1. Metcalfe's Law: The Network's Value
If Moore’s Law gives us ever-cheaper and more powerful computers, Metcalfe’s Law explains why we should bother connecting them. Named after Ethernet inventor Robert Metcalfe, this law states that a network's value is proportional to the square of its
number of users. Think of the first fax machine—it was useless. The second one made a network of two. With a million fax machines, the value is astronomical because the number of possible connections explodes. Moore's Law provides the nodes (the computers, phones, and devices), but Metcalfe's Law explains the explosive value created when they talk to each other, forming the basis for everything from the internet to social media.
2. Kryder's Law: The Data Explosion
Powerful processors need something to process: data. Lots of it. Kryder's Law, named after former Seagate executive Mark Kryder, is the storage equivalent of Moore's Law. It observed that the density of information on hard drives was increasing at a blistering pace, even faster than Moore's Law at its peak. Cheaper, denser storage meant we could save everything from family photos to massive corporate databases and the oceans of data needed to train AI. While the pace has slowed, the principle remains: as processors get faster, the ability to store the data they need to chew on has to keep up.
3. Nielsen's Law: The Bandwidth Connection
So you have a powerful computer and tons of data. How do you move it around? Enter Nielsen's Law of Internet Bandwidth. Coined by user-experience expert Jakob Nielsen, this observation notes that a high-end user's connection speed grows by about 50% per year. This predictable expansion of bandwidth is what made streaming services like Netflix, cloud gaming, and today's data-heavy web possible. It's the third leg of the stool: Moore’s Law for processing, Kryder’s Law for storage, and Nielsen’s Law for the pipes that connect them all.
4. Wright's Law: The Manufacturing Precursor
Before Moore's Law, there was Wright's Law. Originating in the 1930s aerospace industry, this principle states that for every cumulative doubling of production, costs fall by a consistent percentage. It’s a broader observation about manufacturing experience: the more you make of something, the better and cheaper you get at making it. Moore’s Law can be seen as a specific instance of Wright’s Law applied to semiconductors. While Moore's Law links progress to time, Wright's Law links it to production volume, offering a powerful lens for understanding how industries scale and improve.
5. Christensen's Theory of Disruption: The Strategic Angle
Moore’s Law doesn't just make things faster; it changes the rules of business. Harvard professor Clayton Christensen's theory of disruptive innovation explains how. The relentless march of cheaper, more powerful technology allows new entrants to attack the low end of a market with a “good enough” product that incumbents ignore. Think of how personal computers, initially dismissed as toys, eventually displaced powerful mainframes. Moore's Law provides the technological fuel, but Christensen’s framework explains the strategic process by which this fuel ignites and reshapes entire industries, toppling giants along the way.
6. Andy and Bill's Law: The Software Bloat
Here's a more cynical, but undeniably true, companion to Moore's Law. The old industry joke goes: “What Andy giveth, Bill taketh away.” It refers to the dynamic between Intel's Andy Grove, whose new chips delivered ever more processing power (thanks to Moore's Law), and Microsoft's Bill Gates, whose increasingly complex software would immediately consume it. This observation highlights the perpetual cycle where hardware gains are often absorbed by more demanding, and sometimes less optimized, software. It explains why, despite having computers thousands of times more powerful than those of the 1990s, your laptop doesn't always feel that much faster for everyday tasks.
7. Jevons Paradox: The Efficiency Trap
This 19th-century economic principle has found new life in the digital age. The Jevons Paradox states that as technological improvements increase the efficiency of a resource's use, the total consumption of that resource tends to increase, not decrease. Moore's Law makes computing incredibly efficient and cheap. But we don't just use less of it; we find incredible new ways to use more of it, from running massive AI models to filling the world with smart devices. So even as each computation becomes “greener” and cheaper, our total demand for computation—and the energy to power it—continues to explode.











