Showing posts with label Computer. Show all posts
Showing posts with label Computer. Show all posts

Secure your PC, Mac, or mobile device with Norton WiFi Privacy

Secure your PC, Mac, or mobile device with Norton WiFi Privacy

If you’re not using a VPN when you connect over public Wi-Fi, you’re simply playing with fire. (If you’re not using a VPN even when you connect over your own network, you might also be playing with spying 


Security for all

Before you think a VPN is the realm of those users who have something nefarious to hide – like illegal activity – you have to remember that unsecured public Wi-Fi connections like the kind that restaurants, hotels, and shops offer to their customers are quite vulnerable to hacking. Even something as harmless as popping into your bank’s website to check your account balance could put you at risk.
Unfortunately, it’s not just tech-savvy cybercriminals you have to worry about monitoring your internet use. While hacking is certainly a very real threat, a lot of tech users don’t want their activity monitored by companies interested in advertising. They may also have concerns about outsiders being able to see their social media activity, putting their family members or children at risk. You’d like to know that your personal photos, videos, and other uploads are only being seen by the people you’ve given permission.

Household name

Norton, one of the household names in the antivirus and anti-malware software industry, offers a VPN called Norton WiFi Privacy for just this kind of purpose. It encrypts your information no matter what type of device you’re using to connect, preventing others from accessing your account information, passwords, photos, credit card numbers, and more. Built as a subscription based app, it runs quietly in the background as long as you’ve got it activated, securing all of your internet use, no matter how mundane or sensitive it may be.
Features include:
  • Protect the data you send and receive when using public Wi-Fi with bank-grade encryption
  • Offers you anonymity online for safe browsing and searching
  • Access to your favorite apps and content, no matter where you travel
  • Employs a no-log virtual private network that doesn’t track, store, or worse, share your activity
  • Top-notch Norton customer support
One of the greatest things about a VPN from a personal use standpoint is the ability to connect to your own content no matter where you are. If you travel, Norton not only protects you from illegal activity over suspicious Wi-Fi connections, but it also enables you to access all of the content that you pay for and enjoy when you’re home, regardless of international licensing agreements. If it was legally accessible and legitimately owned when you’re in your usual location, you’ll be able to rely on Norton WiFi Privacy to enjoy it while abroad.
Again, VPNs were once mistakenly thought of as a tool for people with less than honest intentions, but in this current political and privacy-minded climate, it just makes sense to safeguard your information and your activity from anyone who wants to see it without your knowledge. There is no good reason for someone to follow your online use without informing you, and Norton WiFi Privacy helps prevent that threat.

Warning — Bitcoin Users Could Be Targeted by State-Sponsored Hackers

  Warning — Bitcoin Users Could Be Targeted by State-Sponsored Hackers


A leading Bitcoin information site is warning users that an upcoming version of the Blockchain consolidation software and Bitcoin wallets could most likely be targeted by "state-sponsored attackers."

Recently, one of the world's most popular cryptocurrency exchanges, Bitfinex, suffered a major hack that resulted in a loss of around $72 Million worth of Bitcoins.

Now, Bitcoin.org, the website that hosts downloads for Bitcoin Core, posted a message on its website on Wednesday warning users that the next version of the Bitcoin Core wallet, one of the most popular bitcoin wallets used to store bitcoins, might be replaced with a malicious version of the software offered by government-backed hackers.

Specifically, Chinese bitcoin users and services are encouraged to be vigilant "due to the origin of the attackers."

Bitcoin.org doesn't believe it has sufficient resources to defend against the attack. However, the website did not reveal the name of the country planning the attack.

The Warning Message from the Bitcoin.org site reads:
"Bitcoin.org has reason to suspect that the binaries for the upcoming Bitcoin Core release will likely be targeted by state-sponsored attackers. As a website, Bitcoin.org does not have the necessary technical resources to guarantee that we can defend ourselves from attackers of this calibre. We ask the Bitcoin community, and in particular the Chinese Bitcoin community to be extra vigilant when downloading binaries from our website."
"In such a situation, not being careful before you download [the software] could cause you to lose all your coins. This malicious software might also cause your computer to participate in attacks against the Bitcoin network."
Also Read: Bitcoin Exchange Offers $3.5 Million Reward for Information of Stolen Bitcoins.

