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050-V37-ENVCSE01 CSE RSA enVision Essentials

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Test Code : 050-V37-ENVCSE01
Test Name : CSE RSA enVision Essentials
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RSA CSE RSA enVision Essentials

RSA licensed methods Engineer (RSA/CSE) | killexams.com Real Questions and Pass4sure dumps

This vendor-particular Certification is offered by means of:RSA, The safety Division of EMCBedford, MA USAPhone: 781-301-5000Email: This e mail handle is being covered from spambots. You want JavaScript enabled to view it.

skill degree: Intermediate                          reputation: Discontinued

low in cost: $one hundred fifty (shortest track)               

abstract:For security specialists who help, install or configure commercial enterprise safety methods the usage of RSA products. This contains SecurID, enVision, entry manager and Digital certificates solution.

initial necessities:This software has been discontinued.You have to pass the RSA programs Engineer exam to your chosen music ($150) and signal the RSA licensed protection skilled contract. There are several tracks to choose between: SecurID, enVision, entry supervisor and Digital certificate solution. practising is accessible however not required. This program has been discontinued.

continuing requirements:Recertification is required for each primary product release and for definite aspect releases that RSA deems sufficiently essential.

Offline resources:associated advised (however no longer required) training lessons can be found via RSA.

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RSA 2014: 4 luminaries discuss underestimated security threats | killexams.com Real Questions and Pass4sure dumps

(This weblog publish became written by way of Christina Torode, Editorial Director of SearchCIO Media community)

I spent a whirlwind trip to the RSA convention this week in San Francisco striking out within the assistance systems safety association (ISSA) sales space, catching up with the community’s contributors as they popped in. They pointed out many things: cyber conflict, the want for collective safety intelligence, how essential being a member of a gaggle corresponding to ISSA is to a career, Edward Snowden, how an awful lot gadget entry safety vendors should still provide the executive, how threats are becoming more and more political in nature.

This post could be extraordinarily lengthy if I went into all the discussions, however listed below are few snippets of the conversations the place ISSA contributors and industry luminaries describe threats the security occupation should pay greater consideration to:

Marcus Ranum, CSO of Tenable and developer of the first commercial firewall“The threats aren’t definitely new or rising ones. We’re at all times up in opposition t error they made 10 or 15 years ago. We’re truly just now starting to cope with complications raised by means of allotted computing, which is type of unhappy. They haven’t even gotten to transitive have faith. Hackers are starting to be aware transitive have confidence and we’re going to have a major difficulty when that occurs.”

Howard Schmidt, professor at Idaho State college, advisor with Ridge-Schmidt Cyber and former White apartment cyber advisor for Presidents George W. Bush and Barack Obama“The cell ambiance. When there have been simply a couple of BYO gadgets, there wasn’t loads of connectivity so that they weren’t definitely a threat to the atmosphere. Now very nearly every little thing has an IP handle and is linked to a community to community in the course of the home or work atmosphere. They in reality haven’t concept that through. Some utility is neatly vetted, however other utility will also be downloaded with malware, that piece of added piece of additional utility that can pull out your PII.

What individuals pay even much less consideration to is the entire gadgets in the domestic. The tv is becoming an online equipment looking to handle access to a lot of things. hopefully they gained’t go down the path [with home devices such as the TV] and make the identical error they have with other methods. They know that there are vulnerabilities, they need to get them fixed and go to the manufacturer and say ‘It’s super that you've this application, nonetheless it also exposes me.'”

Dave Cullinane, former eBay CISO and founder of SecurityStarfish“The level of assault sophistication is getting highly scary. Ebay turned into a technology company so they had the substances and sort of funds to be in a position to access shared counsel and intelligence on what’s occurring across the trade and corporations. Small and mid-size companies don’t have those elements. access to respectable intelligence [analytics] on what to look for and what to do about [a security threat] helps you make investments the appropriate way.

one more enviornment that can assist is utility-described perimeters. Coca-Cola and the Cloud safety Alliance are working with open standards, some know-how that has been around for a while, that has the capacity to get rid of the knowledge for large agencies of assaults.

one other constructive measure? in case your clients pose a danger to your personal safety, teach them how to look after themselves and give them the equipment to do it. Ebay gave its valued clientele Microsoft security necessities, which allowed their valued clientele to discover lots of hidden threats.”

