and recipient are known. (The telephone system is an example of an identity-based network.)\r\nRecently, <span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">anonymous networking</span></span> also has been used to secure communications. In principle, a large number of users running the same system can have communications routed between them in such a way that it is very hard to detect what the complete message is, which user sent it, and where it is ultimately coming from or going to. Examples are Crowds, Tor, I2P, Mixminion, various anonymous P2P networks, and others.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Anonymous communication devices</span></span> are also one of the tools to obtain security. In theory, an unknown device would not be noticed, since so many other devices are in use. This is not altogether the case in reality, due to the presence of systems such as Carnivore and Echelon, which can monitor communications over entire networks and the fact that the far end may be monitored as before. Examples include payphones, Internet cafes, etc.\r\nPrograms offering more security are <span style=\"font-weight: bold;\">secure instant messaging, VoIP, secure email, IRC and webchat,</span> and so on.","materialsDescription":" <span style=\"font-weight: bold; \">What are the types of security?</span>\r\nSecurity can be broadly categorized under the following headings, with examples:\r\n<span style=\"font-style: italic; \"><span style=\"font-weight: bold; \">1. Hiding the content or nature of a communication</span></span>\r\n<ul><li><span style=\"font-style: italic; \">Code</span> – a rule to convert a piece of information (for example, a letter, word, phrase, or gesture) into another form or representation (one sign into another sign), not necessarily of the same type. In communications and information processing, encoding is the process by which information from a source is converted into symbols to be communicated. Decoding is the reverse process, converting these code symbols back into information understandable by a receiver. One reason for coding is to enable communication in places where ordinary spoken or written language is difficult or impossible. For example, semaphore, where the configuration of flags held by a signaler or the arms of a semaphore tower encodes parts of the message, typically individual letters, and numbers. Another person standing a great distance away can interpret the flags and reproduce the words sent.</li><li><span style=\"font-style: italic; \">Encryption</span></li><li><span style=\"font-style: italic; \">Steganography</span></li><li><span style=\"font-style: italic; \">Identity-Based</span></li></ul>\r\n<span style=\"font-style: italic; \"><span style=\"font-weight: bold; \">2. Hiding the parties to a communication – preventing identification, promoting anonymity</span></span>\r\n<ul><li>"Crowds" and similar anonymous group structures – it is difficult to identify who said what when it comes from a "crowd"</li><li>Anonymous communication devices – unregistered cellphones, Internet cafes</li><li>Anonymous proxies</li><li>Hard to trace routing methods – through unauthorized third-party systems, or relays</li></ul>\r\n<span style=\"font-style: italic; \"><span style=\"font-weight: bold; \">3. Hiding the fact that communication takes place</span></span>\r\n<ul><li>"Security by obscurity" – similar to a needle in a haystack</li><li>Random traffic – creating random data flow to make the presence of genuine communication harder to detect and traffic analysis less reliable</li></ul>\r\nEach of the three is important, and depending on the circumstances any of these may be critical. For example, if a communication is not readily identifiable, then it is unlikely to attract attention for identification of parties, and the mere fact communication has taken place (regardless of content) is often enough by itself to establish an evidential link in legal prosecutions. It is also important with computers, to be sure where the security is applied, and what is covered.\r\n<span style=\"font-weight: bold; \">What are the methods used to "break" security?</span>\r\n<span style=\"font-style: italic; \"><span style=\"font-weight: bold; \">Bugging</span></span>\r\nThe placing covertly of monitoring and/or transmission devices either within the communication device, or in the premises concerned.\r\n<span style=\"font-style: italic; \"><span style=\"font-weight: bold; \">Computers (general)</span></span>\r\nAny security obtained from a computer is limited by the many ways it can be compromised – by hacking, keystroke logging, backdoors, or even in extreme cases by monitoring the tiny electrical signals given off by keyboard or monitors to reconstruct what is typed or seen (TEMPEST, which is quite complex).\r\n<span style=\"font-style: italic; \"><span style=\"font-weight: bold; \">Laser audio surveillance</span></span>\r\nSounds, including speech, inside rooms, can be sensed by bouncing a laser beam off a window of the room where a conversation is held and detecting and decoding the vibrations in the glass caused by the sound waves.\r\n<span style=\"font-weight: bold; \">What are the systems offering partial security?</span>\r\n<span style=\"font-weight: bold; \">Anonymous cellphones.