In such cases, it is likely that hackers will try to hijack and replace the official binary files used to run Bitcoin software on mining pools, either:


  • By compromising the Bitcoin.org official site
  • By conducting a man-in-the-middle attack to fake a cryptographic certificate that would allow hackers to intercept victim’s encrypted HTTPS connection and replace the legitimate download with a malicious one, tricking users into installing a malicious version of the Bitcoin software.

However, Bitcoin Core developer Eric Lombrozo told The Reg that "there's absolutely nothing in the Bitcoin Core binaries, as built by the Bitcoin Core team, that has been targeted by state-sponsored attackers that we know of at this point."

"Perhaps certain sites where people download the binaries could end up getting compromised, but let's not unnecessarily spread paranoia about the Bitcoin Core binaries themselves."


Verify Signatures and Hashes


As a countermeasure, users are recommended to verify the Signature securely and hashes of Bitcoin Core binaries that are cryptographically signed with a key before running Bitcoin Core binaries to ensure the binaries are legitimate as being created by the Core developers team.
"We strongly recommend that you download that key, which should have a fingerprint of 01EA5486DE18A882D4C2684590C8019E36C2E964. You should securely verify the signature and hashes before running any Bitcoin Core binaries," the advisory states.
Moreover, you are advised to download the binaries from the official Bitcoin site only; otherwise, you may end up getting compromised.

 

Robots Are a Few of My Favorite Things by Chris Garcia

Robots Are a Few of My Favorite Things by Chris Garcia
The 1980s: a decade when robots were as vogue as Madonna. They graced the covers of popular magazines and strutted their stuff across the silver screen. Having grown up in the ’80s, it’s no wonder why the Computer History Museum’s stellar collection of robots is my favorite. Aside from popular culture, robots are also an important part of computing history. I’ll be sharing some insight into the history of robots and also highlighting some of my favorite robots currently on display at the Museum.

The Evolution of Robots

For more than two thousand years, people have been creating devices that qualify as robots; after all, the most basic definition of a robot is a machine that can do the work of a person and that works automatically. The Ancient Egyptians, Greeks, Chinese, Persians, and Romans all worked with mechanical systems that replaced human work with automation. For example, the Antikythera mechanism is often referred to as the earliest known analog computer, dating back to 150–100 BC. The medieval world continued to be obsessed with automata. Al-Jazari, an Islamic scholar, inventor, engineer, mathematician, and artist, authored The Book of Knowledge of Ingenious Mechanical Devices in 1206, where he designed and described over 100 mechanical devices, like this elephant clock from the Metropolitan Museum of Art. During the Renaissance, lifelike mechanical figures that originated out of the clockmaking traditions of France, Germany, and England became common fixtures in the Wunderkammern, or cabinet of curiosities, of European courts.
1-0M.The_Turk.Racknitz-Joseph.1789.THE_LIBRARY_COMPANY_OF_PHILADELPHIA-642.03.exhibit.L062302012.lg

Joseph Racknitz, Engraving of the Turk, 1789. Courtesy of the Library Company of Philadelphia.
Over time these systems not only became more complex, but also become sights to behold. Such machines were often put on public display and drew huge crowds. This led hoaxers to develop machines like the Turk; a mechanical chess player developed by Wolfgang von Kempelen in 1770 that seemed to take on human opponents, but was actually being controlled by a man hiding inside a box.




Astounding Science Fiction, October 1953. Cover art by Frank Kelly Freas. Image credit: Chris Holmes.
Astounding Science Fiction, October 1953. Cover art by Frank Kelly Freas. Image credit: Chris Holmes.
By the time the word “robot” was coined by Karel Čapek in his 1920 play R.U.R.(Rossum’s Universal Robots), the automatons of centuries past had lost much of their luster and robots as we think of them today began to appear frequently in popular culture, long before the academic fields of robotics or artificial intelligence. Films like Metropolis (1927) and pulp fiction series like Astounding Stories, which would later become Astounding Science Fiction, put the modern, humanoid robot on everyone’s minds.
Robot Rebellion scene from R.U.R. (Rossum’s Universal Robots), 1928–1929. © Billy Rose Theatre Division, The New York Public Library for the Performing Arts, Astor, Lenox and Tilden Foundations.
Robot Rebellion scene from R.U.R. (Rossum’s Universal Robots), 1928–1929. © Billy Rose Theatre Division, The New York Public Library for the Performing Arts, Astor, Lenox and Tilden Foundations.
Imagination quickly led to innovation. Technological and industrial advances following the Second World War, such as miniaturization, sensing, and energy storage, produced some of the earliest modern robots. Notably, George Devol patented a process for controlling machines using magnetic recordings in 1946 and would later conceive of the Unimate line of industrial robots that worked the assembly line for General Motors.
Unimate at General Electric, ca. 1963.
Unimate at General Electric, ca. 1963.

