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- Welcome to Lesson 18, Deep Dive Quiz.

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Now, in Lesson 18, it was
all about given a scenario,

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modify enterprise capabilities
to enhance security.

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In 18.1, we talked
about enhancing security

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with network devices,

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something already studied
and some new ones.

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In 18.2, we talked about
TCP/IP, both IP version four,

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and IP version six, as well as
the use of secure protocols.

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In 18.3, we looked at email security

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primarily from the server side.

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And then in 18.4, I introduced
you to a group policy,

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part of Microsoft's Active
Directory and SELinux.

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So you're ready to do a 10 question quiz?

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All right, make sure you've got a pen

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or a pencil and a piece of paper.

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You're gonna put me on pause

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as often as you need to
to answer these questions.

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All right, let's get started.

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You've been asked to research
tools that will continuously

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monitor activity across the
enterprise, network traffic,

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cloud workloads, email,

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and other relevant security data sources

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for security threats.

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Which type of tool is going
to fit this requirement?

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XDR, EDR, FIM, or IPS?

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And we do need to know
acronyms for the exam.

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So XDR, EDR, FIM, or IPS.

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Put me on pause if you need to.

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I am gonna choose XDR, right?

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Because XDR is going to be the tool

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that I can use that is
going to continuously

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monitor activity across my
whole enterprise, right,

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network, cloud, email, and really,

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anything else that I tune it to.

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Remember, EDR is going to just be looking

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at the the endpoint devices.

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FIM was File Integrity Monitoring

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and IPS, our intrusion prevention system.

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Well, it's really just
looking at network traffic.

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So I like XDR, how about you?

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Let's check.

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And that is correct.

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Question two.

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Your organization has decided
to implement web filtering.

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There's a specific concern

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about access to and downloading of images.

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Which filtering approach
would address this issue?

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URL filtering, allow and block lists,

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content analysis or category filtering?

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Okay, so what are we looking at here?

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We're concerned about access
to and downloading of images.

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So which one of these types

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of filtering is going
to also be able to look

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at images for us?

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URL, allow and block lists,
content, or category?

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Well, URL filtering is just
gonna filter by URLs, right?

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A list of URLs.

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It really won't know what the images are.

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Allow and block list is just
lists that we've set up.

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These are the sites that are allowed,

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these are the sites that are blocked.

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Category filtering is going to look

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at categories of information.

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Maybe it's adult content,
maybe it's violence,

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maybe it's guns, maybe
it's shopping, right?

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It doesn't have to be negative.

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It could be neutral or positive.

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Content analysis, this is
the one I'm gonna choose,

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because content analysis can look

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at the content of what's on
that page, including images,

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so I'm gonna choose content analysis.

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Do you agree? You like it?

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All right, well, check it
out and that's correct.

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All right, question four.

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And it looks like we are
going to do a matching here

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and we're matching the secure
protocol with their function.

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Down the left hand side,
we have DNSSec, HTTPS,

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TLS, and SRTP.

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On the right side, we
have enhanced security

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for VoIP, audio and video transmission,

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digitally-signed zone files.

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Establish a secure communication channel

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between two TCP sessions,

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or encrypt sessions between
a browser and a website.

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So where do we wanna start this time?

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I guess we'll start on
the right hand side again.

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We wanna look for what
matches enhanced security

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for VoIP, audio, and video transmission.

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Oh, if I look down that list, I like SRTP.

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Next is we're going to use
this to encrypt the session

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between a browser and a website.

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Oh, you use this one all the time.

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What is this?

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That's gonna be HTTPS,
digitally signed-zone files?

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Remember, zone files are our DNS files,

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so that must be right here.

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DNSSec.

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And lastly, establish a
secure communication channel

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between two TCP sessions.

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That sounds a lot like what TLS does.

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So DNSSec, digitally-signed zone files,

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HTTP, encrypt session between
a browser and a website,

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TLS, establish a secure
communication channel

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between two TCP sessions,

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and SRTP to enhance security for VoIP.

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That's voice over IP.

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Audio and video transmissions.

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You like it?

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You agree?

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We'll check and that is correct.

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All right, this one is
a secure replacement

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for Telnet Terminal Emulation.

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There's this remote desktop software.

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Sometimes you'll see that as RDP,

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a virtual private network,

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VPN, secure socket layer,
SSL, or secure shell, SSH.

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Now, I'm giving you the acronyms.

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You may not be getting both

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in your question, but you
need to know both, right?

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Always know the acronym
and what it actually is.

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So what's our secure replacement

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for Telnet Terminal Emulation?

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Remote desktop.

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Virtual Private network.

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Secure socket layer, or secure shell?

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Are you ready?

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It's gonna be secure shell for sure.

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All right, Telnet, why
don't we wanna use Telnet?

