Tuesday, October 17, 2017

What is Blockchain

Ref: https://blockgeeks.com/guides/what-is-blockchain-technology

What is Blockchain Technology? A Step-by-Step Guide For Beginners


An in-depth guide by BlockGeeks


Is blockchain technology the new internet?

The blockchain is an undeniably ingenious invention – the brainchild of a person or group of people known by the pseudonym,  Satoshi Nakamoto. But since then, it has evolved into something greater, and the main question every single person is asking is: What is Blockchain?

By allowing digital information to be distributed but not copied, blockchain technology created the backbone of a new type of internet. Originally devised for the digital currency, Bitcoin, the tech community is now finding other potential uses for the technology.

Bitcoin has been called “digital gold,” and for a good reason. To date, the total value of the currency is close to $9 billion US. And blockchains can make other types of digital value. Like the internet (or your car), you don’t need to know how the blockchain works to use it. However, having a basic knowledge of this new technology shows why it’s considered revolutionary. So, we hope you enjoy this, what is Blockchain guide.

What is Blockchain Technology?

“The blockchain is an incorruptible digital ledger of economic transactions that can be programmed to record not just financial transactions but virtually everything of value.”
Don & Alex Tapscott, authors Blockchain Revolution (2016)

 

 

 

A distributed database

Picture a spreadsheet that is duplicated thousands of times across a network of computers. Then imagine that this network is designed to regularly update this spreadsheet and you have a basic understanding of the blockchain.

Information held on a blockchain exists as a shared — and continually reconciled — database. This is a way of using the network that has obvious benefits. The blockchain database isn’t stored in any single location, meaning the records it keeps are truly public and easily verifiable. No centralized version of this information exists for a hacker to corrupt. Hosted by millions of computers simultaneously, its data is accessible to anyone on the internet.

To go in deeper with the Google spreadsheet analogy, I would like you to read this piece from a blockchain specialist.

Blockchain as Google Docs

 

“The traditional way of sharing documents with collaboration is to send a Microsoft Word document to another recipient, and ask them to make revisions to it. The problem with that scenario is that you need to wait until receiving a return copy before you can see or make other changes because you are locked out of editing it until the other person is done with it. That’s how databases work today. Two owners can’t be messing with the same record at once.That’s how banks maintain money balances and transfers; they briefly lock access (or decrease the balance) while they make a transfer, then update the other side, then re-open access (or update again).With Google Docs (or Google Sheets), both parties have access to the same document at the same time, and the single version of that document is always visible to both of them. It is like a shared ledger, but it is a shared document. The distributed part comes into play when sharing involves a number of people.

Imagine the number of legal documents that should be used that way. Instead of passing them to each other, losing track of versions, and not being in sync with the other version, why can’t *all* business documents become shared instead of transferred back and forth? So many types of legal contracts would be ideal for that kind of workflow.You don’t need a blockchain to share documents, but the shared documents analogy is a powerful one.”

William Mougayar, Venture advisor, 4x entrepreneur, marketer, strategist and blockchain specialist 

Blockchain Durability and robustness

Blockchain technology is like the internet in that it has a built-in robustness. By storing blocks of information that are identical across its network, the blockchain cannot:

Be controlled by any single entity.


Has no single point of failure.


Bitcoin was invented in 2008. Since that time, the Bitcoin blockchain has operated without significant disruption. (To date, any of problems associated with Bitcoin have been due to hacking or mismanagement. In other words, these problems come from bad intention and human error, not flaws in the underlying concepts.)

The internet itself has proven to be durable for almost 30 years. It’s a track record that bodes well for blockchain technology as it continues to be developed.

“As revolutionary as it sounds, Blockchain truly is a mechanism to bring everyone to the highest degree of accountability. No more missed transactions, human or machine errors, or even an exchange that was not done with the consent of the parties involved. Above anything else, the most critical area where Blockchain helps is to guarantee the validity of a transaction by recording it not only on a main register but a connected distributed system of registers, all of which are connected through a secure validation mechanism.” 

– Ian Khan, TEDx Speaker | Author | Technology Futurist

 

Transparent and incorruptible

The blockchain network lives in a state of consensus, one that automatically checks in with itself every ten minutes.  A kind of self-auditing ecosystem of a digital value, the network reconciles every transaction that happens in ten-minute intervals. Each group of these transactions is referred to as a “block”. Two important properties result from this:

Transparency data is embedded within the network as a whole, by definition it is public.


It cannot be corrupted altering any unit of information on the blockchain would mean using a huge amount of computing power to override the entire network.


 

In theory, this could be possible. In practice, it’s unlikely to happen. Taking control of the system to capture Bitcoins, for instance, would also have the effect of destroying their value.

“Blockchain solves the problem of manipulation. When I speak about it in the West, people say they trust Google, Facebook, or their banks. But the rest of the world doesn’t trust organizations and corporations that much — I mean Africa, India, the Eastern Europe, or Russia. It’s not about the places where people are really rich. Blockchain’s opportunities are the highest in the countries that haven’t reached that level yet.”
Vitalik Buterin, inventor of Ethereum

 

 

A network of nodes

A network of so-called computing “nodes” make up the blockchain.

Node

(computer connected to the blockchain network using a client that performs the task of validating and relaying transactions) gets a copy of the blockchain, which gets downloaded automatically upon joining the blockchain network.

 

Together they create a powerful second-level network, a wholly different vision for how the internet can function.

Every node is an “administrator” of the blockchain, and joins the network voluntarily (in this sense, the network is decentralized). However, each one has an incentive for participating in the network: the chance of winning Bitcoins.

Nodes are said to be “mining” Bitcoin, but the term is something of a misnomer. In fact, each one is competing to win Bitcoins by solving computational puzzles. Bitcoin was the raison d’etre of the blockchain as it was originally conceived. It’s now recognized to be only the first of many potential applications of the technology.

There are an estimated 700 Bitcoin-likecryptocurrencies (exchangeable value tokens) already available. As well, a range of other potential adaptations of the original blockchain concept are currently active, or in development.

“Bitcoin has the same character a fax machine had. A single fax machine is a doorstop. The world where everyone has a fax machine is an immensely valuable thing.”
Larry Summers, Former US Secretary of the Treasury

The idea of decentralization

By design, the blockchain is a decentralized technology.

Anything that happens on it is a function of the network as a whole. Some important implications stem from this. By creating a new way to verify transactions aspects of traditional commerce could become unnecessary. Stock market trades become almost simultaneous on the blockchain, for instance — or it could make types of record keeping, like a land registry, fully public. And decentralization is already a reality.

A global network of computers uses blockchain technology to jointly manage the database that records Bitcoin transactions. That is, Bitcoin is managed by its network, and not any one central authority. Decentralization means the network operates on a user-to-user (or peer-to-peer) basis. The forms of mass collaboration this makes possible are just beginning to be investigated.

“I think decentralized networks will be the next huge wave in technology.”
Melanie Swan, author Blockchain: Blueprint for a New Economy (2015)

 

 

Who will use the blockchain?

As web infrastructure, you don’t need to know about the blockchain for it to be useful in your life.

Currently, finance offers the strongest use cases for the technology. International remittances, for instance. The World Bank estimates that over $430 billion US in money transfers were sent in 2015. And at the moment there is a high demand for blockchain developers.

The blockchain potentially cuts out the middleman for these types of transactions.  Personal computing became accessible to the general public with the invention of the Graphical User Interface (GUI), which took the form of a “desktop”. Similarly, the most common GUI devised for the blockchain are the so-called “wallet” applications, which people use to buy things with Bitcoin, and store it along with other cryptocurrencies.

Transactions online are closely connected to the processes of identity verification. It is easy to imagine that wallet apps will transform in the coming years to include other types of identity management.

“Online identity and reputation will be decentralized. We will own the data that belongs to us.”
William Mougayar, author The Business Blockchain: Promise, Practice, and Application of the Next Internet Technology (2016)

 

The Blockchain & Enhanced security

By storing data across its network, the blockchain eliminates the risks that come with data being held centrally.

Its network lacks centralized points of vulnerability that computer hackers can exploit. Today’s internet has security problems that are familiar to everyone. We all rely on the “username/password” system to protect our identity and assets online. Blockchain security methods use encryption technology.

The basis for this are the so-called public and private “keys”. A “public key” (a long, randomly-generated string of numbers) is a users’ address on the blockchain. Bitcoins sent across the network gets recorded as belonging to that address. The “private key” is like a password that gives its owner access to their Bitcoin or other digital assets. Store your data on the blockchain and it is incorruptible. This is true, although protecting your digital assets will also require safeguarding of your private key by printing it out, creating what’s referred to as a paper wallet.

A second-level network

With blockchain technology, the web gains a new layer of functionality.

Already, users can transact directly with one another — Bitcoin transactions in 2016 averaged over $200,000 US per day. With the added security brought by the blockchain new internet business are on track to unbundle the traditional institutions of finance.

Goldman Sachs believes that blockchain technology holds great potential especially to optimize clearing and settlements, and could represent global savings of up to $6bn per year.

“2017 will be a pivotal year for blockchain tech. Many of the startups in the space will either begin generating revenue – via providing products the market demands/values – or vaporize due to running out of cash. In other words, 2017 should be the year where there is more implementation of products utilizing blockchain tech, and less talk about blockchain tech being the magical pixie dust that can just be sprinkled atop everything. Of course, from a customers viewpoint, this will not be obvious as blockchain tech should dominantly be invisible – even as its features and functionality improve peoples’/business’ lives. I personally am familiar with a number of large-scale blockchain tech use cases that are launching soon/2017. This implementation stage, which 2017 should represent, is a crucial step in the larger adoption of blockchain tech, as it will allow skeptics to see the functionality, rather than just hear of its promise.”

–  George Howard, Associate Professor Brown University, Berklee College of Music and Founder of George Howard Strategic

 

 

The Blockchain a New Web 3.0?

The blockchain gives internet users the ability to create value and authenticates digital information. What will new business applications result?

Smart contracts

Distributed ledgers enable the coding of simple contracts that will execute when specified conditions are met. Ethereum is an open source blockchain project that was built specifically to realize this possibility. Still, in its early stages, Ethereum has the potential to leverage the usefulness of blockchains on a truly world-changing scale.

At the technology’s current level of development, smart contracts can be programmed to perform simple functions. For instance, a derivative could be paid out when a financial instrument meets certain benchmark, with the use of blockchain technology and Bitcoin enabling the payout to be automated.