Robots Are Computer History

The Computer Museum (TCM) in Boston, predecessor to the Computer History Museum, was revolutionary in recognizing robotics and artificial intelligence as a significant part of computer history. TCM held several early exhibits about robots, including Smart Machines, which was originally touted as the being the most important group of robots ever assembled in one place.
Robot Theater in Smart Machines, 1987. The Computer Museum.
Robot Theater in Smart Machines, 1987. The Computer Museum.
Mobile robots included: Shakey from Stanford University, The Prototype Mars Rover, the Stanford Cart, the quadruped Titan III from the Tokyo Institute of Technology, and a Denning Mobile Robot. Robot arms included the Unimate I, the Stanford Arm, the Direct Drive Arm-1 from Carnegie Mellon University, and the Tentacle Arm from MIT. Building upon this strong foundation set by TCM, the Computer History Museum continues to place an important emphasis on robotics and artificial intelligence in its collection as well as its exhibits—especially in Revolution: The First 2000 Years of Computing.

Robot Lineup

Squee: the Robot Squirrel

Squee: the Robot Squirrel, 1951. Designed by Jack Koff. Image © Mark Richards.
Squee: the Robot Squirrel, 1951. Designed by Jack Koff. Image © Mark Richards.
One of the most interesting early robots on display in Revolution is Jack Koff’s Squee: the Robot Squirrel. Using two simple light sensors and two contact switches, Squee’s sole purpose was to gather “nuts” and bring them to his nest. These nuts were actually tennis balls, and Squee could only find them if the room was dark.


The Beast

7a and 7b. The Beast, 1961. Designed by John Hopkins University, Applied Physics Laboratory
The Beast, 1961. Designed by John Hopkins University, Applied Physics Laboratory
Another favorite of mine in Revolution is a robot built by the Applied Physics Laboratory at John Hopkins University in the 1960s, simply dubbed “The Beast.” The Beast was significant in that it was not powered by a computer; instead, it used transistors to create logic gates that allowed it to reason out a path as its sensors picked up various obstacles. The Beast roamed hallways, and then when power ran low, it could sense black wall outlets and plug itself in to recharge. Recharging would become an influential concept, especially in modern consumer robots such as the Roomba.

The Rancho Arm

Rancho Arm, ca. 1962. Designed by Rancho Los Amigos Hospital. Image © Mark Richards
Rancho Arm, ca. 1962. Designed by Rancho Los Amigos Hospital. Image © Mark Richards
Robotics has greatly enriched the field of prosthetics. The Rancho Arm was developed at Rancho Los Amigos Hospital in Downey, California, and was one of the first attempts at a computer-controlled arm. The Rancho Arm had six joints, allowing it to reasonably mimic the motion of the human arm. The device was heavy, more than 70 pounds, making it less attractive to use as a prosthetic. It did, however, influence further designs of robotic arms for medical and industrial uses.

Shakey

In the late 1960s, the team at the Stanford Research Institute (SRI) designed Shakey, one of the first intelligent mobile robots. Designed to reason out a path using input from its variety of sensors, Shakey was one of the most ambitious attempts at an autonomous robot. The system used onboard sensors, range finders, and a TV camera, to create a map of its environment. It wirelessly sent that information to minicomputers, which processed it and determined viable paths and movements. This technique made for a slow system, averaging about two meters an hour.
Shakey, 1969. Designed by Stanford Research Institute (SRI). Image © Mark Richards.
Shakey, 1969. Designed by Stanford Research Institute (SRI). Image © Mark Richards.

