Monday, June 22, 2020

US Legislature: Senate and House of Representative

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Aditi Mohta

Article Title

US Legislature: Senate and House of Representative

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Global Views 360

Publication Date

June 22, 2020

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The US Capitol, Washington

The US Capitol, Washington | Source: Gryffindor via Wikimedia

US Congress

Congress of the United States, the legislature of the United States of America is established under the Constitution of 1789. It is structurally separate from the executive and judicial branches of the government. The United States Senate is the upper House of the United States Congress, and the House of Representatives is the lower House of the United States Congress. Together, both these houses make up the legislature of the United States. Although the two chambers are separate for the most part, the House and Senate are equal partners in the legislative process, and the legislation cannot be acted without the consent of both chambers. Congress must assemble at least once in a year and must agree on the date of convening and adjourning. The decided time for convening, according to the Twentieth Amendment, is January 3. The House and the Senate vote the date for adjournment. Congress must also come together in a joint session to count the electoral votes for the President and the Vice President. 

United States Senate 

The United States Senate, the upper House of the United States Congress, was established in 1789 under the Constitution. Each state elects two senators for six years. One-third of the Senate membership expires every two years. It is hence also nicknamed as “the house that never dies”. The role of the Senate is to provide equal representation to each state regardless of their size and population. Washington, D.C. houses the chamber of the United States Senate. Election to the Senate was indirect up till 1913 and changed to direct election by the Seventeenth Amendment. The Senate shares responsibility with the House of Representatives for law-making within the United States of America. 

The Senate has exclusive powers which are not granted to the House of Representative. The powers include the authority to consent to treaties before giving it for consent, confirming the appointment of -- Cabinet secretaries, federal judges and executives, military officers, regulatory officials, ambassadors, and other federal uniformed officers. The Senate is also responsible for trying federal officials that have been impeached by the House.

The qualifications for Senators are as follows:

  1. They must be at least 30 years old. 
  2. They must have the citizenship of the United States of America for at least nine years.
  3. They must be an inhabitant of the state they are representing. 

House of Representatives

The House of Representatives is the lower House of the United States Congress which was established in 1789 by the Constitution of the United States. It shares equal responsibilities of law-making with the Senate. The House is designed to give a voice to people of every local voting region of America. Members of the House stand for reelection every two years. Each state is split into districts and each district votes for one representative. The number of districts depends on the population of each state. The candidate with the most number of votes wins the seat in the House, and the party with the most number of seats takes control.

The primary responsibility of the House is to pass federal legislation that affects the whole country. For the bill to become a law the Senate has to agree and the United States President has to finally sign it. The House, like the Senate, has special powers too. These include the power to initiate revenue bills, to impeach officials, and to elect the President in case there is no majority in the Electoral College.

The House is organised in the committee system, under which the membership is divided into specialised committees like committees for holding hearings, preparing bills for the consideration of the entire House, and regulating the House procedure. The member of the majority party chairs these committees. Almost all bills are first referred to the respective committee. There are approximately 20 permanent committees, each having subcommittees. 

The qualifications for members of the House are:

  1. They must be at least 25 years of age.
  2. They must be a U.S. citizen for at least seven years. 
  3. They do not need to reside in the constituency that he represents.

Articles that were referred to:

  1. https://www.whitehouse.gov/about-the-white-house/the-legislative-branch/#:~:text=The%20Senate%20maintains%20several%20powers,confirmation%20of%20the%20Vice%20President.
  2. https://www.britannica.com/topic/House-of-Representatives-United-States-government
  3. https://www.congress.gov/help/learn-about-the-legislative-process/how-our-laws-are-made
  4. https://courses.lumenlearning.com/boundless-politicalscience/chapter/the-nature-and-function-of-congress/

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July 19, 2021 11:59 AM

Detecting The Ultra-High Energy Cosmic Rays With Smartphones

Smartphones have become the most commonplace objects in our daily lives. The unimaginable power that we hold in our hands is unrealized by most of us and, more importantly, untapped. Its creativity often gets misused but one can only hope that it’s fascinating abilities would be utilized. For example, did you know that the millions of phones around the globe can be connected to form a particle detector? The following article covers the CRAYFIS (Cosmic RAYs Found in Smartphones) phone-based application developed by the physicists from the University of California—Daniel Whiteson, Michael Mulhearn, and their team. CRAYFIS aims to take advantage of the large network of smartphones around the world and detect the cosmic or gamma rays bursts which enter the Earth’s atmosphere almost constantly.

What Are Cosmic Rays?

Cosmic rays are high velocity subatomic particles bombarding the Earth’s upper atmosphere continuously. Cosmic ray bursts have the highest energy compared to all forms of electro-magnetic radiation. When we say ultra-high energy particles (energy more than 10<sup>18</sup> eV), we mean two million times more energetic than the ones that can be produced by the particle colliders on Earth.  These rays are thought to be more powerful than typical supernovae and can release trillions of times more energy than the Sun. They are also highly unpredictable as they can enter Earth’s atmosphere from any direction and the bursts can last for any period of time ranging from a few thousand seconds to several minutes.