The sharing economy

With companies like Uber and AirBnB flourishing, the sharing economy is already a proven success. Currently, however, users who want to hail a ride-sharing service have to rely on an intermediary like Uber. By enabling peer-to-peer payments, the blockchain opens the door to direct interaction between parties — a truly decentralized sharing economy results.

An early example, OpenBazaar uses the blockchain to create a peer-to-peer eBay. Download the app onto your computing device, and you can transact with OpenBazzar vendors without paying transaction fees. The “no rules” ethos of the protocol means that personal reputation will be even more important to business interactions than it currently is on eBay.


Crowdfunding

Crowdfunding initiatives like Kickstarter and Gofundme are doing the advance work for the emerging peer-to-peer economy. The popularity of these sites suggests people want to have a direct say in product development. Blockchains take this interest to the next level, potentially creating crowd-sourced venture capital funds.

In 2016, one such experiment, the Ethereum-based DAO (Decentralized Autonomous Organization), raised an astonishing $200 million USD in just over two months. Participants purchased “DAO tokens” allowing them to vote on smart contract venture capital investments (voting power was proportionate to the number of DAO they were holding). A subsequent hack of project funds proved that the project was launched without proper due diligence, with disastrous consequences.  Regardless, the DAO experiment suggests the blockchain has the potential to usher in “a new paradigm of economic cooperation.”


Governance

By making the results fully transparent and publicly accessible, distributed database technology could bring full transparency to elections or any other kind of poll taking. Ethereum-based smart contracts help to automate the process.

The app, Boardroom, enables organizational decision-making to happen on the blockchain. In practice, this means company governance becomes fully transparent and verifiable when managing digital assets, equity or information.


Supply chain auditing

Consumers increasingly want to know that the ethical claims companies make about their products are real. Distributed ledgers provide an easy way to certify that the backstories of the things we buy are genuine. Transparency comes with blockchain-based timestamping of a date and location — on ethical diamonds, for instance — that corresponds to a product number.

The UK-based Provenance offers supply chain auditing for a range of consumer goods. Making use of the Ethereum blockchain, a Provenance pilot project ensures that fish sold in Sushi restaurants in Japan has been sustainably harvested by its suppliers in Indonesia.


File storage

Decentralizing file storage on the internet brings clear benefits. Distributing data throughout the network protects files from getting hacked or lost.

Inter Planetary File System (IPFS) makes it easy to conceptualize how a distributed web might operate. Similar to the way a bittorrent moves data around the internet, IPFS gets rid of the need for centralized client-server relationships (i.e., the current web). An internet made up of completely decentralized websites has the potential to speed up file transfer and streaming times. Such an improvement is not only convenient. It’s a necessary upgrade to the web’s currently overloaded content-delivery systems.


Prediction markets

The crowdsourcing of predictions on event probability is proven to have a high degree of accuracy. Averaging opinions cancels out the unexamined biases that distort judgment. Prediction markets that payout according to event outcomes are already active. Blockchains are a “wisdom of the crowd” technology that will no doubt find other applications in the years to come.

Still, in Beta, the prediction market application Augur makes share offerings on the outcome of real-world events. Participants can earn money by buying into the correct prediction. The more shares purchased in the correct outcome, the higher the payout will be. With a small commitment of funds (less than a dollar), anyone can ask a question, create a market based on a predicted outcome, and collect half of all transaction fees the market generates.


Protection of intellectual property

As is well known, digital information can be infinitely reproduced — and distributed widely thanks to the internet. This has given web users globally a goldmine of free content. However, copyright holders have not been so lucky, losing control over their intellectual property and suffering financially as a consequence. Smart contracts can protect copyright and automate the sale of creative works online, eliminating the risk of file copying and redistribution.

Mycelia uses the blockchain to create a peer-to-peer music distribution system. Founded by the UK singer-songwriter Imogen Heap, Mycelia enables musicians to sell songs directly to audiences, as well as license samples to producers and divvy up royalties to songwriters and musicians — all of these functions being automated by smart contracts. The capacity of blockchains to issue payments in fractional cryptocurrency amounts (micropayments) suggests this use case for the blockchain has a strong chance of success.


Internet of Things (IoT)

What is the IoT? The network-controlled management of certain types of electronic devices — for instance, the monitoring of air temperature in a storage facility. Smart contracts make the automation of remote systems management possible. A combination of software, sensors, and the network facilitates an exchange of data between objects and mechanisms. The result increases system efficiency and improves cost monitoring.

The biggest players in manufacturing, tech and telecommunications are all vying for IoT dominance. Think Samsung, IBM and AT&T. A natural extension of existing infrastructure controlled by incumbents, IoT applications will run the gamut from predictive maintenance of mechanical parts to data analytics, and mass-scale automated systems management.


Neighbourhood Microgrids

Blockchain technology enables the buying and selling of the renewable energy generated by neighborhood microgrids. When solar panels make excess energy, Ethereum-based smart contracts automatically redistribute it. Similar types of smart contract automation will have many other applications as the IoT becomes a reality.

Located in Brooklyn, Consensys is one of the foremost companies globally that is developing a range of applications for Ethereum. One project they are partnering on is Transactive Grid, working with the distributed energy outfit, LO3. A prototype project currently up and running uses Ethereum smart contracts to automate the monitoring and redistribution of microgrid energy. This so-called “intelligent grid” is an early example of IoT functionality.


Identity management

There is a definite need for better identity management on the web. The ability to verify your identity is the lynchpin of financial transactions that happen online. However, remedies for the security risks that come with web commerce are imperfect at best. Distributed ledgers offer enhanced methods for proving who you are, along with the possibility to digitize personal documents. Having a secure identity will also be important for online interactions — for instance, in the sharing economy. A good reputation, after all, is the most important condition for conducting transactions online.

Developing digital identity standards is proving to be a highly complex process. Technical challenges aside, a universal online identity solution requires cooperation between private entities and government. Add to that the need to navigate legal systems in different countries and the problem becomes exponentially difficult. E-Commerce on the internet currently relies on the SSL certificate (the little green lock) for secure transactions on the web. Netki is a startup that aspires to create an SSL standard for the blockchain. Having recently announced a $3.5 million seed round, Netki expects a product launch in early 2017.


AML and KYC

Anti-money laundering (AML) and know your customer (KYC) practices have a strong potential for being adapted to the blockchain. Currently, financial institutions must perform a labour intensive multi-step process for each new customer. KYC costs could be reduced through cross-institution client verification, and at the same time increase monitoring and analysis effectiveness.

Startup Polycoin has an AML/KYC solution that involves analysing transactions. Those transactions identified as being suspicious are forwarded on to compliance officers. Another startup Tradle is developing an application called Trust in Motion (TiM). Characterized as an “Instagram for KYC”, TiM allows customers to take a snapshot of key documents (passport, utility bill, etc.). Once verified by the bank, this data is cryptographically stored on the blockchain.


Data management

Today, in exchange for their personal data people can use social media platforms like Facebook for free. In future, users will have the ability to manage and sell the data their online activity generates. Because it can be easily distributed in small fractional amounts, Bitcoin — or something like it — will most likely be the currency that gets used for this type of transaction.

The MIT project Enigma understands that user privacy is the key precondition for creating of a personal data marketplace. Enigma uses cryptographic techniques to allow individual data sets to be split between nodes, and at the same time run bulk computations over the data group as a whole. Fragmenting the data also makes Enigma scalable (unlike those blockchain solutions where data gets replicated on every node). A Beta launch is promised within the next six months.


Land title registration

As Publicly-accessible ledgers, blockchains can make all kinds of record-keeping more efficient. Property titles are a case in point. They tend to be susceptible to fraud, as well as costly and labour intensive to administer.

A number of countries are undertaking blockchain-based land registry projects. Honduras was the first government to announce such an initiative in 2015, although the current status of that project is unclear. This year, the Republic of Georgia cemented a deal with the Bitfury Group to develop a blockchain system for property titles. Reportedly, Hernando de Soto, the high-profile economist and property rights advocate, will be advising on the project. Most recently, Sweden announced it was experimenting with a blockchain application for property titles.


Stock trading

The potential for added efficiency in share settlement makes a strong use case for blockchains in stock trading. When executed peer-to-peer, trade confirmations become almost instantaneous (as opposed to taking three days for clearance). Potentially, this means intermediaries — such as the clearing house, auditors and custodians — get removed from the process.

Numerous stock and commodities exchanges are prototyping blockchain applications for the services they offer, including the ASX (Australian Securities Exchange), the Deutsche Börse (Frankfurt’s stock exchange) and the JPX (Japan Exchange Group). Most high profile because the acknowledged first mover in the area, is the Nasdaq’s Linq, a platform for private market trading (typically between pre-IPO startups and investors). A partnership with the blockchain tech company Chain, Linq announced the completion of it its first share trade in 2015. More recently, Nasdaq announced the development of a trial blockchain project for proxy voting on the Estonian Stock Market.


“2016 was the year in which blockchain theory achieved general acceptance, but remained in theory, with the big players lingering around the hoop waiting to see who would take the first shot. As the year comes to an end, blockchain technology is tantalizingly close to turning the corner and entering the realm of small-scale commercial ability. Overall, 2017 is going to be the year of the very well-considered and well-funded proof of concept, with a few projects achieving revenue positive status. Venture investment is going to continue to be substantial but less than we saw in 2016 and 2015. I’d predict one or two exits by acquisition.” 

– Judd Bagley  Director of Communications at Overstock.com and Chief Evangelist at t0.com

 

 

Saturday, June 10, 2017

Advanced Persistent Threat (APT)

http://searchsecurity.techtarget.com/definition/advanced-persistent-threat-APT

An advanced persistent threat (APT) is a network attack in which an unauthorized person gains access to a network and stays there undetected for a long period of time. The intention of an APT attack is to steal data rather than to cause damage to the network or organization. APT attacks target organizations in sectors with high-value information, such as national defense, manufacturing and the financial industry.

In a simple attack, the intruder tries to get in and out as quickly as possible in order to avoid detection by the network's intrusion detection system (IDS). In an APT attack, however, the goal is not to get in and out but to achieve ongoing access. To maintain access without discovery, the intruder must continuously rewrite code and employ sophisticated evasion techniques. Some APTs are so complex that they require a full time administrator.

An APT attacker often uses spear fishing, a type of social engineering, to gain access to the network through legitimate means. Once access has been achieved, the attacker establishes a back door.

The next step is to gather valid user credentials (especially administrative ones) and move laterally across the network, installing more back doors. The back doors allow the attacker to install bogus utilities and create a "ghost infrastructure" for distributing malware that remains hidden in plain sight.

