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Hacking on Medium
A basic way to send ‘Spoofed Emails’
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When it comes to phishing attacks everyone is aware of the “From” address header of email whether if it was came from the original domain…
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A basic way to send ‘Spoofed Emails’
https://cdn-images-1.medium.com/max/1080/0*Ydv-z07gwNrdIXiz.jpg
When it comes to phishing attacks everyone is aware of the “From” address header of email whether if it was came from the original domain…
Continue reading on System Weakness »
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Hacking on Medium
11 Tips for creative and continous Security Awareness
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#1 Offer your employees books about Social Engineering
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11 Tips for creative and continous Security Awareness
https://cdn-images-1.medium.com/max/2600/1*oT1Uadw9D4wLJU5JJKPe5A.jpeg
#1 Offer your employees books about Social Engineering
Continue reading on Medium »
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Hacking on Medium
T-Mobile says hacker accessed personal data of 37 million customers
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In a monetary documenting on Thursday, T-Portable uncovered that a programmer got to a stash of individual information having a place with…
Continue reading on Medium »
T-Mobile says hacker accessed personal data of 37 million customers
https://cdn-images-1.medium.com/max/2363/1*qNYGTd9_SuhR1_m7wj6bqA.jpeg
In a monetary documenting on Thursday, T-Portable uncovered that a programmer got to a stash of individual information having a place with…
Continue reading on Medium »
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Hacking on Medium
Is ChatGPT a Security Loophole for Hackers?
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ChatGPT is a new chatbot platform that has been gaining popularity in the online world.
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Is ChatGPT a Security Loophole for Hackers?
https://cdn-images-1.medium.com/max/800/1*3YwC2TNC12SzKymoG0KGLg.jpeg
ChatGPT is a new chatbot platform that has been gaining popularity in the online world.
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Hacking on Medium
The Cybersecurity Paradox: Why companies are still getting hacked despite spending millions on…
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“If you think technology can solve your security problems, then you don’t understand the problems and you don’t understand the technology.”
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The Cybersecurity Paradox: Why companies are still getting hacked despite spending millions on…
https://cdn-images-1.medium.com/max/2600/1*iUnklqjjrsT4djcYnrKy7w.png
“If you think technology can solve your security problems, then you don’t understand the problems and you don’t understand the technology.”
Continue reading on Medium »
Two Factor Authentication Bypass On Facebook
https://gtm0x01.medium.com/two-factor-authentication-bypass-on-facebook-3f4ac3ea139c?source=rss------bug_bounty-5
https://gtm0x01.medium.com/two-factor-authentication-bypass-on-facebook-3f4ac3ea139c?source=rss------bug_bounty-5
Summary: I discovered the lack of rate-limiting issue in instagram which could have allowed an attacker to bypass two factor…Continue reading on Medium » (https://gtm0x01.medium.com/two-factor-authentication-bypass-on-facebook-3f4ac3ea139c?source=rss------bug_bounty-5)
Bug Zero at a Glance [Week 14 - 20 January]
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What Happened with Bug Zero?Continue reading on Bug Zero »
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Kali Linux Tutorials
Subparse : Modular Malware Analysis Artifact Collection And Correlation Framework
Subparse, is a modular framework developed by Josh Strochein, Aaron Baker, and Odin Bernstein. The framework is designed to parse and index malware files and present the information found during the parsing in a searchable web-viewer. The framework is modular, making use of a core parsing engine, parsing modules, and a variety of enrichers that add additional information to the malware indices.
The main input values for the framework are directories of malware files, which the core parsing engine or a user-specified parsing engine parses before adding additional information from any user-specified enrichment engine all before indexing the information parsed into an elasticsearch index.
The information gathered can then be searched and viewed via a web-viewer, which also allows for filtering on any value gathered from any file. There are currently 3 parsing engine, the default parsing modules (ELFParser, OLEParser and PEParser), and 4 enrichment modules (ABUSEEnricher, CAPEEnricher, STRINGEnricher and YARAEnricher). Getting StartedSoftware RequirementsTo get started using Subparse there are a few requrired/recommened programs that need to be installed and setup before trying to work with our software.
