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Thursday, January 18, 2024

Cynet's Keys To Extend Threat Visibility

 


We hear about the need for better visibility in the cybersecurity space – detecting threats earlier and more accurately. We often hear about the dwell time and the time to identify and contain a data breach. Many of us are familiar with IBM's Cost of a Data Breach Report that has been tracking this statistic for years. In the 2021 report, IBM found that, on average, it takes an average of 212 days to identify a breach and then another 75 days to contain the breach, for a total of 287 days.

A new solution overview document provides insights on how XDR provider Cynet tackles the difficult problem of greatly improving threat visibility. Cynet takes a modern approach that includes a greater level of native technology integration and advanced automation purposely designed for organizations with smaller security teams than Fortune 500 organizations. A live webinar will discuss the same topic (Register here)

Cynet's Keys for Threat Visibility

Einstein said that the definition of insanity is doing the same thing over and over while expecting a different outcome. The old approach to threat visibility involving multiple protection technologies and trying to sift through a sea of alerts and information is obviously not working well. Cynet's different – and seemingly saner – approach to prevent, detect, and respond to modern-day threats involves several integrated capabilities.

According to the new Cynet solution overview, the following key technologies are used to provide extended threat visibility along with enhanced response capabilities.

Include Multiple Threat Detection Technologies

Cynet includes multiple prevention and detection technologies, all natively orchestrated in the platform:

  • NGAV – Fundamental endpoint protection based on known bad signatures and behaviors.
  • EDR – To detect and prevent more complex endpoint threats that bypass NGAV solutions.
  • NTA – To detect threats that have made their way into the network and so-called lateral movement.
  • UBA – To detect unusual activity that could signal stolen credentials, a rogue insider, or bots.
  • Deception – To uncover intrusions that have bypassed other detection technologies
  • CLM – To mine the extensive log data generated by IT systems.
  • SSPM – To find and correct configuration errors in SaaS applications.

Coordinate All Signals

Making sense out of multiple detection technologies by integrating, coordinating, and prioritizing information was supposed to be the realm of Security Incident and Event Management (SIEM) technologies. Unfortunately, SIEM doesn't do well with real-time data and requires significant care and feeding.

XDR solutions, like Cynet's, are purpose-built to integrate real-time signals from multiple points of telemetry on a single platform. Cynet even includes an Incident Engine that automatically investigates threats to determine the attack's full scope and root cause.

Automate All Response Actions

Quickly and accurately identifying threats is a game-changer. The ability to automatically and fully eradicate identified threats is, well, a game-changer changer. This means security teams won't have to be burdened with lengthy investigations, which many don't have the time or skills to undertake. Cynet provides an extensive set of remediation actions across files, hosts, networks and users as well as remediation playbooks that can be configured to be invoked manually or automatically.

Provide Full MDR Oversight

Beyond the technology platform, Cynet offers all clients a full, 24x7 MDR service at no additional cost. This team continuously monitors client environments to ensure nothing dangerous is overlooked or mishandled. Having an expert team watching out for issues should put smaller organizations with smaller security teams at ease, knowing an expert team of cybersecurity experts has their backs.

In With the New

With the time required to identify and contain data breaches steadily increasing, we need to rethink the traditional cybersecurity approach. It seems companies keep throwing more money, more technology, and more bodies at the problem, yet achieving the same (or worse) results. Cynet is one company that seems to be approaching the problem differently by combining multiple prevention, detection, response, and automation capabilities on a single, unified breach protection platform. Rather than buying all this stuff separately and munging it all together, the Cynet platform seems to expand and improve threat visibility out of the box.

Download the solution brief here

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Iranian Hackers Using New PowerShell Backdoor In Cyber Espionage Attacks

 


An advanced persistent threat group with links to Iran has updated its malware toolset to include a novel PowerShell-based implant called PowerLess Backdoor, according to new research published by Cybereason.

The Boston-headquartered cybersecurity company attributed the malware to a hacking group known as Charming Kitten (aka Phosphorous, APT35, or TA453), while also calling out the backdoor's evasive PowerShell execution.

"The PowerShell code runs in the context of a .NET application, thus not launching 'powershell.exe' which enables it to evade security products," Daniel Frank, senior malware researcher at Cybereason, said. "The toolset analyzed includes extremely modular, multi-staged malware that decrypts and deploys additional payloads in several stages for the sake of both stealth and efficacy."

The threat actor, which is active since at least 2017, has been behind a series of campaigns in recent years, including those wherein the adversary posed as journalists and scholars to deceive targets into installing malware and stealing classified information.