Although APT attacks are difficult to identify, the theft of data can never be completely invisible. Detecting anomalies in outbound data is perhaps the best way for an administrator to discover that his network has been the target of an APT attack.

Micron Addresses IoT Security With New Authenta™ Technology in Flash Memory

Ref: https://www.micron.com/about/blogs/2017/may/micron-addresses-iot-security-with-new-authenta-technology-in-flash-memory?utm_source=Micron+Master+List&utm_campaign=9b513199e4-EMAIL_CAMPAIGN_2017_06_08&utm_medium=email&utm_term=0_1ff6a9a057-9b513199e4-18982629

Only a couple of years ago we were discussing how one day the Internet of Things (IoT) would enable higher levels of intelligence and functionality in a wide array of things,  from devices in the home to the factory. This growth is happening faster than many expected, but so are the cyber-attacks that are leveraging these connected devices everywhere. In fact, according to Gartner, by 2020, over 25% of identified attacks in enterprises will involve IoT. So far, the cost and complexity of adding security to IoT end-points has led to it mostly being ignored or an afterthought. But continued onslaught of cyber-attacks has raised the awareness that OEMs can no longer afford to ignore this issue and risk their IoT driven business and company’s reputation. They must embed security in the DNA of their IoT devices now.
  
To address this challenge, Micron has recently launched a new technology capability that adds a strong layer of defense to a broad array of IoT devices. Our technology can build upon existing levels of security as defense in depth layered security where previously it may have been too costly. The premise is simple: We’re leveraging existing standard non-volatile memory (NVM) sockets, or flash memory, to do some heavy-lifting that protects the integrity of the device itself as well as the software that runs on the device. New Micron® flash memory with Authenta™ technology will replace existing flash devices with the same NVM function while adding a new unique level of hardware based security capabilities. And system designers can leverage these capabilities into an end-to-end, cloud-to-device IoT security strategy enabled by simple middleware and software development kits (SDKs).



A Zero-Component Approach: Just Use Flash

Flash memory has been one of the most standardized semiconductors in electronic devices since early PC days. That’s when the Basic Input/Output System (BIOS) was one of the first solutions to leverage a single volt power supply flash memory that could provide nonvolatility as well as the ability to make in-system modifications. Over time as more functionality and performance have been added to flash memory, the electrical interface to flash has remained fairly constant. Various types of flash memory exist today, including serial NOR, parallel NOR, serial NAND, parallel NAND, e.MMC, UFS, etc. These sockets are sourcable from multiple vendors and are used in most embedded systems across various industries and applications.  

For example, today we see standard serial NOR in a wide array of applications like medical devices, factory automation boards, automotive ECUs, smart meters and internet gateways, just to name a few. Given diversity of chipset architectures (processors, controllers or SoCs), operating systems, supply chains used across these applications, flash memory actually represents the most common denominator building block in these systems. Leveraging flash memory to add a strong level of security capability in the system makes this approach possibly the simplest and most scalable security implementation in the industry.

Location of Your Hardware-Based Roots of Trust Matters

System resilience today is typically characterized by the location of “roots of trust” integrated into devices and leveraged by the solution for the security functions they provide. For more information on roots of trust, look for the definition created by the National Institute of Technology (NIST) in Special Publication 800-164. The industry has lot of varied implementations of roots of trust at the system level, using a mix of hardware and software capabilities, resulting in fragmentation of approaches and confusing level of security. The perplexing array of options has also done a good job of masking a key gap: how to defend the non-volatile memory which is where critical code and data is stored.

Standard thinking is driving engineers to expect the processor and other secure elements like hardware security modules (HSMs) to offer critical security services to their systems. This has created a security gap at the lowest levels of boot in many systems where discrete flash memory components store system-critical code and data. The flash has become the target for many hackers to create Advanced Persistent Threats (APT’s) that can mask themselves from higher levels of code and resist removal. In many of these cases, flash memory is re-imaged or rewritten with new malicious code undermining the integrity of that device.

Micron’s Authenta™ technology integrates true hardware-based roots of trust into flash memory, enabling strong cryptographic identity and health management for IoT devices. By moving essential security primitives in-memory, it becomes simpler to protect the intregrity of code and data housed within the memory itself. This approach significantly enhances system level security while minimizing the complexity and cost of implementations.

Making Security Easy to Implement

At Hannover Messe, Micron and Microsoft announced a new IoT device management capability that leverages key elements of our new Authenta technology in flash memory. This capabilitiy enables device onboarding and management by the Microsoft® Azure® IoT cloud using Micron’s Authenta enabled flash memory and associated software solutions. The Micron solutions offer a strong cryptographic identity that becomes the basis for critical device provisioning services like the newly announced Azure IoT Hub Device Provisioning Service (DPS). This new DPS along with Authenta enabled memory can enable zero-touch provisioning of devices to the correct IoT hub as well as other valuable services.

To implement this capability, Micron and Microsoft leveraged the Device Identity Composition Engine (DICE), an upcoming standard from the Trusted Computing Group (TCG), and Micron’s Authenta enabled memory to demonstrate how only trusted hardware can gain access to the Microsoft Azure IoT cloud (see Microsoft blog). One key aspect of the combined solution is that the health and identity of an IoT device is verified in memory where critical code is typically stored. The unique DNA of each IoT device can now offer customers end-to-end device integrity at a new level, starting at the boot process. This will enable additional functionality like hardware-based device attestation and provisioning as well as administrative remediation of the device if necessary.

Strong Identity and Security for All

Today, it is expected that Fortune 100 companies staff cybersecurity specialists with the intent to provide truly world-class cybersecurity protection at all levels possible. This comes at a high cost, and smaller companies don’t have the options that larger companies have to offer these corporate services. The cost of hardware and software security implementation and management, as well as the significant fragmentation of security technology, have created too many hurdles for many companies to burden. With the release of our Authenta technology, Micron, in collaboration with our partners, intends to simplify device security implementations and significantly reduce financial burdens for all companies to launch IoT deployments affordably and securely.

Wednesday, June 7, 2017

Monday, December 26, 2016

17 incredibly useful Google products and services you didn’t know existed

Ref: http://www.businessinsider.sg/google-products-youve-never-heard-of/?r=US&IR=T#Vo9Jg2wEddGDouSc.97

17 incredibly useful Google products and services you didn’t know existed

Most of us have heard of Google’s well-publicized moonshots: Self-driving cars, smart contact lenses, internet-beaming balloons, and more.

While those products and services sound amazing, most of us can’t use them just yet. But the company actually has a bunch of other ones that are incredibly useful that you might not even know existed. 

For example, did you know Google has a massive free font library?

Here are some of the under-the-radar services Google offers.

Jillian D’Onfro contributed to an earlier version of this story.

Google Keep is a killer notes and reminder app that works across both desktops and smartphones.

image: https://static-ssl.businessinsider.com/image/54579d5eecad049b0ac30347-960-720/google-keep-is-a-killer-notes-and-reminder-app-that-works-across-both-desktops-and-smartphones.jpg

Watch the YouTube video here. 

You can set a timer on Google (and get an alarm to sound when time is up) by Googling any amount of time followed by “timer.”

image: https://static-ssl.businessinsider.com/image/585862b7ca7f0c1b008b6b5d-960-720/you-can-set-a-timer-on-google-and-get-an-alarm-to-sound-when-time-is-up-by-googling-any-amount-of-time-followed-by-timer.jpg

Source. 

Google.com/sky lets you explore the far reaches of the universe using images from NASA satellite, the Sloan Digital Sky Survey, and the Hubble Telescope.

image: https://static-ssl.businessinsider.com/image/585862e2ca7f0ccb018b6a7c-960-720/googlecomsky-lets-you-explore-the-far-reaches-of-the-universe-using-images-from-nasa-satellite-the-sloan-digital-sky-survey-and-the-hubble-telescope.jpg

Google Books nGram Viewer is a fun tool that lets you search for words in 5.2 million books published between 1500 and 2008 so you can see how they’ve been used and changed over time.

image: https://static-ssl.businessinsider.com/image/58586305ca7f0c1e058b6994-960-720/google-books-ngram-viewer-is-a-fun-tool-that-lets-you-search-for-words-in-52-million-books-published-between-1500-and-2008-so-you-can-see-how-theyve-been-used-and-changed-over-time.jpg

Source. 

Intimidated by huge numbers? Google will help you figure out how to pronounce that 12-string behemoth if you type “=english” after it.

image: https://static-ssl.businessinsider.com/image/58586328ca7f0c24018b6a33-960-720/intimidated-by-huge-numbers-google-will-help-you-figure-out-how-to-pronounce-that-12-string-behemoth-if-you-type-english-after-it.jpg

Source. 

There’s a “Manual” feature in Google Translate that lets you draw characters or symbols.

image: https://static-ssl.businessinsider.com/image/53c6c5306bb3f73a5ac1a1b4-960-720/theres-a-manual-feature-in-google-translate-that-lets-you-draw-characters-or-symbols.jpg

Source. 

Similarly, Google Input Tools lets you type in over 80 different languages without having to download a special keyboard.

image: https://static-ssl.businessinsider.com/image/545799866bb3f76802a1a6c6-960-720/similarly-google-input-tools-lets-you-type-in-over-80-different-languages-without-having-to-download-a-special-keyboard.jpg

Try it here. 

Find a gorgeous font that you can use for free (Google.com/fonts).

image: https://static-ssl.businessinsider.com/image/5858622fca7f0cc2178b6032-960-720/find-a-gorgeous-font-that-you-can-use-for-free-googlecomfonts.jpg

Google Scholar makes it incredibly easy to search for information in professional journals and papers.

image: https://static-ssl.businessinsider.com/image/54490b5869bedd441c5ad038-960-720/google-scholar-makes-it-incredibly-easy-to-search-for-information-in-professional-journals-and-papers.jpg

Use it here. 

Get your culture on by using Google Art Project to check out super high-res photos of artwork from the world’s greatest museums.

image: https://static-ssl.businessinsider.com/image/58586386ca7f0c1e058b6996-960-720/get-your-culture-on-by-using-google-art-project-to-check-out-super-high-res-photos-of-artwork-from-the-worlds-greatest-museums.jpg

Source. 

Think with Google is a “digital cheat sheet” for marketers where it uses its data to glean what’s on deck for the industry.

image: https://static-ssl.businessinsider.com/image/5858648fa1a45ef4008b6fb8-960-720/think-with-google-is-a-digital-cheat-sheet-for-marketers-where-it-uses-its-data-to-glean-whats-on-deck-for-the-industry.jpg

Check it out here. 