Gene “Spaf” Spafford, professor of computing device science at Purdue school“I don’t suppose I’ve viewed anything else that i would trust a brand new assault. lots of the things taking place are assault applied sciences and behaviors that have been widespread about for a long time, but practitioners within the container these days don’t find out about them. actually lots of businesses which have been attacked have not afflicted to make appropriate investments in protection, so when these assaults turn up each person goes ‘wow that’s a surprise,’ but it surely isn’t truly.

The contemporary series of assaults on POS terminals to assemble credit card numbers, that’s not new. It’s malware, going after personal counsel and these groups had been ignoring the warnings.

What we're considering that’s a little bit distinct is bigger scale and a bit greater politically encouraged element to assaults. The Syrian digital army, for instance. those are annoying as a result of they don’t have a coordinated overseas response to the large scale cybercrime and the politically influenced behavior.”

Christina Torode oversees coverage and particular projects for SearchCIO.com, SearchCIO-Midmarket.com and SearchCompliance.com. She has been a high-tech journalist for greater than a decade. before becoming a member of TechTarget, she was a reporter for expertise trade ebook CRN, protecting a lot of beats together with security, networking, telcos and the channel. She additionally hung out as a enterprise reporter and editor with Eagle Tribune Publishing in eastern Massachusetts.


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CSE RSA enVision Essentials

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RSA Certified Systems Engineer (RSA/CSE) | killexams.com real questions and Pass4sure dumps

This vendor-specific Certification is Offered By:RSA, The Security Division of EMCBedford, MA USAPhone: 781-301-5000Email: This email address is being protected from spambots. You need JavaScript enabled to view it.

Skill Level: Intermediate                          Status: Discontinued

Low Cost: $150 (shortest track)               

Summary:For security professionals who support, install or configure enterprise security systems using RSA products. This includes SecurID, enVision, Access Manager and Digital Certificate Solution.

Initial Requirements:This program has been discontinued.You must pass the RSA Systems Engineer exam for your chosen track ($150) and sign the RSA Certified Security Professional Agreement. There are several tracks to choose from: SecurID, enVision, Access Manager and Digital Certificate Solution. Training is available but not required. This program has been discontinued.

Continuing Requirements:Recertification is required for every major product release and for certain point releases that RSA deems sufficiently important.

Offline Resources:Associated recommended (but not required) training courses are available through RSA.

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Computer Science Professor Develops FlowRep Algorithm for Creation of 3D Shapes | killexams.com real questions and Pass4sure dumps

Describing something to someone who has never experienced it before is difficult, maybe even impossible in some cases. How do you explain color to a blind person? Or how do you describe an unusual shape to someone who has never seen that shape before? Imagine a computer mouse, for example. The majority of people know exactly what a computer mouse is for, and what it looks like, but what if you happened to encounter one person who had never seen a mouse before? How would you describe a mouse to that person so that they could accurately picture it? If you think you would have a difficult time doing so, you’re not alone.

Alla Sheffer

“If you try to explain what your computer mouse looks like to someone who has never seen a mouse before, you’re going to struggle to verbally describe its shape,” says Alla Sheffer, a computer science professor at the University of British Columbia. “Humans are good at verbally describing colour or dimensions, but cannot easily articulate geometric properties. The easiest way to describe shapes is to sketch them.”

If you’re not good at drawing, however, that becomes difficult as well, and you could end up leaving your poor mouseless friend with a very warped idea of what a mouse looks like. So Sheffer developed an algorithm that can generate those sketches for you. Working with Adobe Research and Washington University in St. Louis, she studied Gestalt psychology, which offers insights on how people interpret and understand depth from two-dimensional drawings. She used that information to create an algorithm that can turn everything from airplanes to coffee mugs into detailed, accurate sketches.

“All you need is a dozen strokes or less and people will be able to envision the geometry of an object,” Sheffer says. “This program answers the question about which surface curves they need to trace so that human observers can imagine a shape.”