Earlier this month, Check Point Research disclosed details of an espionage operation that involved the hacking group exploiting the Log4Shell vulnerabilities to deploy a modular backdoor dubbed CharmPower for follow-on attacks.

The latest refinements to its arsenal, as spotted by Cybereason, constitutes an entirely new toolset that encompasses the PowerLess Backdoor, which is capable of downloading and executing additional modules such as a browser info-stealer and a keylogger.

Also potentially linked to the same developer of the backdoor are a number of other malware artifacts, counting an audio recorder, an earlier variant of the information stealer, and what the researchers suspect to be an unfinished ransomware variant coded in .NET.

Furthermore, infrastructure overlaps have been identified between the Phosphorus group and a new ransomware strain called Memento, which first emerged in November 2021 and took the unusual step of locking files within password-protected archives, followed by encrypting the password and deleting the original files, after their attempts to encrypt the files directly were blocked by endpoint protection.

"The activity of Phosphorus with regard to ProxyShell took place in about the same time frame as Memento," Frank said. "Iranian threat actors were also reported to be turning to ransomware during that period, which strengthens the hypothesis that Memento is operated by an Iranian threat actor."

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Wednesday, January 17, 2024

Insecure Features In PDFs

In 2019, we published attacks on PDF Signatures and PDF Encryption. During our research and studying the related work, we discovered a lot of blog posts, talks, and papers focusing on malicious PDFs causing some damage. However, there was no systematic analysis of all possible dangerous features supported by PDFs, but only isolated exploits and attack concepts.

We decided to fill this gap and systematize the possibilities to use legitimate PDF features and do bad stuff. We define four attack categories: Denial of Service, Information Disclosure, Data Manipulation, and Code Execution.

Our evaluation reveals 26 of 28 popular PDF processing applications are vulnerable to at least one attack. You can download all malicious PDFs here. You can also find more technical details in our NDSS'21 paper.

This is a joined work of Jens Müller, Dominik Noss, Christian Mainka, Vladislav Mladenov, and Jörg Schwenk.

Dangerous Paths: Overview

To identify attack vectors, we systematically surveyed which potentially dangerous features exist in the PDF specification. We created a comprehensive list with all PDF Actions that can be called. This list contains 18 different actions that we carefully studied.
 
 
We selected eight actions – the ones that directly or indirectly allow access to a file handle and may therefore be abused for dangerous features such as URL invocation or writing to files. Having a list of security-sensitive actions, we proceeded by investigating all objects and related events that can trigger these actions.

We identified four PDF objects which allow calling arbitrary actions (Page, Annotation, Field, and Catalog). Most objects offer multiple alternatives for this purpose. For example, the Catalog object, defines the OpenAction or additional actions (AA) events. Each event can launch any sequence of PDF actions, for example, Launch, Thread, etc. JavaScript actions can be embedded within documents. It  opens a new area for attacks, for example, new annotations can be created that can have actions which once again lead to accessing file handles.

Denial of Service

The goal of the denial of service class of attacks is enforcing to process PDF applications in consuming all available resources (i.e., computing time or memory) or causes them to crash by opening a specially crafted PDF document. We identified two variants: Infinite Loop and Deflate Bomb.

Infinite Loop

This variant induces an endless loop causing the program execution to get stuck. The PDF standard allows various elements of the document structure to reference to themselves, or to other elements of the same type.

  • Action loop: PDF actions allow to specify a Next action to be performed, thereby resulting in "action cycles".
  • ObjStm loop: Object streams may extend other object streams allows the crafting of a document with cycles.
  • Outline loop: PDF documents may contain an outline. Its entries, however, can refer to themselves or each other.
  • Calculations: PDF defines "Type 4" calculator functions, for example, to transform colors. Processing hard-to-solve mathematical formulas may lead to high demands of CPU.
  • JavaScript: Finally, in case the PDF application processes scripts within documents, infinite loops can be induced.

Deflate Bomb

Data amplification attacks based on malicious zip archives are well-known. The first publicly documented DoS attack using a "zip bomb" was conducted in 1996 against a Fidonet BBS administrator. However, not only zip files but also stream objects within PDF documents can be compressed using various algorithms such as Deflate to reduce the overall file size. 

Information Disclosure

The goal of this class of attacks is to track the usage of a document by silently invoking a connection to the attacker's server once the file is opened, or to leak PDF document form data, local files, or NTLM credentials to the attacker.

URL Invocation

PDF documents that silently "phone home" should be considered as privacy-invasive. They can be used, for example, to deanonymize reviewers, journalists, or activists behind a shared mailbox. The attack's goal is to open a backchannel to an attacker-controlled server once the PDF file is opened by the victim.