SAIL Projects

Perhaps one of the most important groups leading research in robotics during the 1960s and ’70s was the Stanford Artificial Intelligence Laboratory, known as SAIL. SAIL attracted many of the top minds in robotics research and developed projects that would have a lasting impact on the field.
Stanford Cart, 1960–1980. Designed by the Stanford Artificial Intelligence Laboratory (SAIL). Image © Mark Richards.
Stanford Cart, 1960–1980. Designed by the Stanford Artificial Intelligence Laboratory (SAIL). Image © Mark Richards.
The Stanford Cart began as a test bed for a moon rover that could be controlled from Earth. Led by James L. Adams, the original cart was a tethered prototype that used car batteries and bicycle tires. As time went on, the project evolved and the cart morphed into a robotic road vehicle, designed to be controlled by a human operator. Eventually, it became an autonomous vehicle, but with a few drawbacks: It could only follow a bright white line under controlled lighting.
A later version of the cart system managed to cross a chair-filled room in roughly five hours. The cart would move one meter, recalculate using a television camera and other sensors, then 15 minutes later it would move another meter. While this may seem unreasonably slow, it managed to cross a room without human intervention, a major step along the road towards today’s self-driving cars, which has also been an area of research for the current incarnation of SAIL.
Stanford Hydraulic Arm, 1966–1968. Designed by the Stanford Artificial Intelligence Laboratory (SAIL). Image © Mark Richards.
Stanford Hydraulic Arm, 1966–1968. Designed by the Stanford Artificial Intelligence Laboratory (SAIL). Image © Mark Richards.
Robotic arms are another major subcategory in the fields of robotics and artificial intelligence. The Hydraulic Arm from SAIL was designed to test whether a robotic manipulator could operate at the speed of the computer controlling it. Using a PDP-6, the arm did operate quickly, but the mass of the arm moving at such a speed led to the entire room shaking as it worked. Eventually, SAIL had to reinforce the floor of the room in order to keep the arm from doing damage to the building!
 The Orm, 1965. Designed by Victor Scheinman and Larry Leifer. Image © Mark Richards.
The Orm, 1965. Designed by Victor Scheinman and Larry Leifer. Image © Mark Richards.
SAIL researchers Victor Scheinman and Larry Leifer developed the pneumatically-powered arm Orm. The Orm, which is Norwegian for “snake,” featured 28 rubber sacks sandwiched between steel plates. By inflating various combinations of sacks, the arm would move. While this method proved inexact, the concept of pneumatically-driven arms has continued.

The Oblix

 The Oblix, ca. 1978. Designed by Hirose Robotics Laboratory, Tokyo Institute of Technology. Image © Mark Richards.
The Oblix, ca. 1978. Designed by Hirose Robotics Laboratory, Tokyo Institute of Technology. Image © Mark Richards.
Modeling animal motion in robots has also been an area of interest among roboticists around the world. Dr. Shigeo Hirose of the Tokyo Institute of Technology specializes in developing robots, like the Oblix, whose movements are inspired by different animals. Adopting the properties of a snake, the Oblix had a segmented body that crept and slithered on the floor using small wheels. The Oblix operated as both a robotic arm and a tethered rover. It was released commercially as the MOGURA robot arm.

The Biper Series

Biper-4 robot, 1983. Designed by Isao Shimoyama and Hirofumi Miura, University of Tokyo. Image © Mark Richards.
Biper-4 robot, 1983. Designed by Isao Shimoyama and Hirofumi Miura, University of Tokyo. Image © Mark Richards.
Human bipedal locomotion was another area of research among early roboticists, especially in the 1980s. Isao Shimoyama and Hirofumi Miura of the University of Tokyo created the Biper series of robots as an experiment to see if they could make a robot that could walk like a human. By the third iteration, Biper-3, the robot had long legs, feet, and ankles, but no knees; this resulted in a walk that was harsh and jerky. Biper-4, on display in Revolution, had mechanized knees, but was so unsteady that it required large ski-like feet to remain steady! Eventually, five different Biper systems were developed, though none were able to convincingly mimic a human stride.

The pace of robotics research has not slowed. Projects like SRI’s Centibots (currently in the Museum’s collection) and Boston Dynamics’ robot cheetah, are still testing the limits of what’s possible with the application of processing power to mechanical forms. And as long as people are still building research robots, we’ll keep on collecting them! this is technology is becoming a still coming future
thanks computer histry