The algorithm was developed into a program called FlowRep, which Sheffer presented yesterday at SIGGRAPH 2017, the largest computer graphics and interactive techniques conference in the world. The program builds on earlier algorithms developed by Sheffer and her colleagues, which turn sketches and drawings into 3D shapes. By putting the methods together, they can recreate objects through 3D printing and other forms of digital fabrication. It’s yet another way in which they can create by digital means, bringing something into existence from seemingly nothing.

So far, FlowRep has performed well in user studies. The algorithm was able to produce shapes comparable to the shapes drawn by professional designers. Sheffer is now looking to expand the research and find additional applications for the program, and to improve it so that it can create natural shapes in addition to man-made ones; right now, the algorithm is optimized particularly for man-made objects.

The research behind FlowRep was published in a paper entitled “FlowRep: Descriptive Curve Networks for Free-Form Design Shapes,” which you can read here. Additional authors include Giorgio Gori, Nicholas Vining, Enrique Rosales, Nathan Carr and Tao Ju. You can learn more about FlowRep below:

[Source/Images: University of British Columbia]

Discuss in the FlowRep forum at 3DPB.com.


How to Create Codes That Even the NSA Can’t Break | killexams.com real questions and Pass4sure dumps

NSA security lock

In a previous post I described mathematicians’ ongoing search for key properties of prime numbers. That effort may seem to belong entirely within the realm of pure mathematics; but surprisingly, the importance of primes goes far beyond the abstruse obsessions of ivory-tower mathematicians. In fact, the use of prime numbers underlies some of the most dramatic events in the news these past weeks: the story behind Edward Snowden’s revelations that the National Security Agency (NSA) is snooping on the communications of both American citizens and European diplomats.

While the Europeans have protested about their internal communications being intercepted by the NSA—ironically—the tools that one can use for protection from spying by anyone are readily accessible online, in the professional literature, and in publicly-available manuals and textbooks. These methods all rely on clever uses of prime numbers.

The essentials of these techniques are far from new. The foundations of a program to create codes so powerful that they could not be broken even if an eavesdropper were to use the entire available worldwide computing power were laid more than 35 years ago. The year 1976 saw the development of the Diffie-Hellman key exchange method (named after Whitfield Diffie and Martin Hellman; the names Ralph Merkle, James Ellis, Clifford Cocks, and Malcolm Williamson are often also associated with it); and the following, 1977, witnessed the appearance of the RSA algorithm. Both methods have advanced over the past three and a half decades, but information about their extensions is also readily available to anyone.

How do these techniques work? I will explain both methods here—necessarily in a simplified way. (Those interested in learning more can read some of the articles in the links that appear throughout this post.)

Alice sends Bob a secret message

The Diffie-Hellman key exchange idea has been described in a clear and concise way using an analogy by Terence Tao, whose work on prime numbers I mentioned in my previous post. The idea is as follows. Alice wants to send Bob a secret message (cryptographers prefer to use “from Alice to Bob” instead of the mundane “from A to B”) and she wants to prevent Eve (the “eavesdropper”) from reading it. So Alice places the message in a box, puts a good lock on it, keeps the key, and sends the package to Bob. (If Alice were to separately send Bob the key, there would be a chance that Eve could intercept both the package and the key.)

Bob has no key to Alice’s lock. So what he does instead is to put his own lock on the box. And he now sends the package back to Alice, locked twice: using both her lock and his. Alice gets the package, removes her own lock using her key, and then sends the box, still safe because it bears Bob’s lock, back to Bob. Now Bob uses his key, opens the box, and gets the message! Each person here used his or her own lock and key—and yet a message was passed perfectly safely from Alice to Bob.

