What Is MmWave Radar?: Everything You Need to Know About FMCW (2022)
seeedstudio.com
seeedstudio.com
If I forget to take it down is self-limiting because eventually the dish of water evaporates.
It would do an even better job if it also mentioned that an FMCW based human presence detector consumes several orders of magnitude more power than a PIR sensor, which means battery operation will either make the sensor very large or require frequent battery changes.
......I can't be the only one wondering what mega metre radar was.
The copy, though... "Radar has been adopted as a simple and practical solution in Artificial Intelligence."?
Edit: or is it the case that a full period of the reflected signal must be detected first before Doppler can be calculated?
quote from https://navtechradar.com/explore/fmcw-radar/#:~:text=Frequen....
The "real world" radars usually use a triangle wave. If no movement, the delta on rising and falling parts of the triangle are the same. A doppler will shift the height so to speak so the delta output instead of being constant (distance) will have a square wave look to it and the height of that sq wave will be the doppler component.
So pseudocode looks something like figure out the average delta when the triangle modulation is going up, then average when its going down, and the average of the averages is the distance and the difference of the averages is the doppler.
Note that "real radars" and "military radars" use wildly more interesting modulation schemes. Sawtooths and triangles were cutting edge in 1950 not so much anymore. Imagine if you generated a known pseudo-random or crypto-generated digital signal and transmitted that and the remembered what you transmitted for awhile and correlated your known previous values with what you rx a little later; now that was cutting edge in the 60s/70s and thats quite hard to jam compared to legacy methods.
Also I "know" the NWS WSR-88 weather radars transmit some really cool and interesting waveforms for weather experiments although I don't have the details.
Edited: Its too early in the morning for me to think about this, I may have the above backwards. The general concept, anyway, is the rate of change of your triangle wave is way faster than the change in movement, and over the very short term of a couple cycles of the triangle modulation, the returned freq from doppler is a "constant" offset high or low added to the shift from distance. Now during the upslope of a triangle the returned signal will lag and return a lower/negative voltage and during the downslope of a triangle the returned signal will lag and return a higher/positive voltage from the past. So yeah I'm sleepy and I got it backwards above; leaving for the LOLs.
Edited x2: Ugh I'm sleepy. This is like parody leetcode for EEs. Just do a numerical simulation using small simple numbers of modulating a FMCW with a triangle wave (not sawtooth...) and it'll all eventually make sense.
They seem to essentially be "water" detectors. With human bodies being mostly water, they serve as presence detectors almost as a happy side effect. With some of the cheaper/less tuned sensors, they will detect a 5 gallon bucket of water, or a burbling water cooler as a person.
You can get range estimates from a single unit, but direction is poor to non-existent.
I don't see these being good for what you are describing.
Can one of these be used to measure the speed of a golf ball? What is the output signal of a typical module? Do we get just a single float representing speed?
Noise (SNR, distance to the ball, aperture) will determine how well this works, since too much integration could muddy the signals.
It’s worth a try! Good luck.
"Radio killed the Video Star" ?
Further, as an IOT engineer, I can tell you we do not currently have enough data to be sure
I’m getting downvoted by people who probably aren’t even in the signals field lol…
Remember just 70 years ago when “lobotomies were sound science and totally safe”
So the 60 GHz presence detector transmits at +6 dBmW aka 4 milliwatts or 4 thousandths of a watt. As a side note microwave RF has never been known for power efficiency and I've built many a MMIC amplifier running under 1 percent efficient LOL. Something like a patriot missile AN/MPQ-53 radar transmits at 10 kilowatts, which is 2.5 million times the power of these detectors. If you want to burn thru radar jamming at 350 miles or whatever the unclassified spec is for the -53 radar, its going to take some serious wattage. Of course that's nothing compared to an old fashioned UHF broadcast transmitter or even a modern FM broadcast radio transmitter.
Anyway the point of the above is in theory if RF caused cancer or death or covid or whatever its being blamed for now, the "medical signal" would be 2.5 million times stronger in military anti-aircraft units than in rando presence detector general public, to a first estimate. Seeing as there's no difference in death rates for ADA soldiers vs artillery or any other army branch that I'm aware of, and the rate would be 2.5 million times lower than... nothing... for general public using presence detectors, it seems unlikely that even massive scaling up to a billion users would have a measurable effect.
Similar comedic examples can be generated for broadcast engineers. I'm friends with a couple broadcast EEs and old broadcast engineers just don't die (LOL). If a cellphone (100 times the power of a presence detector) gave even one human being per year early cancer, your average broadcast engineer would be dead in their first five minutes of work or something like that because they're always screwing around with enormous power levels, no matter if its permitted or not technically.
The thing about electronics, is much like radiation, we can generate and measure sources over 9, maybe 12 orders of magnitude every day all over the planet.