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Practical Hardware Pentesting

You're reading from   Practical Hardware Pentesting A guide to attacking embedded systems and protecting them against the most common hardware attacks

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Product type Paperback
Published in Apr 2021
Publisher Packt
ISBN-13 9781789619133
Length 382 pages
Edition 1st Edition
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Author (1):
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Jean-Georges Valle Jean-Georges Valle
Author Profile Icon Jean-Georges Valle
Jean-Georges Valle
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Table of Contents (20) Chapters Close

Preface 1. Section 1: Getting to Know the Hardware
2. Chapter 1: Setting Up Your Pentesting Lab and Ensuring Lab Safety FREE CHAPTER 3. Chapter 2: Understanding Your Target 4. Chapter 3: Identifying the Components of Your Target 5. Chapter 4: Approaching and Planning the Test 6. Section 2: Attacking the Hardware
7. Chapter 5: Our Main Attack Platform 8. Chapter 6: Sniffing and Attacking the Most Common Protocols 9. Chapter 7: Extracting and Manipulating Onboard Storage 10. Chapter 8: Attacking Wi-Fi, Bluetooth, and BLE 11. Chapter 9: Software-Defined Radio Attacks 12. Section 3: Attacking the Software
13. Chapter 10: Accessing the Debug Interfaces 14. Chapter 11: Static Reverse Engineering and Analysis 15. Chapter 12: Dynamic Reverse Engineering 16. Chapter 13: Scoring and Reporting Your Vulnerabilities 17. Chapter 14: Wrapping It Up – Mitigations and Good Practices 18. Assessments 19. Other Books You May Enjoy

Finding the data

Before parsing the data, we have to find it. In addition to classical storage media (hard drives, Solid State Drive (SSDs), onboard USB storage, and more), embedded systems use more specific chips and systems to store data, and some of them are listed as follows:

  • EEPROMs
  • EMMC and NAND/NOR Flash
  • Static RAM, and so on...

Let's look at each of them in the following sections.

EEPROMs

EEPROM (Electrically Erasable Programmable Read-Only Memory) and flash memory are "one-chip" storage solutions that keep the data even when the power is off. They are available on pretty much every existing protocol (I2C, (Q)SPI, 1-Wire, and more). Locating these chips is not always easy (especially if they are unmarked or rebranded) but (as already discussed in the component identification section in the previous chapter), it is possible to identify them by elimination or by sniffing the protocol on the board. Typically, the storage capacity is...

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