The digital version

This idea is implemented digitally in the Diffie-Hellman key exchange. The message to be sent from Alice to Bob is a secret number, call it n. Alice’s “key” is an exponent, a, which she chooses, and then uses it to raise n to. So the “locked box with the message” that Alice sends Bob is na. Bob has his own “key,” which is a number of his own choosing, b, that he uses as an exponent. He doesn’t know n or a, but he has na, which he got from Alice, so he raises this number to the power b. He thus sends Alice the “box with the two locks”: nab. Alice’s using her own key to open her own lock means her taking the ath root of nab, which, from the simple math of exponents, they know gives her nb, which she now sends back to Bob. Using his “key,” his exponent b, Bob takes the bth root of nb, and he thus obtains the secret number n that Alice wanted to convey to him.

Creating stronger codes with primes

It is possible to send a secret number from Alice to Bob as I just described, and if the numbers are large enough, one would have a reasonable probability that the number might not be deduced by Eve. In actuality, however, modern implementations of the Diffie-Hellman key exchange use more sophisticated elements to make it more difficult to break the code. And the secret number is not sent from Alice to Bob, but rather deduced by both of them using the formula nab (which, of course, is also equal to  nba).

Alice and Bob choose a prime number, which they assume can be known to Eve, or to anyone in the world. Let’s say that this number is 11. They then do all calculations using the mathematical multiplicative group of integers modulo 11 (like a clock going around to 12 and then starting from 1, this group starts to count again after reaching 11). They also choose a base, and let’s suppose it is the number 5. Alice then chooses her secret number, say 3. Independently, Bob chooses his secret number, 4.

Alice raises the commonly-agreed-on base of 5 to the power of her secret number 3, and does the calculation modulo 11. She gets:  53 = 125, but 125 modulo 11 is 4 (it’s the remainder of dividing 125 by 11, which gives 11 and a remainder of 4—it acts like 16 hours in a clock, but this clock is based on 11 rather than 12). She sends Bob the answer, the number 4. Recall that Bob had chosen a secret number of 4, so he raises the 4 he got from Alice to the 4th power, modulo 11, and this gives him 44 = 256, but 256 modulo 11 is 3 (because 11×23 = 253, leaving the remainder 3), which is his final answer.

Alice gets from Bob the original 5 they had both agreed on, but now raised to the power of his secret number, 4, modulo 11, which is 625 modulo 11, which is 9 (as 11×56 = 616, leaving a remainder of 9). She then raises this number to the power of her secret number of 3, again doing this calculation modulo 11. She gets the same number that Bob got, 3 (because 93 = 729, but modulo 11 it is 3, since 11×66 = 726, which leaves a remainder of 3).

Using this complicated modular arithmetic based on a prime number, but essentially raising a number to hidden powers as in the previous section, Alice and Bob establish a common secret number, in this example, 3. Modular arithmetic using prime numbers helps make the algorithm much more difficult to decipher by an eavesdropper.* In reality, the prime number is large, and so are the other numbers. When Alice and Bob use secret numbers 100 digits long, the common number jointly deduced by Alice and Bob cannot be learned by Eve even if she has access to all the world’s available computing power.

Once Alice and Bob have established a common secret number, they can use it as a key to encrypt messages from one to the other and should have a high probability that their communication will not be deciphered by an outsider.

Two keys are better than one

The year after the Diffie-Hellman algorithm was published, three academics then working at MIT—Ron Rivest, Adi Shamir, and Leonard Adelman—came up with a brilliant idea for encrypting messages. What they tried to do was to avoid the stage in which Alice and Bob must create a common secret number, since this stage slows down the communication between them.

The three MIT scientists developed the notion of a pair of keys: a public key and a private key, which are then jointly used for communicating secret messages. The public key can be published and known to all. Its use saves time. The private key is a secret that Bob keeps, allowing him to decipher coded messages from Alice (or from anyone who knows his public key). Bob publishes his public key, which is a large number. This number is obtained when he multiplies together two very large prime numbers, known only to him (they constitute his private key). When Alice wants to send Bob a secret message, she encrypts it using his known public key. But in order to decrypt the message, one would need to know Bob’s private key, which is the two prime numbers he had used to create his publicly-known key. Supposedly, only Bob can do this.

Encrypting and decrypting messages using the RSA algorithm is a complicated mathematical procedure that relies on modular arithmetic and prime numbers similarly to the way they are used in the description of the Diffie-Hellman system above. But it is more sophisticated so that it can allow deciphering using only the private key. The public key alone is useless for deciphering the RSA code.

