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Studying for attending Certified Network Security Practitioner exam pays attention to the method. The good method often can bring the result with half the effort, therefore we in the examination time, and also should know some test-taking skill. The CNSP quiz guide on the basis of summarizing the past years, found that many of the questions, the answers have certain rules can be found, either subjective or objective questions, we can find in the corresponding module of similar things in common. To this end, the Certified Network Security Practitioner exam dumps have summarized some types of questions in the qualification examination, so that users will not be confused when they take part in the exam, to have no emphatic answers. It can be said that the template of these questions can be completely applied. The user only needs to write out the routine and step points of the CNSP test material, so that we can get good results in the exams.
NEW QUESTION # 41
What user account is required to create a Golden Ticket in Active Directory?
Answer: B
Explanation:
A Golden Ticket is a forged Kerberos Ticket-Granting Ticket (TGT) in Active Directory (AD), granting an attacker unrestricted access to domain resources by impersonating any user (e.g., with Domain Admin privileges). Kerberos, per RFC 4120, relies on the KRBTGT account-a built-in service account on every domain controller-to encrypt and sign TGTs. To forge a Golden Ticket, an attacker needs:
The KRBTGT password hash (NTLM or Kerberos key), typically extracted from a domain controller's memory using tools like Mimikatz.
Additional domain details (e.g., SID, domain name).
Process:
Compromise a domain controller (e.g., via privilege escalation).
Extract the KRBTGT hash (e.g., lsadump::dcsync /user:krbtgt).
Forge a TGT with arbitrary privileges using the hash (e.g., Mimikatz's kerberos::golden command).
The KRBTGT account itself isn't "used" to create the ticket; its hash is the key ingredient. Unlike legitimate TGTs issued by the KDC, a Golden Ticket bypasses authentication checks, persisting until the KRBTGT password is reset (a rare event in most environments). CNSP likely highlights this as a high-severity AD attack vector.
Why other options are incorrect:
A . Local User account: Local accounts are machine-specific, lack domain privileges, and can't access the KRBTGT hash stored on domain controllers.
B . Domain User account: A standard user has no inherent access to domain controller credentials or the KRBTGT hash without escalation.
C . Service account: While service accounts may have elevated privileges, they don't automatically provide the KRBTGT hash unless compromised to domain admin level-still insufficient without targeting KRBTGT specifically.
Real-World Context: The 2014 Sony Pictures hack leveraged Golden Tickets, emphasizing the need for KRBTGT hash rotation post-breach (a complex remediation step).
NEW QUESTION # 42
Which of the aforementioned SSL/TLS protocols are considered to be unsafe?
Answer: D
Explanation:
SSL/TLS protocols secure network communication, but older versions have vulnerabilities:
SSLv2 (1995): Weak ciphers, no handshake integrity (e.g., MITM via DROWN attack, CVE-2016-0800). Deprecated by RFC 6176 (2011).
SSLv3 (1996): Vulnerable to POODLE (CVE-2014-3566), weak block ciphers (e.g., RC4). Deprecated by RFC 7568 (2015).
TLSv1.0 (1999, RFC 2246): Inherits SSLv3 flaws (e.g., BEAST, CVE-2011-3389), weak CBC ciphers. Deprecated by PCI DSS (2018) and RFC 8996 (2021).
TLSv1.1 (2006, RFC 4346): Improved over 1.0 but lacks modern cipher suites (e.g., AEAD). Deprecated with 1.0 by RFC 8996.
TLSv1.2 (2008, RFC 5246): Secure with strong ciphers (e.g., AES-GCM), widely used today.
TLSv1.3 (2018, RFC 8446): Latest, removes legacy weaknesses, mandatory forward secrecy.
Why other options are incorrect:
A: Correct but incomplete without B.
B: Correct but incomplete without A.
D: Incorrectly includes TLSv1.2 and 1.3, which are secure and recommended.
Real-World Context: POODLE forced mass SSLv3 disablement in 2014; TLS 1.0/1.1 deprecation hit legacy systems in 2021.
NEW QUESTION # 43
In a Linux-based architecture, what does the /mnt directory contain?
Answer: B
Explanation:
The Linux Filesystem Hierarchy Standard (FHS), per FHS 3.0, defines directory purposes:
/mnt: Designated for temporarily mounted filesystems, typically by system administrators.
Use: Mount points for removable media (e.g., USB drives: mount /dev/sdb1 /mnt/usb) or network shares (e.g., NFS).
Nature: Transient, user-managed, not persistent across reboots (unlike /etc/fstab mounts).
Contrast:
/media: Auto-mounts removable devices (e.g., by desktop environments like GNOME).
/mnt vs. /media: /mnt is manual, /media is system-driven.
Technical Details:
Empty by default; subdirectories (e.g., /mnt/usb) are created as needed.
Permissions: Typically root-owned (0755), requiring sudo for mounts.
Security Implications: Misconfigured /mnt mounts (e.g., world-writable) risk unauthorized access. CNSP likely covers mount security (e.g., nosuid option).
Why other options are incorrect:
B . System config/init scripts: Found in /etc (e.g., /etc/passwd, /etc/init.d).
C . Driver modules: Located in /lib/modules/<kernel-version>.
D . Kernel state: Resides in /proc (e.g., /proc/cpuinfo).
Real-World Context: Admins mount ISOs at /mnt during server provisioning (e.g., mount -o loop image.iso /mnt).
NEW QUESTION # 44
What will be the subnet mask for 192.168.0.1/18?
Answer: C
Explanation:
An IP address with a /18 prefix (CIDR notation) indicates 18 network bits in the subnet mask, leaving 14 host bits (32 total bits - 18). For IPv4 (e.g., 192.168.0.1):
Binary Mask: First 18 bits are 1s, rest 0s.
1st octet: 11111111 (255)
2nd octet: 11111111 (255)
3rd octet: 11000000 (192)
4th octet: 00000000 (0)
Decimal: 255.255.192.0
Calculation:
Bits: /18 = 2