Want to get a pulse on what people care about at any given moment? Google Trends shows the most searched terms every day.

image: https://static-ssl.businessinsider.com/image/585864cca1a45e1b008b6f85-960-720/want-to-get-a-pulse-on-what-people-care-about-at-any-given-moment-google-trends-shows-the-most-searched-terms-every-day.jpg

Check it out here. 

You can even plot how different search terms have waxed or waned over time.

image: https://static-ssl.businessinsider.com/image/5858654eca7f0cfd788b4c79-960-720/you-can-even-plot-how-different-search-terms-have-waxed-or-waned-over-time.jpg

Google Express lets you get same-day delivery for food, electronics, books, and more. The service now covers about 90% of the United States.

image: https://static-ssl.businessinsider.com/image/5457a97d6bb3f7be42a1a6c3-960-720/google-express-lets-you-get-same-day-delivery-for-food-electronics-books-and-more-the-service-now-covers-about-90-of-the-united-states.jpg

The Google Sound Search widget works like Shazam to help you identify songs you hear. It will also link you to buy each track in the Google Play Store.

image: https://static-ssl.businessinsider.com/image/5457ad23ecad04bb46c3034e-960-720/the-google-sound-search-widget-works-like-shazam-to-help-you-identify-songs-you-hear-it-will-also-link-you-to-buy-each-track-in-the-google-play-store.jpg

Google has a catalog of animal noises that you can easily find by typing in “animal sounds” or by typing in the name of a specific animal. Hot tip: Whip this one out while babysitting and it’ll keep kids entertained for a long time.

image: https://static-ssl.businessinsider.com/image/58594ed5a1a45e1b008b70a4-960-720/google-has-a-catalog-of-animal-noises-that-you-can-easily-find-by-typing-in-animal-sounds-or-by-typing-in-the-name-of-a-specific-animal-hot-tip-whip-this-one-out-while-babysitting-and-itll-keep-kids-entertained-for-a-long-time.jpg

Gboard is an app for iPhone that enables Google search right in your keyboard, eliminating the need to hop back and forth between apps.

image: https://static-ssl.businessinsider.com/image/58595169a1a45e61008b70a1-960-720/gboard-is-an-app-for-iphone-that-enables-google-search-right-in-your-keyboard-eliminating-the-need-to-hop-back-and-forth-between-apps.jpg

If you can’t decide between causes to donate to, or have trouble finding a reputable charity, Google’s One Today app makes it easy. The app shows different charities, gives a short description, and lets you know how you can help.

image: https://static-ssl.businessinsider.com/image/58595325a1a45e61008b70b5-960-720/if-you-cant-decide-between-causes-to-donate-to-or-have-trouble-finding-a-reputable-charity-googles-one-today-app-makes-it-easy-the-app-shows-different-charities-gives-a-short-description-and-lets-you-know-how-you-can-help.jpg

Thursday, November 17, 2016

6 Stages of Linux Boot Process (Startup Sequence)

Ref: http://www.thegeekstuff.com/2011/02/linux-boot-process


6 Stages of Linux Boot Process (Startup Sequence)

Press the power button on your system, and after few moments you see the Linux login prompt.
Have you ever wondered what happens behind the scenes from the time you press the power button until the Linux login prompt appears?
The following are the 6 high level stages of a typical Linux boot process.


1. BIOS

  • BIOS stands for Basic Input/Output System
  • Performs some system integrity checks
  • Searches, loads, and executes the boot loader program.
  • It looks for boot loader in floppy, cd-rom, or hard drive. You can press a key (typically F12 of F2, but it depends on your system) during the BIOS startup to change the boot sequence.
  • Once the boot loader program is detected and loaded into the memory, BIOS gives the control to it.
  • So, in simple terms BIOS loads and executes the MBR boot loader.

2. MBR

  • MBR stands for Master Boot Record.
  • It is located in the 1st sector of the bootable disk. Typically /dev/hda, or /dev/sda
  • MBR is less than 512 bytes in size. This has three components 1) primary boot loader info in 1st 446 bytes 2) partition table info in next 64 bytes 3) mbr validation check in last 2 bytes.
  • It contains information about GRUB (or LILO in old systems).
  • So, in simple terms MBR loads and executes the GRUB boot loader.

3. GRUB

  • GRUB stands for Grand Unified Bootloader.
  • If you have multiple kernel images installed on your system, you can choose which one to be executed.
  • GRUB displays a splash screen, waits for few seconds, if you don’t enter anything, it loads the default kernel image as specified in the grub configuration file.
  • GRUB has the knowledge of the filesystem (the older Linux loader LILO didn’t understand filesystem).
  • Grub configuration file is /boot/grub/grub.conf (/etc/grub.conf is a link to this). The following is sample grub.conf of CentOS.
  • #boot=/dev/sda
    default=0
    timeout=5
    splashimage=(hd0,0)/boot/grub/splash.xpm.gz
    hiddenmenu
    title CentOS (2.6.18-194.el5PAE)
              root (hd0,0)
              kernel /boot/vmlinuz-2.6.18-194.el5PAE ro root=LABEL=/
              initrd /boot/initrd-2.6.18-194.el5PAE.img
  • As you notice from the above info, it contains kernel and initrd image.
  • So, in simple terms GRUB just loads and executes Kernel and initrd images.

4. Kernel

  • Mounts the root file system as specified in the “root=” in grub.conf
  • Kernel executes the /sbin/init program
  • Since init was the 1st program to be executed by Linux Kernel, it has the process id (PID) of 1. Do a ‘ps -ef | grep init’ and check the pid.
  • initrd stands for Initial RAM Disk.
  • initrd is used by kernel as temporary root file system until kernel is booted and the real root file system is mounted. It also contains necessary drivers compiled inside, which helps it to access the hard drive partitions, and other hardware.

5. Init

  • Looks at the /etc/inittab file to decide the Linux run level.
  • Following are the available run levels
    • 0 – halt
    • 1 – Single user mode
    • 2 – Multiuser, without NFS
    • 3 – Full multiuser mode
    • 4 – unused
    • 5 – X11
    • 6 – reboot
  • Init identifies the default initlevel from /etc/inittab and uses that to load all appropriate program.
  • Execute ‘grep initdefault /etc/inittab’ on your system to identify the default run level
  • If you want to get into trouble, you can set the default run level to 0 or 6. Since you know what 0 and 6 means, probably you might not do that.
  • Typically you would set the default run level to either 3 or 5.

6. Runlevel programs

  • When the Linux system is booting up, you might see various services getting started. For example, it might say “starting sendmail …. OK”. Those are the runlevel programs, executed from the run level directory as defined by your run level.
  • Depending on your default init level setting, the system will execute the programs from one of the following directories.
    • Run level 0 – /etc/rc.d/rc0.d/
    • Run level 1 – /etc/rc.d/rc1.d/
    • Run level 2 – /etc/rc.d/rc2.d/
    • Run level 3 – /etc/rc.d/rc3.d/
    • Run level 4 – /etc/rc.d/rc4.d/
    • Run level 5 – /etc/rc.d/rc5.d/
    • Run level 6 – /etc/rc.d/rc6.d/
  • Please note that there are also symbolic links available for these directory under /etc directly. So, /etc/rc0.d is linked to /etc/rc.d/rc0.d.
  • Under the /etc/rc.d/rc*.d/ directories, you would see programs that start with S and K.
  • Programs starts with S are used during startup. S for startup.
  • Programs starts with K are used during shutdown. K for kill.
  • There are numbers right next to S and K in the program names. Those are the sequence number in which the programs should be started or killed.
  • For example, S12syslog is to start the syslog deamon, which has the sequence number of 12. S80sendmail is to start the sendmail daemon, which has the sequence number of 80. So, syslog program will be started before sendmail.
There you have it. That is what happens during the Linux boot process.

Wednesday, October 26, 2016

EMF Meters and Instruments


Recommended List of EMF Meters and Instruments

For those of you who would like to take your own measurements of EMFs in your home or office, I have put together the following list of recommended affordable EMF meters and instruments that will give you reliable readings of the various EMFs that we consider to be potentially harmful. Naturally you can spend much more money than you would need to purchase the meters I recommend below, and if your budget allows this, you should certainly do so. More expensive meters don't have the limitations that some of the meters below do have, however the meters mentioned below will give you accurate readings for home use.
These are the recommendations of Oram Miller, BBEC, EMRS. While they are based upon the meters and instruments generally recommended by the International Institute of Bau-biologie and Ecology (IBE), the list below is not specifically endorsed by the IBE.
This page last updated July 30, 2016.

To view videos in which Oram shows how to use
various EMF meters, as well as to purchase those meters,
click here. (Scroll down below each meter to see the links to the videos.)

To see a list of links to EMF Meters and Instruments and EMF-shielding products that Oram recommends that are sold by Safe Living Technologies, click here.

To see a list of links to EMF Meters and Instruments and EMF-shielding products that Oram recommends that are sold by LessEMF, clickhere.

To see a list of links to Radio Frequency EMF-shielding products that Oram recommends that are sold by Amazon, click here.

Introduction
To take EMF measurements in and around your home, you will need four different instruments to accurately measure the four different EMFs that the building biology profession recognizes:
  • 60 Hz AC magnetic fields
  • 60 Hz AC electric fields
  • Radio frequencies
  • Voltage spikes of harmonic frequencies of 60 Hz, also known as "dirty electricity"
Once you have gathered your instruments, you will want to know what we consider to be safe exposure levels to these EMFs. Our profession has developed safe exposure guidelines since 1987 in Germany and they are now in their seventh revision. These Building Biology Evaluation Guidelines were developed specifically for sleeping areas, and they are broken down into four levels of concern for the first three types of EMFs listed above (the German building biologists did not develop safe exposure guidelines for "dirty electricity," but I give those values below).

The four levels of concern are "No concern," Slight concern," "Severe concern," and "Extreme concern." Since these standards are quite stringent for the vast majority of our clients, including most electrically hypersensitive (EHS) people, we feel comfortable getting most of our clients out of the "Severe concern" range. Only the most highlhy EHS people need to try to achieve getting into the "No concern" level, a goal that is generally not easy or is impossible to reach.