The possibility of malicious URI resolving in PDF documents has been introduced by Hamon [1] who gave an evaluation for URI and SubmitForm actions in Acrobat Reader. We extend their analysis to all standard PDF features that allow opening a URL, such as ImportData, Launch, GoToR, and JavaScript.

Form Data Leakage

Documents can contain forms to be filled out by the user – a feature introduced with PDF version 1.2 in 1996 and used on a daily basis for routine offices tasks, such as travel authorization or vacation requests. The idea of this attack is as follows: The victim downloads a form – a PDF document which contains form fields – from an attacker controlled source and fills it out on the screen, for example, in order to print it. The form is manipulated by the attacker in such a way that it silently send input data to the attacker's server.

Local File Leakage

The PDF standard defines various methods to embed external files into a document or otherwise access files on the host's file system, as documented below.

  • External streams: Documents can contain stream objects (e.g., images) to be included from external files on disk.
  • Reference XObjects: This feature allows a document to import content from another (external) PDF document.
  • Open Prepress Interface: Before printing a document, local files can be defined as low-resolution placeholders.
  • Forms Data Format (FDF): Interactive form data can be stored in, and auto-imported from, external FDF files.
  • JavaScript functions: The Adobe JavaScript reference enables documents to read data from or import local files.

If a malicious document managed to firstly read files from the victim's disk and secondly, send them back to the attacker, such behavior would arguably be critical.

Credential Theft

In 1997, Aaron Spangler posted a vulnerability in Windows NT on the Bugtraq mailing list [2]: Any client program can trigger a connection to a rogue SMB server. If the server requests authentication, Windows will automatically try to log in with a hash of the user's credentials. Such captured NTLM hashes allow for efficient offline cracking and can be re-used by applying pass-the-hash or relay attacks to authenticate under the user's identity. In April 2018, Check Point Research [3] showed that similar attacks can be performed with malicious PDF files. They found that the target of GoToR and GoToE actions can be set to \\attacker.com\dummyfile, thereby leaking credentials in the form of NTLM hashes.

Data Manipulation

This attack class deals with the capabilities of malicious documents to silently modify form data, to write to local files on the host's file system, or to show a different content based on the application that is used to open the document.

Form Modification

The idea of this attack is as follows: Similar to Form Data Leakage attacks, the victim obtains a harmlessly looking PDF document from an attacker controlled source, for example, a remittance slip or a tax form. The goal of the attacker is to dynamically, and without knowledge of the victim, manipulate form field data.

File Write Access

The PDF standard enables documents to submit form data to external webservers. Technically the webserver's URL is defined using a PDF File Specification. This ambiguity in the standard may be interpreted by implementations in such a way that they enable documents to submit PDF form data to a local file, thereby writing to this file.
 

Content Masking 

The goal of this attack is to craft a document that renders differently, depending on the applied PDF interpreter. This can be used, for example, to show different content to different reviewers, to trick content filters (AI-based machines as well as human content moderators), plagiarism detection software, or search engines, which index a different text than the one shown to users when opening the document.

  • Stream confusion: It is unclear how content streams are parsed if their Length value does not match the offset of the endstream marker, or if syntax errors are introduced.
  • Object confusion: An object can overlay another object. The second object may not be processed if it has a duplicate object number, if it is not listed in the XRef table, or if other structural syntax errors are introduced.
  • Document confusion: A PDF file can contain yet another document (e.g., as embedded file), multiple XRef tables, etc., which results in ambiguities on the structural level.
  • PDF confusion: Objects before the PDF header or after an EOF marker may be processed by implementations, introducing ambiguities in the outer document structure.

Code Execution

The goal of this attack is to execute attacker-controlled code. This can be achieved by silently launching an executable file, embedded within the document, to infect the host with malware. The PDF specification defines the Launch action, which allows documents to launch arbitrary applications. The file to be launched can either be specified by a local path, a network share, a URL, or a file embedded within the PDF document itself.

Evaluation

Out of 28 tested applications, 26 are vulnerable to at least one attack.

Authors of this Post

Dominik Noss
Christian Mainka

Sources

1] V. Hamon. "Malicious URI resolving in PDF documents". In: Journal of Computer Virology and Hacking Techniques 9.2 (2013), pp. 65–76.

[2] Aaron Spangler. WinNT/Win95 Automatic Authentication Vulnerability (IE Bug #4). https://insecure.org/sploits/winnt.automatic.authentication.html. Mar. 1997.

[3] Check Point Research. NTLM Credentials Theft via PDF Files. https://research.checkpoint.com/ntlm-credentials-theft-via-pdf-files/. 2018.



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