The History of the Internet: From ARPANET to AI

The internet feels like it has always existed, but it is a comparatively recent invention — a little over 55 years old — that has reshaped human life within a single lifetime.

It began in 1969 with ARPANET, a U.S. government-funded project connecting four university computers: UCLA, Stanford Research Institute, UC Santa Barbara, and the University of Utah. The goal was a resilient network for research and defense purposes, not entertainment or everyday communication.

Through the 1970s and 1980s, key technologies emerged: email, TCP/IP (the protocol still underlying the internet today), and the domain naming system. Tim Berners-Lee invented the World Wide Web at CERN in 1989 and built the first browser and web server; the technology became available for public use outside CERN in August 1991.

The 1990s brought the internet into homes worldwide through dial-up connections, early search engines, and the first wave of websites. The 2000s introduced broadband, social media, and smartphones, changing how people communicate, work, and consume information. Today’s internet is increasingly shaped by AI — search, recommendations, and content generation are driven more and more by machine learning. As of April 2026, an estimated 73.8% of the global population were internet users, according to DataReportal’s most recent Digital Report.

References

• CERN — “A Short History of the Web” — https://www.home.cern/science/computing/birth-web/short-history-web

• DataReportal — Digital 2026 Global Overview Report (internet penetration, April 2026 update) — https://datareportal.com/reports/digital-2026-global-overview-report • Internet Society / Leiner et al., “Brief History of the Internet” (ARPANET origins) — https://www.internetsociety.org/internet/history-internet/brief-history-internet/

How Does the Stock Market Actually Work? A Beginner’s Guide

The stock market often feels like a black box reserved for finance experts, but the basic concept is simpler than it appears.

At its core, the stock market is where people buy and sell small ownership pieces of companies, called shares or stocks. Owning a share means owning a tiny fraction of that business; if the company grows in value, the share typically becomes worth more too.

Companies list shares on exchanges — the NYSE or NASDAQ in the United States, or the BSE/NSE in India — through an Initial Public Offering (IPO). Once listed, investors can buy or sell those shares through a broker or trading app.

Prices move on supply and demand: more buyers than sellers pushes a price up, more sellers than buyers pushes it down. This is shaped by company performance, economic news, investor sentiment, and many other factors.

Investors can earn returns two main ways: price appreciation (selling shares for more than they paid) or dividends (a share of company profits paid directly to shareholders).

The stock market is not gambling, but it is not risk-free either. It tends to reward patience, research, and long-term thinking far more than short-term speculation.

This section is general educational information, not investment advice. Anyone making real investment decisions should do independent research or consult a SEBI-registered financial advisor.

References

• U.S. Securities and Exchange Commission — Investor.gov, “What is an IPO?” — https://www.investor.gov/introduction-investing/investing-basics/glossary/initial-public-offerings-ipos

• National Stock Exchange of India (NSE) — investor education — https://www.nseindia.com/invest/about-nse-tour-content

• Securities and Exchange Board of India (SEBI) — investor guidance — https://investor.sebi.gov.in/

Ten Fascinating Facts About the Human Body

The human body is one of the most complex systems in nature, yet most people go through daily life unaware of what is happening inside them. The facts below hold up under scrutiny against peer-reviewed research.

Cells are constantly being replaced. The most rigorous estimate, from a 2021 Weizmann Institute of Science study (Sender & Milo, Nature Medicine), puts human cell turnover at roughly 330 billion cells per day — about 3.8 million every second — mostly blood and gut cells. The commonly repeated “25 million cells per second” figure traces to a popular-science book, not a peer-reviewed source.

Stomach lining renews every few days, and stomach acid is strong enough to damage or corrode some metals (such as zinc) — though it will not fully “dissolve” most metals, so that stronger claim is an overstatement.

The brain consumes about 20% of the body’s total energy despite being roughly 2% of body weight, and its neurons generate on the order of 20 watts of electrical activity — a genuine, well-supported comparison, though this describes energy consumption rather than usable electricity.

Bone has an exceptional strength-to-weight ratio, pound for pound stronger than steel — but the popular claim that “a matchbox-sized piece can support 9 tons” has no clear scientific citation and is best left out of a factual piece.

The heart beats around 100,000 times a day, pumping roughly 7,500 litres of blood — both figures are well documented.

Sneezes do not travel at 100 mph. High-speed camera studies (MIT’s Bourouiba Lab and related fluid-dynamics research) measure typical sneeze exit speeds at roughly 35–40 mph, far below the commonly quoted 100+ mph.

You can sneeze with your eyes open — it is simply difficult, because eye-closing during a sneeze is an involuntary reflex rather than a physical necessity; some people sneeze with their eyes open with no ill effects.

The claim that the human nose can distinguish over one trillion scents comes from a single 2014 study (Bushdid et al., Science) whose statistical methodology has since been challenged. It is fairer to say human smell is far more capable than once believed, without citing the specific “1 trillion” figure as settled fact.

The body does not contain 10 times more bacterial cells than human cells. A landmark 2016 recount (Sender, Fuchs & Milo, PLOS Biology) found the ratio is close to 1:1 — about 1.3 bacterial cells for every human cell, not 10:1.

References

• Sender R, Milo R. “The Distribution of Cellular Turnover in the Human Body,” Nature Medicine 27:45–48 (2021) — https://www.nature.com/articles/s41591-020-01182-9

• Sender R, Fuchs S, Milo R. “Revised Estimates for the Number of Human and Bacteria Cells in the Body,” PLOS Biology 14(8):e1002533 (2016) — https://pmc.ncbi.nlm.nih.gov/articles/4991899

• Bourouiba L. Fluid Dynamics of Disease Transmission Laboratory, MIT — sneeze velocity research — https://www.medicalnewstoday.com/articles/306434

• Bushdid C. et al. “Humans Can Discriminate More than 1 Trillion Olfactory Stimuli,” Science (2014) — cited with methodological caveats — https://www.science.org/doi/10.1126/science.1249168

• Johns Hopkins Medicine — brain energy consumption — https://www.hopkinsmedicine.org/health/conditions-and-diseases/anatomy-of-the-brain