The essential element of RSA is the fact that the public key is composed of the product of two very large unknown prime numbers. It so happens that factoring a number into its prime components is very difficult when the primes are large. (35 = 7×5, a product of two primes, is easy; but 46,324,637 = 5,881 × 7,877 is harder, and primes used in RSA encryption are much larger still.) It is this fact alone that keeps Eve in the dark. She knows the product of the two prime numbers—but she can’t easily (and hopefully not at all) deduce what the two primes are!

The RSA Challenge

Right after the RSA system was invented, Martin Gardner published in Scientific American an encrypted message and a large RSA number, with 129 digits, that was the product of two primes. He challenged his readers to break the code, offering a $100 prize. It took 17 years for the number to be factored and the message deciphered. This was a relatively short period of time—many had expected that it would take an exceedingly long time, and Rivest, Shamir, and Adelman had jested that it could take several “quadrillion years.” The complex operation was achieved using distributed computing with thousands of computers around the world performing parts of the general calculation—thus demonstrating the power of such an approach.

RSA Security, founded by the academics, has since published several similar numbers, and for a time there was a cash prize offered for their factoring into pairs of primes, which the company subsequently withdrew. By now, some of these challenges have been met by mathematicians using distributed computing. Here is one problem that is still outstanding, an RSA number with 210 digits, that has never yet been factored into two primes:

RSA-210 = 245246644900278211976517663573088018467026787678332759743414451715061600830038587216952208399332071549103626827191679864079776723243005600592035631246561218465817904100131859299619933817012149335034875870551067

Obviously, the larger the number to be factored, the longer the time needed to break it into a pair of primes. Beyond a certain length (in decimal digits), the RSA code becomes impregnable and therefore any message based on it undecipherable (in a reasonably finite length of time) by an eavesdropper. The RSA algorithm is widely used today in Internet security.

NSA’s uses and abuses of encryption

In adopting standards for encryption in the United States, and for exporting encryption products, the NSA has pushed for, and succeeded in implementing, legal limits on the size of the numbers used in RSA coding, so that—with its supercomputers—it would be able to decipher any message based on it. Presumably, the Europeans are not bound by these restrictions, and their cryptanalysts should have been able to easily devise an unbreakable RSA code (by choosing primes that are large enough) for use in routine European diplomatic communications as well as protecting their computers from hacking.

And as history has shown, supercomputers are less effective than wide-ranging worldwide distributed computing for breaking advanced codes—but by its very nature, the NSA could never employ the latter. On the other hand, the most recent revelations seem to indicate that one of the purposes of NSA searches is in fact to identify people or entities that use encryption in their communications. If so, all the more reason for the European governments to use established, Western, advanced codes, so as to set themselves apart from terrorist entities, whose codes would necessarily look different. This would actually help the NSA concentrate on identifying real threats rather than wasting resources on intercepting Brussels messages such as: “Pierre, Italian or Chinese for lunch today? Yours, Hans.”

Thus they find ourselves where they do now, in an arms race of encryption and decryption, a world in which pure mathematics plays the key role in helping invent better and better codes. As the codes become more sophisticated, so do the code-breakers, and the cycle perpetuates itself. What is so amazing is that codes that were considered absolutely unbreakable a few decades ago do become breached as the technology improves—but then again, those designing new encryption methods, on all sides, use ever more complicated math to keep a step ahead of their pursuers.

*There are two good reasons for using modular arithmetic. The first is that it acts as a many-to-one function, in the sense that many numbers, when divided by a prime, will give the same remainder—thus making Eve’s life much more complicated (she can’t uniquely reconstruct Alice and Bob’s secret numbers). Using the clock example, if she should overhear that a meeting is to take place at 1 o’clock, she couldn’t tell if it’s a.m. or p.m., or which day. The second reason is that it puts a cap on the size of numbers involved when using exponentials, since (by definition!) without modular arithmetic these numbers grow “exponentially,” and could make computations intractable.

Image courtesy Maksim Kabakou / Shutterstock



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