Despite many theoretical hypotheses, the sources of these ultra-high energy cosmic rays are still a mystery to us even after many decades of their discovery. These rays were initially discovered in the 1960’s by the U.S. military when they were doing background checks for gamma rays after nuclear weapon testing. Cosmologists suggest that these bursts could be the result of super massive stars collapsing - leading to hypernova; or can be retraced to collisions of black holes with other black holes or neutron stars.

How Do We Detect Them?

When the high-energy particles collide with the Earth’s atmosphere, the air and the gas molecules cause them to break apart and create massive showers of relatively low-energy particles. Aurora borealis i.e., the Northern and the Southern lights are the lights that are emitted when these cosmic rays interact with the Earth’s magnetic field. Currently, these particles are hitting the Earth at a rate of about one per square meter per second. The showers get scattered to a radius of one or two kilometers consisting mostly of high-energy photons, electrons, positrons and muons. But the fact that these particles can hit the Earth anytime and anywhere is where the problem arises. Since the Earth has a massive area, it is not possible to place a detector everywhere and catch them at the exact moment.

Energetic charged particles known as cosmic rays hit our atmosphere, where they collide with air molecules to produce a shower of secondary particle | Source: CERN

Detecting such a shower requires a very big telescope, which logically means a network of individual particle detectors distributed over a mile or two-wide radius and connected to each other. The Pierre Auger Observatory in South America is the only such arrangement where 1,600 particle detectors have been scattered on 3,000 square kilometers of land. But the construction cost of the same was about $100 million. Yet, only a few cosmic ray particles could be detected using this arrangement. How do we spread this network around the Earth?

In addition to being cost-effective, such a setup must also be feasible. The Earth’s surface cannot possibly be dotted with particle detectors which cost huge fortunes. This is where smartphones come into the picture.

Detecting The Particles Using Smartphones

Smartphones are the most appropriate devices required to solve the problem. They have planet wide coverage, are affordable by most people and are being actively used by more than 1.5 billion users around the planet. Individually, these devices are low and inefficient; but a considerably dense network of such devices can give us a chance to detect cosmic ray showers belonging to the highest energy range.

Previous research has shown that smartphones have the capability of detecting ionizing radiation. The camera is the most sensitive part of the smartphone and is just the device required to meet our expectations. A CMOS (Complementary Metal Oxide Semiconductor) device is present in the camera- in which silicon photodiode pixels produce electron-hole pairs when struck by visible photons (when photons are detected by the CMOS device, it leaves traces of weakly activated pixels). The incoming rays are also laced with other noises and interference from the surroundings.  Although these devices are made to detect visible light, they still have the capability of detecting higher-energy photons and also low-ionizing particles such as the muons.

A screenshot from the app which shows the exposure time, the events- the number of particles recorded and other properties

To avoid normal light, the CRAYFIS application is to be run during nighttime with the camera facing down. As the phone processor runs the application it collects data from its surroundings using a camera as its detector element. The megapixel images (i.e., the incoming particles) are scanned at a speed of 5 to 15 frames per second, depending on the frame-processing speed of the device. Scientists expect that signals from the cosmic rays would occur rarely, i.e., around one in 500 frames. Also, there is the job of removing background data. An algorithm was created to tune the incoming particle shower by setting a threshold frequency at around 0.1 frames per second. Frames containing pixels above the threshold are stored and passed to the second stage which examines the stored frames, saving only the pixels above a second, lower threshold.

The CRAYFIS app is designed to run when the phone is not being used and when it is connected to a power source. The actual performance would be widely affected by the geometry of the smartphone’s camera and the conditions in which the data is being collected. Further, once the application is installed and is in the operating mode, no participation is required from the user, which is required to achieve wide-scale participation. When a Wifi connection is available the collected data would be uploaded to the central server so that it could be interpreted.

There is much complicated math used to trace back the information collected from the application. The most important parameters for the app are the local density of incoming particles, the detection area of the phone and the particle identification efficiency. These parameters are used to find the mean number of candidates (photons or muons) being detected. Further, the probability that a phone will detect no candidates or the probability that a phone will detect one or more candidates is given by Poisson distribution. The density of the shower is directly proportional to the incident particle energy with a distribution in x and y sensitive to the direction in which the particle came from. An Unbinned Likelihood (it is the probability of obtaining a certain data- in this case the distribution of the cosmic rays including their energy and direction, the obtained data is arranged into bins which are very, very small) analysis is used to determine the incident particle energy and direction. To eliminate background interference, a benchmark requirement has been set that at least 5 phones must detect and register a hit to be considered as a candidate.

It is impossible to express just how mind-blowing this innovation is. As the days pass, Science and Technology around us keep on surprising us and challenge us to rack our brains for more and more unique ways to deal with complex problems. The CRAYFIS app is simply beautiful and it would be a dream-come-true to the scientists if the project works out and we are able to detect these high energy, super intimidating cosmic rays with smartphones from our backyard.

Further Reading

The paper by Daniel Whiteson and team can be found here.

An exciting book “We Have No Idea” by Daniel Whiteson and cartoonist Jorge Cham can be found here.

The CRAYFIS app can be found here.

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