</span> Cellphones can easily be obtained, but are also easily traced and "tapped". There is no (or only limited) encryption, the phones are traceable – often even when switched off – since the phone and SIM card broadcast their International Mobile Subscriber Identity (IMSI). It is possible for a cellphone company to turn on some cellphones when the user is unaware and use the microphone to listen in on you, and according to James Atkinson, a counter-surveillance specialist cited in the same source, "Security-conscious corporate executives routinely remove the batteries from their cell phones" since many phones' software can be used "as-is", or modified, to enable transmission without user awareness and the user can be located within a small distance using signal triangulation and now using built-in GPS features for newer models. Transceivers may also be defeated by jamming or Faraday cage.\r\nSome cellphones (Apple's iPhone, Google's Android) track and store users' position information so that movements for months or years can be determined by examining the phone.\r\n<span style=\"font-weight: bold; \">Landlines.</span> Analog landlines are not encrypted, it lends itself to being easily tapped. Such tapping requires physical access to the line which can be easily obtained from a number of places, e.g. the phone location, distribution points, cabinets and the exchange itself. Tapping a landline in this way can enable an attacker to make calls that appear to originate from the tapped line.\r\n<span style=\"font-weight: bold;\">Anonymous Internet.</span> Using a third-party system of any kind (payphone, Internet cafe) is often quite secure, however, if that system is used to access known locations (a known email account or 3rd party) then it may be tapped at the far end, or noted, and this will remove any security benefit obtained. Some countries also impose mandatory registration of Internet cafe users.\r\nAnonymous proxies are another common type of protection, which allows one to access the net via a third party (often in a different country) and make tracing difficult. Note that there is seldom any guarantee that the plaintext is not tappable, nor that the proxy does not keep its own records of users or entire dialogs. As a result, anonymous proxies are a generally useful tool but may not be as secure as other systems whose security can be better assured. Their most common use is to prevent a record of the originating IP, or address, being left on the target site's own records. Typical anonymous proxies are found at both regular websites such as Anonymizer.com and spynot.com, and on proxy sites which maintain up to date lists of large numbers of temporary proxies in operation.\r\nA recent development on this theme arises when wireless Internet connections ("Wi-Fi") are left in their unsecured state. The effect of this is that any person in range of the base unit can piggyback the connection – that is, use it without the owner being aware. Since many connections are left open in this manner, situations where piggybacking might arise (willful or unaware) have successfully led to a defense in some cases, since it makes it difficult to prove the owner of the connection was the downloader or had knowledge of the use to which unknown others might be putting their connection. An example of this was the Tammie Marson case, where neighbors and anyone else might have been the culprit in the sharing of copyright files. Conversely, in other cases, people deliberately seek out businesses and households with unsecured connections, for illicit and anonymous Internet usage, or simply to obtain free bandwidth.\r\n<span style=\"font-weight: bold;\">Programs offering more security.</span>\r\n<span style=\"font-weight: bold;\"><span style=\"font-style: italic;\">Secure instant messaging</span></span> – Some instant messaging clients use end-to-end encryption with forwarding secrecy to secure all instant messages to other users of the same software. Some instant messaging clients also offer end-to-end encrypted file transfer support and group messaging.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">VoIP</span></span> – Some VoIP clients implement ZRTP and SRTP encryption for calls.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">Secure email</span></span> – some email networks are designed to provide encrypted and/or anonymous communication. They authenticate and encrypt on the users own computer, to prevent transmission of plain text, and mask the sender and recipient. Mixminion and I2P-Bote provide a higher level of anonymity by using a network of anonymizing intermediaries, similar to how Tor works, but at a higher latency.\r\n<span style=\"font-style: italic;\"><span style=\"font-weight: bold;\">IRC and webchat</span></span> – Some IRC clients and systems use client-to-server encryption such as SSL/TLS. This is not standardized.","iconURL":"https://old.roi4cio.com/fileadmin/user_upload/diseno-plano-de-icon.png","alias":"secure-communications"}},"branches":"Information Technology","companySizes":"1 to 50 Employees","companyUrl":"https://www.assertion.cloud/","countryCodes":[],"certifications":[],"isSeller":true,"isSupplier":false,"isVendor":true,"presenterCodeLng":"","seo":{"title":"SmarterHi Communications","keywords":"","description":" SmarterHi Communications is the creator of Assertion, a software product that manages compliance of any enterprise application. The automation greatly enhances the quality of compliance, at a fraction of the cost of manual compliance.<br />Being highly custom","og:title":"SmarterHi Communications","og:description":" SmarterHi Communications is the creator of Assertion, a software product that manages compliance of any enterprise application. 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