For the vast majority of people, getting somewhere into the "Slight concern" level will be quite healthy for them, as these levels are on a par with the general consensus for EMF exposure among non-industry EMF experts and researchers around the world. For instance, the "Slight concern" level for AC magnetic field exposure in the building biology profession is 0.1-1.0 milliGauss (mG), while the generally accepted safe magnetic field exposure level according to most experts is 1-2 mG.
To download and print out the building biology safe exposure guidelines, click here. Generally speaking, the safe levels we try to achieve are less than:
  • 1.0 milliGauss (mG) for AC magnetic fields
  • 100 milliVolts (mV) for AC electric fields
  • 10 microWatts/meter squared (uW/m2) for radio frequencies while you sleep (I was also taught to try to get clients below 100 uW/m2 in the daytime)
  • 25-50 Graham-Stetzer Units (GSU) for "dirty electricity"
These are the ideals. It will be a challenge to achieve these safe levels in some circumstances, and easy to achieve them in others. I discuss how we can help you do that after describing the meters and instruments used for each type of EMF.

AC Magnetic Fields
Magnetic fields are considered by us to be the most serious type of EMF, but fortunately, with the exception of magnetic fields from overhead power lines, they are generally localized to only certain parts of the house and are the least common of all types of EMFs. However, when you find them, you must deal with them because they are the most harmful EMFs we deal with. I say to clients that magnetic fields wear you down, causing a depressing influence on the immune system, compared to electric fields, which wear you out and rob you of a good night's sleep. Magnetic fields cause a serious influence on your vitality and are known to be carcinogenic.

To read more about the potentially harmful health effects of exposure to magnetic fields and the scientific research to back this up, click on Article on Magnetic Fields and EMF Research Citations.

Magnetic fields are caused by:

1. Overhead power lines, for which there is nothing you can do; if the levels are consistently above 1-2 milliGauss wherever you measure in certain parts of your house, you must move where you sleep to another part of the house where they are lower, or, if that is not possible or the readings are high everywhere, you must consider moving altogether.

2. Electric current on the grounding paths of your electrical system, including the water service supply pipe and cable TV cable sheathing. These can be completely eliminated by installing a dielectric union and proper grounding to keep you in code; by using a non-metallic water pipe material if you are building new; and by installing a ground loop isolator if you have current on your cable TV cable sheathing.

3. Wiring errors on branch circuits in your walls, floors and ceilings, which need the services of an electrician who works in conjunction with one of us to trace and repair. These, too, can be completely eliminated.

4. So-called "point sources" of magnetic field exposure, including transformers and electric motors. Fortunately the magnetic field around these sources, while high close in, drops off by the inverse cube law, meaning it decreases quite rapidly, usually within a foot or so around most sources. Unsafe levels are only seen within 1-2 feet around most plug-in transformers and within 3-4 four feet around a refrigerator when the compressor motor is running. Electric clock radios have a field of 1-2 feet due to the transformer inside (or 3 feet if the hands move around a dial, due to an electric motor). Electric wattmeters and breaker panels have a magnetic field of 3-4 feet due to separation of conductors inside of them.

I suggest that you read my article on magnetic fields on my website here, found on the Articles on EMFs page, before you begin measuring magnetic fields. That way you will have a clear understanding of what they are, how they are produced, how they affect human health, what we consider to be the safe levels (compared to what electric utilities and governmental agencies around the world say is safe), and what we do about them. You will find our building biology safe exposure guidelines on my website by clicking here. Generally the consensus is to have magnetic fields below 1-2 milliGauss (mG), and as close to or below 0.5 mG in sleeping areas, where possible.

To measure magnetic fields, you have a choice of purchasing single-axis or triple-axis Gaussmeters. You can also purchase meters that only measure magnetic fields, and meters that measure magnetic fields and other types of EMFs, so-called "combination meters."

With triple-axis Gaussmeters it does not matter what orientation you hold the meter in to give you an accurate magnetic field reading. This is because it has three bars within it placed in three different orientations, and the readings from the three bars are calculated together by the meter to give one composite number (a "True RMS" Gaussmeter).

With single axis meters, on the other hand, there is only one measuring bar within it, meaning you have to orient the meter the right way to get a meaningful number. Therefore, if you happen to get a high magnetic field reading in one orientation and then rotate the meter 90 degrees off axis, the needle or digital reading will drop, even though you have not moved the meter away from the source. Thus, if you choose to use a single-axis Gaussmeter, you must be careful to orient it in all three orientations wherever you are measuring to avoid missing an elevated magnetic field. See below for more on this.
The trade off is that single-axis meters are more affordable, generally less than $100, while triple-axis Gaussmeters are $199 to $300 and up.

It is my general recommendation that if you can afford it, you would be wise to spend the extra money to purchase one of the following triple-axis Gaussmeters, depending upon your budget. All meters are available from LessEMF:

For those who can afford it, the 3-Axis Gaussmeter that Ignores Powerlines from Less EMF (Catalog number A108) for $320 helps you specifically differentiate between magnetic fields from 60 Hz sources and the magnetic field component from sources of dirty electricity. This is the Gaussmeter that I use (see below). You can find it by clicking here.

Comparing Triple Axis Gaussmeters with a Tri-Field Meter

I recommend one of the Gaussmeters listed above for measuring AC magnetic fields rather than the less expensive Tri-Field combination meter (sold for $149), which is also a triple-axis Gaussmeter. This is because as I understand it, Alpha Labs, the maker of the Tri-Field meter, has designed it to measure AC magnetic fields from any source from 50 Hz all the way up to 100,000 Hz (or 100 kiloHertz, kHz). This includes magnetic fields from wiring errors and current on ground paths such as metal water pipes and TV cables, which are causes of harmful health effects, but it also includes the magnetic field component of so-called "dirty electricity," which occurs at frequencies up in the thousands and tens of thousands of Hertz.

I also understand that Alpha Labs favors the natural inflation of the actual magnetic field reading on their Frequency Weighted Tri-Field models, up to four times the actual number, when measuring sources of magnetic fields at higher frequencies of dirty electricity. That is what is meant by the term "frequency weighted." As the frequency of the source increases, the natural distortion of the reading of magnetic field exposure on an analog Gaussmeter increases. Again, I am told this is acceptable to some because it brings the potential severity of the presence of these frequencies of dirty electricity to the attention of the homeowner and hopefully they will take steps to mitigate it. We don't disagree with that goal, and this is also a position taken by many in the EMF Safety Community.

This is understandable and reflects the common viewpoint outside the building biology profession that dirty electricity is one of the most harmful types of EMF. In contrast, we in the building biology profession take a different view. We place dirty electricity more at the bottom of the list of four types of EMFs in terms of its potential harm to the general population. Granted, if one is electrically hypersensitive, dirty electricity will bother you and there are people who are quite sensitive to that particular type of EMF.

However, we believe that the other three types of EMFs (AC electric fields and AC magnetic fields from house wiring, and radio frequency EMFs from wireless technologies) are actually more harmful to the population in general and even among those in the electrosensitive community. As a result, we put our emphasis on finding and reducing these other forms of EMFs, not to the exclusion of dirty electricity, but we don't put dirty electricity above other EMFs.

As a result, we do not use the Tri-Field meter when we report our AC magnetic readings to our clients. We use a True-RMS triple axis Gaussmeter for that purpose. However, some of us do use the Tri-Field meter for what we refer to as a magnetic field "detector". This is because the analog needle does swing up in the presence of magnetic fields, alerting us to their presence, along with the sound on our buzz stick.

I carry both a Magnii DSP-523 True-RMS Gauss meter and my Tri-Field meter set to the 0-3 mG magnetic field setting in one hand, and my buzz stick with an earphone in my ear in the other when hunting for 60 Hz AC magnetic fields in a home EMF assessment.

This is why we often measure AC magnetic fields readings lower than our clients who only own a Tri-Field meter. If you own a frequency weighted Tri-Field meter, just be aware of this phenomenon. Alpha Labs does make what they call a "Flat Response" model of the Tri-Field meter, identified by the words, "Flat Response" on the bottom of the back of the meter. Most Tri-Field meters sold on the market are frequency weighted. If your Tri-Field does not have the words, "Flat Response" at the bottom of the decal on the back, yours is a Frequency Weighted model. You will therefore have this distortion of the magnetic field reading if dirty electricity is present, which is often the case. Special magnets are inserted into the Flat Response Tri-Field meter to dampen this exaggeration of the reading at higher frequencies. I have compared a Flat Response Tri-Field Gaussmeter with my Magnii DSP-523 True-RMS Gaussmeter, and the readings were virtually identical. Thus, if you are going to rely on the numbers from a Tri-Field meter, only use the readings from a Flat Response model. You can order a Tri-Field meter by clicking here.

When we look for elevated magnetic field readings on our EMF evaluations, we are particularly interested in knowing if wiring errors or current on grounding paths are present, not dirty electricity. This is because we believe they are, in fact, the most harmful sources of the four tupes of EMFs. Dimmer switches and CFLs do make the needle of the Tri-Field meter and the number on the digital display on a True-RMS Gaussmeter go up when dimmers and CFLs are turned on and the Gaussmeter is held one foot or more away from the wall. So do the more serious forms of magnetic fields, wiring errors and current on grounding paths.

Distinguishing between them is important in our work because if I see an elevated magnetic field reading at a home I am evaluating, I need to know whether to bring in an electrician or plumber to fix a wiring error or have a dielectric union installed in the water service supply pipe, versus telling the client the elevated magnetic field reading on their Tri-Field meter they are so concerned about is only due to a dimmer switch. Contact me for more details on how we can help you make this distinction.

The True-RMS triple axis meters recommended above, unlike the Frequency Weighted Tri-Field Gaussmeter, are designed not to inflate the reading when measuring magnetic fields at higher frequency levels. They also measure magnetic fields within a more circumscribed frequency range. They will help you differentiate between elevated magnetic fields simply from a dimmer switch versus a more serious wiring error or current on your water pipe.

The magnetic field readings from a True-RMS Gaussmeter will also be more in line with readings obtained by EMF experts with the local electric utility and when comparing your home's EMF levels to internationally accepted safe exposure levels for AC magnetic fields. That is why I recommend you spend an additional $50 to $100 and purchase one of the models recommended above.


Measuring AC Electric and Radio Frequency EMF Levels with a Tri-Field Meter

If you do own a Tri-Field Meter, it is called "Tri-Field" because it does have the ability to measure magnetic, electric and radio frequency fields (which is why it is called a "combination meter" in the LessEMF catalogue). While that is true, we only recommend using it for detecting the presence of magnetic fields, and using other EMF meters to measure the electric and radio frequency levels.

This is because, first of all, the Tri-Field meter set in the electric field setting still measures near zero when the body voltage meter or other hand-held electric field meters show what my profession considers to be harmful electric field exposure levels, particularly where you sleep. Unfortunately, the Tri-Field meter is just not sensitive enough to measure this important but highly overlooked type of EMF.

