Brownian Motion
gregorygundersen.com
[2 comments hidden]
Wonderful article, going from random walk to a Gaussian distribution. As an aside, I feel that normal distribution is way overused in practical contexts (apart from explaining Brownian motion, heights of people, and some other interesting observations). Heavy-tailed distributions that follow pareto or power-law, tend to be closer to actual reality, on many phenomena.
[hidden]
> Building intuition for Brownian motion
Pollen grains are 10's of um, H2Os are 0.3 nm - 10^5 smaller. 10's of ng, vs 3e-14 ng - (10^5)^3 lighter. H2Os moving 600 m/s.
Imagine your body jerking around under a bombardment of relativistic bacteria.
The nanoscale mosh pit from hell.
Years back, a leading MEMS engineer giving a survey talk paused, and said with a deep deep well of feeling, "Brownian motion is the devil. The DEVIL."
[hidden]
Nice article. Totally worth the read for anyone curious about Brownian motion.
Thank you to the author for writing and to the poster for sharing it on HN :-)
[2 comments hidden]
> Then starting in 1905, Albert Einstein published a series of papers in which he hythesized that the pollen particles were moving because they were being bombarded by invisible molecules in the liquid...At the time, this theory was controversial, because the idea of molecules was not yet widely accepted.
What? The idea of molecules was not widely accepted in 1905?
[hidden]
Correct. Books talk as if atomic theory was accepted from early on in the modern era, but actually through the 19th century many prominent physicists and chemists considered it to be unproven speculation, and one reason is the theory lacked specific sizes and masses for atoms. Einstein's analysis persuaded people because it provided these and furthermore numerical predictions that fit the observed data.
[hidden]
I thought this had something to do with the brown note, but was a good read regardless.
kwoff[hidden]