SoftwareStatusLinkDockerRequiredInstallation GuidePython3.8.1RequiredInstallation GuidePyenvRecommendedInstallation Guide Additional RequirementsAfter getting the required/recommended software installed to your system there are a few other steps that need to be taken to get Subparse installed. Python Requirements Python requires some other packages to be installed that Subparse is dependent on for its processes. To get the Python set up completed navigate to the location of your Subparse installation and go to the *parser* folder. The following commands that you will need to use to install the Python requirements is: Docker Requirements Since Subparse uses Docker for its backend and web interface, the set up of the Docker containers needs to be completed before being able to use the program. To do this navigate to the root directory of the Subparse installation location, and use the following command to set up the docker instances: Installation steps* Installation Steps UsageCommand Line OptionsCommand line options that are available for subparse/parser/subparse.py:
ArgumentAlternativeRequiredDescription-h–helpNoShows help menu-d SAMPLES_DIR–directory SAMPLES_DIRYesDirectory of samples to parse-e ENRICHER_MODULES–enrichers ENRICHER_MODULESNoEnricher modules to use for additional parsing-r–resetNoReset/delete all data in the configured Elasticsearch cluster-v–verboseNoDisplay verbose commandline output-s–service-modeNoEnters service mode allowing for mode samples to be added to the SAMPLES_DIR while processing Viewing ResultsTo view the results from Subparse’s parsers, navigate to localhost:8080. If you are having trouble viewing the site, make sure that you have the container started up in Docker and that there is not another process running on port 8080 that could cause the site to not be available. General Information CollectedBefore any parser is executed general information is collected about the sample regardless of the underlying file type. This information includes:
* MD5 hash of the sample
* SHA256 hash of the sample
* Sample name
* Sample size
* Extension of sample
* Derived extension of sample Parser ModulesParsers are ONLY executed on samples that match the file type. For example, PE files will by default have the PEParser executed against them due to the file type corresponding with those the PEParser is able to examine. Default ModulesELFParser This is the default parsing module that will be executed against ELF files. Information that is collected: OLEParser This is the default parsing module that will be executed[...]
Subparse : Modular Malware Analysis Artifact Collection And Correlation Framework
Subparse, is a modular framework developed by Josh Strochein, Aaron Baker, and Odin Bernstein. The framework is designed to parse and index malware files and present the information found during the parsing in a searchable web-viewer. The framework is modular, making use of a core parsing engine, parsing modules, and a variety of enrichers that add additional information to the malware indices.
The main input values for the framework are directories of malware files, which the core parsing engine or a user-specified parsing engine parses before adding additional information from any user-specified enrichment engine all before indexing the information parsed into an elasticsearch index.
The information gathered can then be searched and viewed via a web-viewer, which also allows for filtering on any value gathered from any file. There are currently 3 parsing engine, the default parsing modules (ELFParser, OLEParser and PEParser), and 4 enrichment modules (ABUSEEnricher, CAPEEnricher, STRINGEnricher and YARAEnricher). Getting StartedSoftware RequirementsTo get started using Subparse there are a few requrired/recommened programs that need to be installed and setup before trying to work with our software.
SoftwareStatusLinkDockerRequiredInstallation GuidePython3.8.1RequiredInstallation GuidePyenvRecommendedInstallation Guide Additional RequirementsAfter getting the required/recommended software installed to your system there are a few other steps that need to be taken to get Subparse installed. Python Requirements Python requires some other packages to be installed that Subparse is dependent on for its processes. To get the Python set up completed navigate to the location of your Subparse installation and go to the *parser* folder. The following commands that you will need to use to install the Python requirements is: Docker Requirements Since Subparse uses Docker for its backend and web interface, the set up of the Docker containers needs to be completed before being able to use the program. To do this navigate to the root directory of the Subparse installation location, and use the following command to set up the docker instances: Installation steps* Installation Steps UsageCommand Line OptionsCommand line options that are available for subparse/parser/subparse.py:
ArgumentAlternativeRequiredDescription-h–helpNoShows help menu-d SAMPLES_DIR–directory SAMPLES_DIRYesDirectory of samples to parse-e ENRICHER_MODULES–enrichers ENRICHER_MODULESNoEnricher modules to use for additional parsing-r–resetNoReset/delete all data in the configured Elasticsearch cluster-v–verboseNoDisplay verbose commandline output-s–service-modeNoEnters service mode allowing for mode samples to be added to the SAMPLES_DIR while processing Viewing ResultsTo view the results from Subparse’s parsers, navigate to localhost:8080. If you are having trouble viewing the site, make sure that you have the container started up in Docker and that there is not another process running on port 8080 that could cause the site to not be available. General Information CollectedBefore any parser is executed general information is collected about the sample regardless of the underlying file type. This information includes:
* MD5 hash of the sample
* SHA256 hash of the sample
* Sample name
* Sample size
* Extension of sample
* Derived extension of sample Parser ModulesParsers are ONLY executed on samples that match the file type. For example, PE files will by default have the PEParser executed against them due to the file type corresponding with those the PEParser is able to examine. Default ModulesELFParser This is the default parsing module that will be executed against ELF files. Information that is collected: OLEParser This is the default parsing module that will be executed[...]