We consider 10 Volts/meter (V/m) to be the beginning of the extreme concern level in sleeping areas, yet the number "1" on the top scale of the Tri-Field meter, used for measuring electric fields, represents this 10 V/m value. (This equates to 1,000 milliVolts on the body voltage meter.) Unfortunately, it is very difficult to measure down at the 1.5 V/m level (100 mV) or below that we consider to be safe with the Tri-Field meter. That would be down at 0.1 or lower on the top scale, which is not easy to see.
So in my opinion, the Tri-Field meter is unfortunately not reliable as a way of measuring electric fields. See the Electric Field section below for recommended meters for more reliably measuring electric fields where you sleep, and elsewhere in your house.

Secondly, the lowest number you can read on the Tri-Field meter when measuring radio frequency fields is 0.1 milliWatts/centimeter squared. While this is 100 times lower than what the Federal Communications Commission (FCC) considers to be safe, which is 1.0 milliWatt/centimeter squared, it is equivalent to 100,000 microWatts/meter squared in the unit of measurement that most of the world and our profession uses. This level is substantially higher than what my profession and other agencies and researchers, such as reported in the Parliamentary Assembly of the Council of Europe, consider to be close to a safe exposure level. For us, that level is down at 10-100 microWatts/meter squared, six orders of magnatude lower than what the FCC considers to be safe, and unfortunately, three to four orders of magnitude lower than the lowest reading possible on the Tri-Field meter. See the section entitled, "The FCC Versus the Rest of the World" in my Article on Radio Frequency EMFs page for more information.

Therefore, I only recommend using the Tri-Field meter, if you have one, for detecting magnetic fields (and using a True-RMS Gaussmeter or Flat Response Tri-Field model for determining actual magnetic field readings) and I recommend other meters for measuring electric and radio frequency fields (see below). I am not trying to disparage Alpha Labs and their product, the Tri-Field meter. It is just that since their meter is so popular, a position in the marketplace that the company has well earned, I simply want to point out to those who do use it that to accurately measure electric and radio frequency EMFs down in the range that my profession considers to be healthy, it would be necessary to use other meters.

For those who do have a Tri-Field meter, in order to measure magnetic fields, start on the 0-3 mG scale. You want the levels you measure to generally be 1.0 mG or less. If you read higher than 3 mG (the needle pegs to the right), you have problems and need to switch to the 0-100 mG scale to see the actual number. Move the meter closer to and then back away from a potential source to see what the safe distance is, where it gets back to 1-2 mG. Again, if a Frequency Weighted Tri-Field is elevated, the actual magnetic field reading will be lower than the meter reads. However, in defense of the Tri-Field meter, I can say that if the Tri-Field meter reads below 1.0 mG, you can reliably assume you don't have any significant magnetic fields from any source.


Less Expensive Gaussmeters

For those on a budget, there are more affordable Gaussmeters than the triple-axis Gaussmeters I mention above. The first is the Gauss Master, sold by LessEMF, Cat. #130, for only $34.95, available by clicking here. LessEMF also sells digital single-axis Gaussmeters for under $100 on the page linked here. This includes the Single Axis Digital Gaussmeter, Cat. #A111, for $79.95, available here.

Another option is to purchase a combined meter that measures both AC magnetic fields as well as radio frequency EMFs. The Cornet ED78s does just that. It is a single-axis Gaussmeter and RF detector, so you will have to move it in different orientations to make sure you don't miss the fields, but it is an affordable way to measure both. It retails for #139.95 and is available from EMF Help Center. I have recorded a video tutorial in which I show how to assess magnetic fields with this meter, as well as what forms AC magnetic fields can take in a home. Just click here and scroll down below the Cornet meter to see the link to the video.

You can also purchase a combined Gaussmeter and electric field meter from the Gigahertz Solutions company in Germany, available at Safe Living Technologies in Ontario, Canada (519-240-8735--please mention coupon code "CHHOM"). Model ME3030B retails for $122 USD. It measures both magnetic and electric fields in a single axis, so you will have to move it in various orientations to make sure you have not missed the field, but it is accurate and easy to use. This meter does measure easily down into the 1.5 V/m level for electric fields (see below).

If you can only afford the $35 Gauss Master, then by all means purchase it, and be sure that you follow the directions that come with it carefully and learn how to orient it methodically in all directions to get the highest reading. You will get the hang of it and it will be of assistance to you.

Also, be sure not to keep your finger on the button every time you take a reading in what they call "Mode 2," as this is designed to allow you to get readings in tenths of a milliGauss where the scale is 0 to 1, rather than 0 to 10. This has confused many a newbie when first using this meter. The directions on the back of the meter are a bit confusing. Call me if you have any questions about how to use any of these meters.


The "Buzz Stick" as an Adjunctive Tool for Tracing Magnetic Fields

Another useful tool to measure the presence, though not the amount, of magnetic field exposure is the "Budget Buzz Stick," available from EMF Help Center for $16.94. Click here for the "Budget Buzz Stick." I would recommend using an earphone headset to help hear the specific locations of paths of magnetic fields under floors and behind walls even better. You can see a video tutorial in which I show how to use the buzz stick by scrolling down below the item at EMF Help Center.

You can also purchase the exact same merchandise at a local Radio Shack store. Ask for: Removable Telephone Pick Up, SKU 44-533, and Mini Amplifier-Speaker, Catalogue # 277-1008C. They will also have an earphone.

Attach the magnetic field pick-up to the end of a three-foot dowl stick, wind the cord around the stick, and plug it into the input jack of the battery-operated amplifier. Use it like a metal detector at the beach, sweeping it back and forth along the floor and walls to hear the precise location of magnetic fields, such as electric current on water pipes or grounding conductors that run under floors and in walls. This tool is also invaluable in the hunting and fixing of wiring errors on circuits in walls.

As with the Tri-Field meter mentioned above, be aware that the pick-up will also buzz in the presence of the magnetic field component of harmonic frequencies of dirty electricity produced by dimmer switches and other sources. Thus you do need to distinquish between a source of dirty electricity versus a wiring error when you measure and hear the presence of magnetic fields. Again, call me if you encounter this problem and I can walk you through differentiating between these two types of EMFs.


How to Measure Magnetic Fields with your Gaussmeter

Whatever Gaussmeter you choose, we recommend that you measure for magnetic fields in your home with electric loads (light switches, appliances) turned on and then off to see if there is a difference. You will always measure magnetic fields close to a light switch or outlet (within an inch or two). That is normal and will not harm you because the reading drops off to near zero when you move away more than an inch or so.

However, if you still measure elevated magnetic fields a foot or more away from the wall (or as you move the Gaussmeter up the wall) when the switch is on, we would say you have a wiring error until proven otherwise. This requires the services of an experienced building biologist working in collaboration with an electrician to find and repair the wiring error, although we can help you and your electrician over the phone if you don't have a building biologist in your local area.

If you see an elevated magnetic field reading in the room that does not change substantially no matter where you move, and that elevated reading only changes slightly as you move from one end of the house to the other end, chances are your house is very close to an overhead (or sometimes a buried) electric power line. This is a serious situation in our experience, because you cannot shield against these magnetic fields and they are out of your control. In that case, if the levels are consistently high enough, higher than 2-3 milliGauss, we usually suggest you consider relocating in the near or long term, depending upon your existing health levels, whether you have young children, and other factors.

Finally, to fully detect and assess the presence of magnetic fields on grounding paths as well as from unbalanced loads between the hot and neutral conductors of a circuit, and to evaluate the effectiveness of your mitigation strategy, you will want to purchase a clamp meter, such as from Fluke, to clamp around water pipes and also electric circuits, where accessible. Fluke makes a clamp meter accessory large enough to go around water pipes that plugs into your digital multi-meter. You can purchase a Fluke 80i 600 Amp Clamp-On AC Current Probe on Amazon for $75-100.

You can also purchase a smaller Triplett 9200A AC Mini Clamp-On Meter from Amazon for under $35 or from a local electronics store. This fits easily into breaker panels and around circuits when wall switches and outlets are opened. Multi-meters are mentioned in the parts list for the electric field measurement kit in the section below.

To see a video tutorial in which I demonstrate how to find and measure magnetic fields using the Cornet ED78s meter, click here. Even if you use a different brand of Gaussmeter, I recommend that you watch this video because I review where magnetic fields will be found in your home and how you might mitigate them. Scroll down below the Cornet meter to see the link to the video.


AC Electric Fields

Electric fields are mostly a problem at night when we sleep. I say to clients that electric fields wear you out, compared to magnetic fields, which wear you down. Electric fields cause an agitating influence at night when the body should be in a recuperative environment (all EMFs should be avoided at night, but magnetic fields are least common in bedrooms at night). Most sleeping areas have elevated electric field levels, which come from voltage in plastic-jacketed (Romex) circuits in walls and plastic AC power cords that you plug in. Unplugging cords and having plastic AC lamp cords replaced with MuCord shielded cord from LessEMF only helps when you have metal-clad wiring in your walls.

We measure electric fields most reliably using what we call the "Body Voltage" method. This involves the use of a Volt meter and wires that ground you and the meter to the earth. This measures electric fields in milliVolts (mV). The Tri-Field and other hand held-meters also measure electric fields, but in Volts per meter, and I find this to not be as accurate or reliable as the body voltage method. I have placed the Tri-Field meter right over a lamp or extension cord and measured virtually zero, whereas that same cord would produce over 1,000 milliVolts using the body voltage method, considered an unsafe level for nighttime exposure when sleeping by my profession. For my purposes, it is not useful to use a hand-held electric field meter.

You can purchase individual components to easily put together your own body voltage kit using components purchased at Radio Shack and a hardware store for a total of around $60. To download the parts list in Word format, click here. If you use a Mac and don't have Word, download a PDF of the parts list by clicking here.

This uses an affordable Radio Shack digital multi-meter, which is not a true RMS meter, however, it is quite accurate for our purposes. We also like the Radio Shack multi-meter because, unlike more expensive Volt meters, the Radio Shack meter allows us to easily measure down into the milliVolt range, which is where the harmful effects of electric fields manifest.

You can also purchase a ready-made body voltage meter from EMF Help Center, using another brand of Voltmeter that also measures in the milliVolt range, for $89.95 by clicking here.

To download a document in Word format that one of my clients wrote up for me, and that I reviewed and edited, that provides a protocol of how to take your own electric field measurements, click here.

Again, if you use a Mac and don't have Word, download a PDF of the protocol by clicking here.

To see a video tutorial in which I demonstrate how to find and measure electric fields using the body voltage meter, click here. Scroll down below the meter to see the link to the video.