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Because it's a clear text protocol

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with very basic authentication,
username and password.

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So secure shell or SSH is
our secure replacement,

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our cryptographic replacement for Telnet.

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Let's check it.

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And that is correct.

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Blank best describes the use

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of the IP protocol to
transmit a variety of formats,

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including voice, data,
multimedia, television, and music.

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Is this IP extensibility,

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an open standard, unified
communications, or IP convergence?

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So which of these terms
best describes the use

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of the IP protocol to transmit
a whole variety of formats,

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right, voice, data, multimedia,
television and music.

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Put me on pause if you need to.

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Well, let's go through our list.

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IP extensibility.

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That's when we can extend
or modify functionality

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without really changing
the underlying basis.

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An open standard is a standard

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that can be freely adopted and modified.

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Unified communications,
which refers to having

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a unity of communication devices, right,

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in our VoIP environment.

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IP convergence, that's
the one we're gonna like.

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IP convergence is when we use IP,

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we converge all of
these different formats.

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Instead of using, you know,
different types of protocols,

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we're going to use IP as
our standard protocol.

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So IP convergence is
what I'm gonna choose.

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You good?

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Let's check and that's correct.

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All right, we are gonna drag and drop

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some words here and I'm gonna read it

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to you first so you can figure out

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where we even need to start.

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A blank address is made up of blank

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divided into blank blank,

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converted into hexadecimal
numbers and separated by blank.

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Wow, that's a lot of blanks.

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So below, we've got IP
four, IP six, periods,

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colons, four, 128, 16-bit blocks,

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32 bit, eight-it blocks,
eight digit, eight and comma.

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So where are you gonna start?

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Well, we know this must be either

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IP four or IP six 'cause
they're both there, right?

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We're gonna assume it's one of them.

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Is there any word there
that's gonna help us

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know whether it's IP four or IP six?

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Can you find one?

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Yeah, the fact that it's hexadecimal,

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we must be talking about IP six.

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So now that you know that,

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go ahead and put me on pause

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and see if you can come up
with the rest of these answers.

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All right, so we have an IP six address,

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is made up of, it's going to be our,

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if I'm doing this right,

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16-bit blocks divided into, oh no, sorry,

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it's not gonna be 16 bit blocks.

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That's not what we're looking for.

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It's really made up of 128 bits, right?

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IP version six is made up

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up of 128 bits divided
into, how about eight?

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Oops, nope, we don't want 8-bit blocks.

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How about eight 16 bit blocks,

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converted into hexadecimal
numbers and separated by colons.

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How's that look?

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Took a little bit of doing there, right?

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An IP six address is made up of 128 bits

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divided into eight 16 bit blocks,

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eight times 16, and converted

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into hexadecimal numbers
and separated by a colon.

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Do you like that one?

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Let's check.

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And that is correct.

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This was a tough one

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because you really had
to just try to figure out

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what were you even talking about.

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And so you wanna be
looking for those keywords

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and as soon as you saw hexadecimal,

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that should have said, oh,

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we must be talking about IP
version six, not version four.

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And right up in the top, it
said drag and drop the words

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to describe an IP address.

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So we had to figure out IP four or IP six.

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All right, let's continue on.

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Which object is a GPO

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not explicitly associated with?

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An organizational unit, a
domain, a user, or a site.

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Now, if you're not familiar
with the Windows environment,

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and we did this one really
quickly with Active Directory,

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this may be a more challenging one,

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but which object is a
GPO, group policy object,

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not explicitly associated with?

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An OU, an organizational unit,
a domain, a user, or a site.

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Put me on pause if you need to.

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The answer is going to be user.

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A GPO can be explicitly associated with

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an OU, an organizational unit

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with a domain, as well as with a site.

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But we don't usually have a GPO

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explicitly associated with a user.

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Let's check.

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And that's correct.

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Your organization is enhancing
their email security.

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For assurance purposes,

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they'd like to receive
feedback including details

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about successful and failed
authentication checks.

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What components need to be installed?

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S/MIME, an SPF policy, DKIM and SPF,

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or DMARC and SPF and/or DKIM?

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What do you think?

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You're welcome to put me on pause

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while you read through that again

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and think through your answers.

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Well, if they're going to get feedback,

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they're going to need DMARC.

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But you can't just have DMARC.

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You have to have DMARC
and either SPF or DKIM.

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So the only way to get feedback,
right, is to have our DMARC

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and then have it with
either SPF or DKIM or both.

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So I'm gonna choose that one.

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Do you like it?

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Let's check.

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And that's correct.

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All right, next question.

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Your organization has
adopted a new email policy

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that states all email classified

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as protected must be encrypted

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and can only be decrypted
by the intended recipient.

260
00:12:01,590 --> 00:12:04,830
So which implementation
approach is required?

