Taking multiple exposures isn't always possible, this may be a continuous multi-hour exposure. Additionally if you're looking for transients, NEOs, or star field mapping then there is definitely lost data that can't just be inferred.
The conversation isn't just about halting launches. It's about recognizing and working to mitigate the issue now before we get too far down this path.... and accepting that it's not a trivial "photoshop" problem.
I'm frankly amazed at the arrogance on display here. Do you honestly think you know better then the entire field of astronomy?
Think for instance about CO2 levels. Is it such a big deal if they reach 1% of the atmosphere? It's only a small part after all.
Let me guess, if the visual radius of a one meter satellite 550,000 meters away is (1/X)^2. Thirty thousand would be 1/one trillion, or far less?
(1) astronomers are pretty darn aware of everything going on, and it's really shocking as an astronomer to see these sorts of claims. There have been close collaborations with Space X to try to mitigate some issues, but these are partial mitigations and the most important ones are only planned, not implemented. The "successful" mitigations I think you're referring to is their "DarkSat" coating, which is not actually a successful mitigation. It is still ~2x as bright as the ~maximum level of acceptable brightness for e.g. LSST.
(2) Space-X did not release any details about brightness characteristics, and they themselves claim that they were "surprised" by the brightness. To people that work in space rather routinely, that is staggeringly incompetent.
(3) > why do most not know Starlink was never visible except at dawn or dusk
Near earth object (NEO) detection only happens during these times. NEO includes "asteroids that threaten human life" so I would hope you agree that this is pretty important. Also, depending on latitude and time of year, "dawn or dusk" can constitute your entire observing window. So this doesn't really make things better.
(4) all of these mitigations should be done before companies can start doing ~10,000 satellite launches. The only reason this isn't done is outdated legislation that never conceived of this being possible.
In space infrared detectors are the most effective way of searching for dangerous NEOs, and SpaceX has made them far cheaper to launch. How come you don’t know that?
https://www.nasa.gov/sites/default/files/atoms/files/nasem_r...
I guess that's a specific version of the "cherry-picking data" fallacy.
Then they claim SpaceX is only trying paint.
Even opening and closing the shutter multiple times during one exposure will cause issues - but probably still possible to get under control. But covering parts of the detector will create significant variants that will be extremely hard to control for. Keep in mind we don't really want pretty pictures, but we use these images to measure the brightness of objects in those images (photometry).
In space that approach would work quite well indeed, but then you wouldn't need it in the first place..
Edit: Even if one still has to mask the streak in the data in the end, it might still be useful to do, since it will protect the rest of the image from any excess blooming.
I think you could mitigate the problems with conditions changing if (instead of blocking out the streak in the image with some per-area shutter) you tracked the satellite in the image with a horizontal (or vertical) shutter stripe which has the right width to cover the entire satellite. This would make the data lost really minor, and changing conditions wouldn't be a problem, and the exposure would be even. Does that make sense?
And space observatories are much much more expensive than ground-based ones. JWST for instance will cost around 10 billion dollars in the end - and they don't even have to pay for the launch cost (one of the contributions of ESA to the project is free launch on Ariane rocket). JWST will have a 8m mirror. Currently three 30m class ground-based observatories are being built (ELT is 39m, TMT 30m and GMT 24.5m) each with an estimated cost between 1 and 1.5 billion dollars. So you get three much much larger ground-based telescopes for the price of one large space observatory (and still have money left over).