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Kali Linux Tutorials Subparse : Modular Malware Analysis Artifact Collection And Correlation Framework Subparse, is a modular framework developed by Josh Strochein, Aaron Baker, and Odin Bernstein. The framework is designed to parse and index malware files…
against OLE and RTF formatted files, this uses the OLETools package to obtain data. The information that is collected: PEParser This is the default parsing module that will be executed against PE files that match or include the file types: PE32 and MS-Dos. Information that is collected: Enricher ModulesThese modules are optional modules that will ONLY get executed if specified via the -e | –enrichers flag on the command line. Default ModulesABUSEEnricher This enrichers uses the [Abuse.ch]() API and [Malware Bazaar]() to collect more information about the sample(s) subparse is analyzing, the information is then aggregated and stored in the Elastic database. CAPEEnricher This enrichers is used to communicate with a CAPEv2 Sandbox instance, to collect more information about the sample(s) through dynamic analysis, the information is then aggregated and stored in the Elastic database utilizing the Kafka Messaging Service for background processing. STRINGEnricher This enricher is a smart string enricher, that will parse the sample for potentially interesting strings. The categories of strings that this enricher looks for include: Audio, Images, Executable Files, Code Calls, Compressed Files, Work (Office Docs.), IP Addresses, IP Address + Port, Website URLs, Command Line Arguments. YARAEnricher This ericher uses a pre-compiled yara file located at: parser/src/enrichers/yara_rules. This pre-compiled file includes rules from and Developing Custom Parsers & EnrichersSubparse’s web view was built using Bootstrap for its CSS, this allows for any built in Bootstrap CSS to be used when developing your own custom Parser/Enricher Vue.js files. We have also provided an example for each to help get started and have also implemented a few custom widgets to ease the process of development and to promote standardization in the way information is being displayed. All Vue.js files are used for dynamically displaying information from the custom Parser/Enricher and are used as templates for the data.
Note: Naming conventions with both class and file names must be strictly adheared to, this is the first thing that should be checked if you run into issues now getting your custom Parser/Enricher to be executed. The naming convention of your Parser/Enricher must use the same name across all of the files and class names.
* Python Development
* Vue Development
* Vue Helpers LoggingThe logger object is a singleton implementation of the default Python logger. For indepth usage please reference the Offical Doc. For Subparse the only logging methods that we recommend using are the logging levels for output. These are:
* debug
* warning
* error
* critical
* exception
* log
* info ACKNOWLEDGEMENTS* This research and all the co-authors have been supported by NSA Grant H98230-20-1-0326. Click Here To Download
Note: Naming conventions with both class and file names must be strictly adheared to, this is the first thing that should be checked if you run into issues now getting your custom Parser/Enricher to be executed. The naming convention of your Parser/Enricher must use the same name across all of the files and class names.
* Python Development
* Vue Development
* Vue Helpers LoggingThe logger object is a singleton implementation of the default Python logger. For indepth usage please reference the Offical Doc. For Subparse the only logging methods that we recommend using are the logging levels for output. These are:
* debug
* warning
* error
* critical
* exception
* log
* info ACKNOWLEDGEMENTS* This research and all the co-authors have been supported by NSA Grant H98230-20-1-0326. Click Here To Download
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