We consider levels below 100 milliVolts to be safe, and I have found that the average healthy person starts to notice that sleep is more disturbed and agitated starting at around 200-300 mV. The average bedroom, on the other hand, has 1,000 to 1,500 mV and up.

You can also measure electric fields with a reliable hand-held meter. Gigahertz Solutions in Germany makes a combined Gaussmeter and electric field meter, available at Safe Living Technologies in Ontario, Canada (519-240-8735--please mention coupon code "CHHOM"). Model ME3030B retails for $122 USD. It measures both magnetic and electric fields in a single axis, so you will have to move it in various orientations to make sure you have not missed the field, but it is accurate and easy to use. This meter does measure easily down into the 1.5 V/m level and below for electric fields. Thus 1.5 V/m is equivalent to 100 mV as measured by the body voltage meter. That is your target level, to be at or below 1.5 V/m in all orientations at all locations on the bed if you use the ME3030B or any other hand-held electric field meter. (See the Magnetic Field section above for a discussion on the shortcomings of the Tri-Field meter as a hand-held way of measuring electric fields. Instead, I recommend using one of the meters discussed in this section.)

To download a protocol that a local lamp or small appliance repair shop can follow to replace an unshielded AC lamp cord with a shielded one, click here. If you use a Mac and don't have Word, download a PDF of this procotol by clicking here.

To reduce electric fields at night, one option is to purchase a "plug-in switch" at any hardware store for about $5. These are two-pronged and can be plugged into an outlet near your bed. Then plug your lamp into the plug-in switch. Flip the plug-in switch so that the light comes on when you turn it on at the lamp switch. Then, when you want to turn off the light at night, leave the lamp switch in the on position, and instead of shutting it off as you normally do, reach down and flip off the plug-in switch at the outlet. That way, the light goes off and the voltage in the plastic cord goes dead, in which case the electric field level will be reduced and your sleep will be somewhat more deep. (You will also need to remove your electric clock radio and use a battery operated clock, and get rid of all other electric appliances within six to eight feet of your bed.)

Even if you use the plug-in switch, however, there will still be electric fields from the plastic-jacketed Romex wiring in the walls (unless you are lucky enough to have metal-clad wiring in your house). Contact Oram about how to determine which type of wiring you have and how to effectively reduce electric field levels if you have Romex wiring. Using plug-in switches will not be enough to produce the depth of sleep reported by many clients on the Comments from Clients page.

If you need a grounded, three-pronged shut-off switch, you can order the Belkin Conserve Power Switch for $6.99 from Amazon by clicking here. You can also order it directly from Belkin by clicking here. Belkin's Conserve Power Switch is rated for 15 Amps, 1800 Watts. You can also order the GE 52149 Handy Switch Grounded White for $5.48 from Amazon by clicking here.

Belkin also makes a version of their Conserve Power Switch that has a timer on it (30 minutes, 3, or 6 hours) called the Belkin Conserve Socket F7C009q Energy-Saving Outlet for $9.99. It is available from Amazon by clicking here. You can also purchase it directly from Belkin by clicking here. It is also rated for 1800 Watts.


Radio Frequency Fields

There are several meters available for measuring radio frequencies (RF), starting at under $100 and going up to several thousands of dollars. First, I recommend that you read my article on radio frequencies here to get an understanding of what you are trying to measure and what we and researchers around the world consider to be acceptable, safe exposure levels.

Of all the meters available, for those who want an accurate RF meter at a middle price for better grade meters, I recommend purchasing a Gigahertz Solutions HF38B. This RF meter is quite useful for reliable measurement of radio frequency fields from cell phones, cordless phones, Wi-Fi-enabled routers and computers, iPads, baby monitors, and smart meters, with more accuracy than an HF32C or HF35C.
The HF38B measures in the frequency range from 800 MHz to 3,300 MHz (3.3 GHz), encompassing all cell phone frequencies (which are 600-800, 900, 1,800 and 1,900 MHz, or 0.8, 0.9, 1.8 and 1.9 GHz). It also measures all cell phones, Wi-Fi and Smart Meters (below 5.8 GHz). All cordless phones that are 2.4 GHz and Version 6.0 DECT (which broadcasts at 1.9 GHz) will be picked up. It will also pick up some, but not all, 5.8 GHz cordless phones.

Also, the 2.4 GHz frequency (though not necessarily the 5.8 GHz frequency) used by Wi-Fi-enabled routers and laptops will be picked up.

Besides being more accurate than the HF35C, it has a peak hold function that allows you to particularly capture peak readings from smart meters, which send out RF microbursts lasting only 20-40 microseconds. Some RF meters on the market are not able to capture these short bursts of the Smart Meter beacon signal, sent out round the clock, 24/7. This is discussed in more detail below.

Purchase the Gigahertz Solutions HF38B RF Meter from Rob Metzinger at Safe Living Technologies in Ontario, Canada (519-240-8735--please mention coupon code "CHHOM") for $471. For information on more affordable RF meters, see below.

To hear audio samples of different sources of radio frequencies, go to the Gigahertz Solutions website and click on Multimedia. Scroll down and on the right, click on "Sound Examples for Audioanalysis."

These are European examples, so here is what the letters stand for and their North American counterparts:
  • LTE-downlink -- I believe this a download to a cell phone from a cell tower
  • DECT 1 and 2 -- Digital Electronic Cordless Telephone; this is the sound made by a DECT 6.0 cordless telephone (usually continuous)
  • DVB-T, GSM900, GSM org channel, and UMTS -- These are examples of cell towers (usually continuous)
  • GSM Telefon -- An example of a cell phone transmission to a cell tower (usually intermittent)
  • WLAN 1 -- Wireless Local Area Network; a typical Internet router with Wi-Fi enabled (usually continuous)
  • WLAN 2 -- A Wi-Fi enabled Internet router broadcasting two Wi-Fi signals at once (usually continuous)
You will also want to purchase an attenuator that will allow you to measure above the highest reading possible with the HF38B, which is 20,000 microWatts/meter squared (uW/m2) (The HF35C only goes up to 2,000 uW/m2 without an attenuator.) Many cell phones, cordless phones and base units, iPads, Wi-Fi routers and laptops, baby monitors, and smart meters all produce readings well above 20,000 uW/m2 at close range, and you want to know how high those levels are. They are all still below the safe exposure threshold put forth by the FCC, which, again, is 10 million uW/m2, but the building biology profession and many researchers and RF/EMF experts agree that health is affected by long term exposure to levels as low as 100-1,000 uW/m2. We consider 1,000 uW/m2 to be an extreme biological concern level in the sleeping area, and you are not in the slight concern level, out of the severe concern level, until you are below 10 uW/m2. Thus we are living in two different universes when comparing the safe exposure levels set by the FCC versus the consensus of a large number of researchers outside the US.

To see a video tutorial in which I demonstrate how to find and measure radio frequency fields using the Cornet ED78s meter, click here. Even if you use a different brand of radio frequency meter, I recommend that you watch this video because I review where radio frequency fields will be found in your home and how you might mitigate them. Scroll down below the Cornet meter to see the link to the video.

Regarding smart meters, electric utilities use either 900 MHz or 2.4 GHz for their neighborhood area network (NAN) mesh networks, and therefore those frequencies will also be picked up by the HF38B. Likewise, home area networks (HAN), when they start being activated by electric utilities, will use 2.4 GHz in most parts of the country and will be picked up by the HF38B (although I am told that a utility in Maine will use 5.8 GHz for their HAN). The HAN is currently not yet activated in at least California-based utilities.

The HF38B RF meter is particularly useful for capturing the micro-bursts from smart electric meters that other, less expensive brands of RF meters miss. Also, all Gigahertz RF meters (except their basic HF32D model) have an audio speaker that displays the sound of each RF source. That way you can actually pick out several sources at once, because they sound different. You can also hear the sound get louder and see the number increase as you move closer to a source, thus helping to identify it.

What sets the HF38B meter apart from other RF meters, including the Gigahertz Solutions HF35C, is that the HF 38B has a "peak hold" function that allows you to not miss the highest reading that occurs with each of these micro-bursts from a smart meter. That is important, because with the HF35C or HFE35C, you don't have a peak hold function and therefore can miss the highest peak reading. This is because the smart meter burst is so short, on the order of 20-40 microseconds. I have compared my HFE35C with an HF59B with a peak button held by Rob Metzinger of Safe Living Technologies as we measured a smart meter together, and his RF meter was detecting microbursts at levels up to 100 times higher than mine was. So a peak hold function is important when measuring smart meters, and is only available on the HF38B and HF59B RF meters.

If you primarily want to measure smart meters at an affordable price, the HF38B would be the RF meter for you. It is ten times more sensitive than the HF35C and it has a peak hold function. It also measures up to 19,999 microWatts/meter squared, ten times higher than the HF35C or HFE35C, before you have to put on an attenuator. However, be aware that the HF38B only uses a logarithmic/periodic antenna, not the omni-directional antenna used by the HFE35C, so you will have to wave this meter around in all directions to measure other sources of RF in the room or coming in from outside.

As an aside, for those of you who have the HF35C or HFE35C (Extended) RF meter, they will still definitely pick up a smart meter RF microburst, because all Gigahertz Solutions RF meters sample more than once per second, and the display of any RF burst decays slowly over several samples. Thus the meter displays successively decreasing values from that single microburst so you won't miss it. You will see that reading as the first, and therefore, the highest, number followed by progressively lower numbers over the next couple of seconds until the reading goes back to baseline. Don't, however, confuse this with the assumption that the smart meter is continuing to send out additional signals over those couple of seconds. This is just the way Gigahertz RF meters display an RF reading, with the initial reading followed by a slow decay over successive displays.

If you do, however, hear another click on the speaker while the numbers are declining, that means the smart meter is sending out another RF microburst, and the display will again show a high number, gradually cascading down. That is one of the values of having an audio speaker that tells you when the RF microburst occurs, which you will hear as a distinct "click."

I should point out that my electrical engineer building biology colleagues tell me not to trust any RF readings obtained within 3 feet of smart meters, which would be within what is known as the "near field." This is because the 900 MHz frequency of the neighborhood area network, or NAN, has a wavelength of 13 inches. Engineers don't read inside the near field, which is within three wavelengths, or in this case, 3 feet, because the wave form can be scattered and has not yet coalesced and the readings will be unreliable and possibly artificially high. These engineers take readings at 3 feet and further away from that in the far field, where the wave has coalesced and your readings are accurate.