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00:12:04,830 --> 00:12:08,190
End-to-end encryption,
homomorphic encryption,

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00:12:08,190 --> 00:12:11,703
TLS encryption, or
server-to-server encryption?

263
00:12:12,750 --> 00:12:14,400
So tell me which approach.

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00:12:14,400 --> 00:12:16,890
The email policy says all email classified

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00:12:16,890 --> 00:12:19,320
as protected must be encrypted

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00:12:19,320 --> 00:12:23,220
and only decrypted by
the intended recipient.

267
00:12:23,220 --> 00:12:25,530
What implementation
approach are we gonna use?

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00:12:25,530 --> 00:12:29,583
End-to-end, homomorphic,
TLS, and server-to-server.

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00:12:31,020 --> 00:12:32,970
Go ahead, make that choice.

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00:12:32,970 --> 00:12:33,873
What do you think?

271
00:12:34,890 --> 00:12:37,350
Now, it's gotta go from the sender

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all the way to the recipient, right,

273
00:12:39,810 --> 00:12:42,630
from one end to the other, right?

274
00:12:42,630 --> 00:12:47,070
Not just server to server,
right, from one end to the other.

275
00:12:47,070 --> 00:12:49,110
So what are we gonna choose?

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00:12:49,110 --> 00:12:52,980
End-to-end encryption, right?

277
00:12:52,980 --> 00:12:54,693
Let's go to our next question.

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00:12:55,950 --> 00:12:57,420
Oh, another matching.

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00:12:57,420 --> 00:12:59,400
This one, we're gonna
match the following items

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00:12:59,400 --> 00:13:00,840
with their descriptions.

281
00:13:00,840 --> 00:13:04,080
We have a Linux account,
processes and resources,

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00:13:04,080 --> 00:13:08,220
a common Linux policy, and SELinux user,

283
00:13:08,220 --> 00:13:10,353
and a default Linux mode.

284
00:13:12,720 --> 00:13:15,090
So let's see if we can match those items

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00:13:15,090 --> 00:13:15,923
with the descriptions.

286
00:13:15,923 --> 00:13:16,756
Down the right hand side,

287
00:13:16,756 --> 00:13:21,603
we have enforcing, type,
role, user, and targeted.

288
00:13:23,160 --> 00:13:25,380
So starting let's say on the
left hand side, this time,

289
00:13:25,380 --> 00:13:30,000
just a Linux account enforcing
type, role, user, targeted.

290
00:13:30,000 --> 00:13:31,713
I like user.

291
00:13:32,760 --> 00:13:34,320
Processes and resources.

292
00:13:34,320 --> 00:13:37,770
What do we call those in
our SELinux environment?

293
00:13:37,770 --> 00:13:39,843
That's gonna be a type.

294
00:13:42,510 --> 00:13:45,810
A common Linux policy.

295
00:13:45,810 --> 00:13:48,633
We have role, enforcing, or targeted.

296
00:13:50,310 --> 00:13:52,080
I think what we're probably looking

297
00:13:52,080 --> 00:13:55,750
for here is going to be targeted

298
00:13:58,620 --> 00:14:01,200
which says that we're not
going to try to do SELinux

299
00:14:01,200 --> 00:14:04,290
for everything, for all
processes and resources, right,

300
00:14:04,290 --> 00:14:06,513
we're going to target specific ones.

301
00:14:07,890 --> 00:14:10,980
The SELinux user, that's a role.

302
00:14:10,980 --> 00:14:12,900
And the default SELinux mode.

303
00:14:12,900 --> 00:14:16,050
Well, when we put it on,
that's gonna be enforcing.

304
00:14:16,050 --> 00:14:18,960
So Linux account, user,
processes and resources,

305
00:14:18,960 --> 00:14:23,760
type, common Linux policy,
targeted, an SELinux user

306
00:14:23,760 --> 00:14:27,963
is a role and a default
SELinux mode, enforcing.

307
00:14:29,370 --> 00:14:31,290
Hope you put me on pause so
you could start doing that.

308
00:14:31,290 --> 00:14:32,340
Or maybe you just did it with me

309
00:14:32,340 --> 00:14:34,200
as we kind of worked through it.

310
00:14:34,200 --> 00:14:35,033
You agree?

311
00:14:35,033 --> 00:14:38,880
Let's check it out, and that is correct.

312
00:14:38,880 --> 00:14:41,100
Awesome, another great job.

313
00:14:41,100 --> 00:14:43,920
All right, up next, we're
gonna have Lesson 19,

314
00:14:43,920 --> 00:14:46,320
Given a Scenario, Implement and Maintain

315
00:14:46,320 --> 00:14:48,360
Identity and Access Management.

316
00:14:48,360 --> 00:14:49,310
I'll see you there.