We recommend that you start taking RF readings at 3 feet from smart electric meters by pointing the RF meter at the smart meter (the antenna is very directional, and the 3 feet is measured to the antenna of your Gigahertz RF Analyzer). Wait several minutes to see the pattern and occurrence of micro-bursts. Do this first with the peak hold function off so you can see how often these micro-bursts occur, which is usually once every few seconds, several times per minute. Pay attention to the first number on the RF meter's display with each burst, which will be the highest reading. Then turn on the peak hold function to capture the very highest number, which you often miss without the peak hold function.

With smart meters, you will notice that there is no set pattern to the occurrence of these micro-bursts, nor is the highest number consistent from one burst to the next. Just pay attention to the range you see and determine the overall pattern. Back up and take readings again a few more feet away until you find a distance that gets you below 100 or less microWatts per meter squared. Ideally in sleeping areas you want to be below 10 microWatts per meter squared. This is many times less than the level the FCC says is safe, which is 1.0 milliWatt per centimeter squared. That equates, however, to 10 million microWatts per meter squared, which is the unit of measurement used by Europe and the rest of the world. Read my Article on Radio Frequency EMFs and my Smart Meter article for much more information.

When you measure the radio frequency field levels from your cordless telephone base unit or wireless-enabled Internet router (also called "Wi-Fi"), you will see how high these levels are and how far they extend out from the device. Your cell phone and Wi-Fi-enabled laptop also have radio frequencies, but more intermittently.

If you cannot afford the Gigahertz Solutions HF38B, you can consider the HF35C, sold by Safe Living Technologies (please mention coupon code "CHHOM") and LessEMF for only $282 and $299, respectively (this is a substantial price reduction compared to the cost of this meter only a year ago, at over $400, due to the decline of the Euro relative to the US dollar).

The HF35C does not have a peak hold function as the HF38B does, but it does have the same frequency range, and, like the HF38B, it also has a speaker so you can hear the sound of the RF source or sources producing the frequencies, which is very helpful in identifying them.

If you want to measure RF sources above 2.5 GHz, you will need to purchase either the HFW35C, which measures from 2.4 GHz to 6 GHz for $498 from Safe Living Technologies, or the HFW59D, which measures from 2.4 GHz to 10 GHz for $1,139 (with a kit available for $1,1530 that includes an omni-directional antenna), also from Safe Living Technologies. Safe Living Technologies also has a kit containing both the HFE35C and the HFW35C to cover the full range from 27 MHz to 6 GHz, called the HFEW35C RF Meter Kit. Click here for all the options (and please mention coupon code "CHHOM").

Why would you want to measure above 2.4 GHz? Because you will capture 5.8 GHz cordless telephones and now Wi-Fi at that same frequency that you will miss with the HF35C or the HFE35C. I am told that Apple is using 5.8 GHz for more and more of their Wi-Fi now. Many routers come with both 2.4 GHz and 5.8 GHz frequencies (802.11n).

If you need something more affordable, there are several other RF meters to choose from. Some of these other RF meters do have sound, and they will help you determine if your living space is safe or not at an affordable price.

For $249, you can purchase the Acousticom2 RF Meter from LessEMF (Cat. #A140). Click here to go to the entry on LessEMF's website. The listing on LessEMF's site has a short video in which EMF expert Alisdair Philips from England demonstrates the use of this meter. You can also purchase the Acouticom2 from Safe Living Technologies for $207 (please mention coupon code "CHHOM").

The Acousticom2 is a handy RF meter with sound capabilities that measures in increments on an LED display, starting at 0.01 V/m (<1 0.01="" 0.02="" 0.05="" 0.1="" 0.3="" 100="" 10="" 300="" 30="" 6="" 8="" a="" about="" and="" are="" at="" day="" entitled="" fewer="" first="" four="" generally="" go="" going="" guidance="" href="http://www.powerwatch.org.uk/science/intguidance.asp" ideally="" in="" is="" led="" less="" levels="" lights="" m2="" m="" nbsp="" night.="" night="" nternational="" on="" or="" page="" safe="" say="" several="" since="" stay="" target="_blank" than="" the="" then="" three="" to="" up.="" up="" uw="" v="" want="" we="" you="">Powerwatch's
website for a comparison chart between Volts per meter (V/m) and microWatts per meter squared (uW/m2). You can also go to the Building Biology Safe Exposure Guideline page to see our recommended levels (generally less than 100 uW/m2 in the day and evening time and less than 10 uW/m2 for sleeping).

For $199, you can purchase the 3-Axis RF Meter from LessEMF by clicking here. This is an accurate meter at all but very low RF levels but it has no sound.

For $179 you can purchase the 6 GHz RF Meter from Cornet, model ED85EXS. This meter has a wide frequency range, a peak hold function, and it does have sound. It is available from LessEMF, Cat. #A436s by clickinghere. You can also purchase the ED85EXS from Safe Living Technologies for $147 (please mention coupon code "CHHOM").

Finally, for roughly $100-$150, you can find several other RF meters from LessEMF by clicking here or from Safe Living Technologies by clicking here. These meters will work for those of you on a budget and will help you know when RF levels are at unhealthy levels. Remember, we recommend daytime and evening RF levels ideally below 100 microWatts/meter squared (uW/m2), and less than 10 microWatts/meter squared at night.

You will find information on how to protect yourself from radio frequency EMFs at Steps to Protect Yourself from Radio Frequencies and Safer Use of Computers on my website.


Harmonic Frequencies (Dirty Electricity)

The final EMF that we consider to be potentially harmful is voltage spikes of harmonic frequencies of 60 Hz, also known as "Dirty Electricity." These generally occur in the 4,000 to 150,000 Hz range, or 4-150 kiloHertz (kH), although they can also occur at higher frequencies. These frequencies are multiples of 60 Hz, which is the fundamental frequency of AC electricity in North America coming into your home from the electric power company.

Dirty electricity is produced by dimmer switches. It is also produced by those devices that need to operate at low voltage, including compact fluorescent lamps (CLFs), halogen lights, light emitting diodes (LEDs), and digital smart electric meters. This type of transformer is known as a switching mode power supply and is a chip in the circuit board of electronic appliances or smart meters. A switching mode power supply is used in devices that do not have room for the more traditional linear transformer, which is a coil of wires, and is found in the black box you plug into the wall for your cellphone charger or cordless telephone. Other electronic devices, such as some printers, and those appliances that have variable speed motors, such as newer energy-efficient furnaces and front load washing machines, also produce dirty electricity.

These harmonics will leak off plastic circuits and wires about six to eight feet that we plug in connected to the appliance or device that is producing the harmonic frequencies. These can also ride on the 60 Hz sine wave of AC electricity on circuits and wires all over the house, and can even come into your home from neighbors' homes by way of the electric utility power lines that bring electricity to your meter and breaker panel.

Dirty electricity can cause an agitating influence for many people as well as potentially more serious health symptoms. Read more about dirty electricity here. Dr. Sam Milham has written extensively about this problem.

Many filters are available on the market to reduce dirty electricity. These include:
You can purchase Greenwave filters by clicking here.
You can purchase Stetzer filters by clicking here.

To measure dirty electricity, you can purchase the Greenwave EMI (electromagnetic interference) Meter for $150 by clicking here.

You can also measure the level of dirty electricity with a High Frequency Pollution Meter for Wiring from LessEMF for $99 (Cat. #A803-NA). This is also known as a microsurge or EMI (electromagnetic interference) meter.

The Greenwave EMI Meter has a broader freqeuncy range that it measures, and it can measure higher levels than the basic Stetzer EMI Meter. It also provides the percentage of reduction when you continue to test dirty electricity levels while you insert a Greenwave filter.

You generally want to get below 25-50 Graham-Stetzer (GSU) units (these are not milliGauss, milliVolts, or microWatts/meter squared; they are related to Volts/meter of electric fields). If you measure high levels of dirty electricity, try shutting off dimmer switches, halogen lights and other sources and see if the levels drop.

If so, we advise first that you replace CFLs and halogens with incandescent light bulbs, preferably full spectrum, and hire an electrician to swap out your dimmer switches with straight on/off switches. If levels continue to be high, the dirty electricity can be coming in from outside your home or from appliances within your home that you cannot replace. In that case, start plugging in filters according to the directions of the manufacturer and keep measuring until you get down to acceptable levels.

You should notice a calmness when you do this, as you will also experience when you reduce and eliminate the other EMFs you will be measuring. I should also add that the microsurge meter does not measure voltage spikes caused by smart electric meters. That is an entirely different subject, which is quite vexing for us and for some EHS people. Please refer to my smart meter article to learn more about this issue by clicking here.


How to Use the Data you Measure

Of course, the question arises when you do all this, what do you do when you measure EMF readings higher than what are considered to be safe levels? That depends upon how high the reading is, where it is (bedroom or day/evening use area versus a part of the house seldom used) and how sensitive or symptomatic you are.

We want our clients to become as self-sufficient as possible so you can watch that EMF levels do not go up if and when your teenage son or husband buys an iPad, and you are sensitive to radio frequencies. You need to know just how high the radio frequency levels are whenever they get their email or surf the web on that device, because there is no hardwired Ethernet option as there is with a laptop. You also need to see that even though you are connected to the web on your laptop with an Ethernet cable, until you turn off the Wi-Fi, the laptop is still pumping out very high radio frequency levels every couple of seconds until you turn it off.

Likewise, if we help you achieve low electric field levels where you sleep, you want to know how high the electric field levels rise if your spouse brings in an extension cord to power his or her electric clock radio, instead of purchasing a battery operated clock. And on and on.

If you find high EMF levels, you should start by following the recommendations in the various articles on my website recommended above, but ultimately you will benefit most by consulting with one of us to develop a plan to reduce and eliminate the particular sources of these fields in your house. I am available for telephone consultations (310-720-7686), as I do have out of state clients use these same meters and instruments to take the various EMF measurements for me so that I can know what they are dealing with and develop a plan for mitigation.

You can also bring in a local building biologist, if one is within driving distance of your home. You will find them on the building biology website. To get there, click on Find an Expert on my website and follow the instructions. If your local building biologist is not fully experienced in EMF mitigation, I can and have worked with several of my colleagues around the country who become my "eyes and ears" and we come up with a mitigation plan together. Many building biologists with whom I have worked have found doing so to be helpful in advancing their knowledge of EMFs and the client gets a comprehensive EMF plan for their home.

Contact me if you have any questions with these recommendations at info@createhealthyhomes.com.
We are your Sherpa guides to help you maneuver through the EMF mine field in the average home, but you can and should be educated in how to measure your own EMF levels to stay safe and to know when to call us. These meters and instruments and protocols will help you do that. Happy EMF hunting!

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