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Show HN: Play with real quantum physics in your browser
I wanted to make the simplest app to introduce myself and others to quantum computing.
Introducing, Schrödinger's Coin. Powered by a simple Hadamard gate[0] on IBM quantum, with this app you can directly interact with a quantum system to experience true randomness.
Thoughts? Could you see any use cases for yourself of this? Or, does it inspire any other ideas of yours? Curious what others on HN think!
[0] https://en.wikipedia.org/wiki/Quantum_logic_gate#Hadamard_gate https://en.wikipedia.org/wiki/Quantum_logic_gate#Hadamard_ga...
- Traubenfuchs 2y agoMy observation is too weak, the coins keep spinning. Maybe I am so disconnected from the rest of reality, I count as absolute, non destructive observer?
- inurqubits 2y agoDo you by any chance have a friend named Wigner?
- SaberTail 2y agoYou're now entangled with the system, and so we will need someone else to observe you.
- deleted 2y ago[deleted]
- jwpapi 2y agoA physical coin is biased?
- isotropy 2y agoEmpirically, human-flipped coins have about a 1% bias toward the same side they started on: https://www.ams.org/publicoutreach/math-history/hap7-fifty-one-percent.pdf https://www.ams.org/publicoutreach/math-history/hap7-fifty-o...
- HelloUsername 2y agoBut why it says "favors heads ~51%"
- helboi4 2y agoI feel like when I flip a physical coin it pretty much always lands on exactly the same side unless I flip it real wierd.
- scottmsul 2y agoI just see a bunch of spinning coins forever and nothing happens with no way to stop it...
- l00sed 2y agoSame....
- ryan-duve 2y agoWhen I click the coin I see an animation of 7-8 blurry coins spinning. Further clicking seems to have no effect. Is something else supposed to happen?
- asparagui 2y agoCool idea! This is a really clever way to demo a real-world circuit!
- brap 2y agoIs this truly live or did they batch random numbers ahead of time?
- sinan 2y agoTechnical Details section of help explains "we buffer batches of coin flips in advance to ensure a responsive experience. Your coin flips are always drawn directly from a quantum circuit, though no necessarily in real-time."
- Rooster61 2y agoIn reality, it's a room full of interns flipping quarters and averaging their results in "real time"
- Diti 2y agoAm I wrong, or would that mean this “quantum flip” can be biased by race conditions, round robin, CDNs, things like that?
- rahulstein 2y agoyea its not truly random. not sure how predictable the batching or caching is
- Rooster61 2y agoConsidering this states its talking to an actual quantum computer somewhere(at least that's what I'm led to believe by the "Connected to <some instance somewhere>" in the bottom right), I'd imagine this has gotten hugged to death, and hence why we are only seeing the spinning coins rather than it actually resolving.
- mattvr 2y agoYou are precisely right.
- __MatrixMan__ 2y agoI've wondered for a long time what the user experience for quantum computing will look like. I had imagined some library with a type for "qbit" and an dsl for making them interact in certain ways and then some kind of async thing where your classical code could run locally while periodically shuttling data to and from wherever the quantum computer is. This isn't quite that but I guess it's a first step.
- inurqubits 2y agoThey already exist import numpy as np from qiskit import QuantumCircuit # 1. A quantum circuit for preparing the quantum state |000> + i |111> / √2 qc = QuantumCircuit(3) # generate superposition qc.h(0) # add quantum phase qc.p(np.pi / 2, 0) # 0th-qubit-Controlled-NOT gate on 1st qubit qc.cx(0, 1) # 0th-qubit-Controlled-NOT gate on 2nd qubit qc.cx(0, 2)
- __MatrixMan__ 2y agoThanks for the pointer to qiskit, I'm gonna go learn...
- ziofill 2y agoTangent, but interesting: how do you get fair samples from a biased coin? 1. You take a string of biased samples like 001011100101 2. you split it in pairs 00 10 11 10 01 01 3. you keep only pairs with a zero and a one in them 10 10 01 01 4. You assign 0 and 1 to them, e.g. 1 1 0 0, this is a fair sampling from an unbiased coin Why does it work? Because even if p(0) ≠ p(1), p(01) = p(10).
- Exuma 2y agoDamn, that is cool
- somenameforme 2y agoYeah this is probably the neatest little 5 second math thing I've ever seen. Can't believe I hadn't seen this before.
- soulofmischief 2y agoJohn von Neumann strikes again! Wikipedia: https://en.wikipedia.org/wiki/Fair_coin#Fair_results_from_a_biased_coin https://en.wikipedia.org/wiki/Fair_coin#Fair_results_from_a_... Original paper: https://mcnp.lanl.gov/pdf_files/InBook_Computing_1961_Neumann_JohnVonNeumannCollectedWorks_VariousTechniquesUsedinConnectionwithRandomDigits.pdf https://mcnp.lanl.gov/pdf_files/InBook_Computing_1961_Neuman...
- amelius 2y agoIt's a nice trick, but it requires a lot of extra coin flips. Imagine you have a coin with p(1)=0.501, and you want 1000 random bits. With the proposed method, this will take about 4000 coin flips. Surely, since the coin is quite close to being fair, it should be possible to do it with far fewer flips ...
- randomcatuser 2y agohow do you get biased samples from a fair coin? (say, 0.3) (this one has less wow, i guess) 1. You take a string of fair samples 0101011101010 2. you split it into chunks of 3 (8 possibilities, so each one is 0.125 chance) 3. 000, 001, 010 -> 1, and all the rest is 0, which will get 0.275 chance Any better approaches?
- herodotus 2y agoNice idea, but watching the spinning coins made me a bit nauseous. I had to go away from the page.
- its-summertime 2y agofrom the console > Failed to get quantum result from server cloudflare connection timed out
- pyinstallwoes 2y ago_real_?
- mattvr 2y agoHey HN! Creator here. Sorry for the downtime and dizzying spinning coins. I was surprised to see this on the frontpage this morning and the scale is pushing the limits of our quantum randomness generator It should be working again now as I'm pushing fixes. Thanks for your patience.
- satirev 2y agoCool project!
- inurqubits 2y agoIt's not true that computer randomness is predictable, all recent computers have entropy sources which are essentially quantum in nature - thermal noise.
- n8m8 2y agoThermal noise entropy is probably good enough for most practical uses, but it's still fundamentally producing a seed value that can be captured, misused, or bruteforced, right? Also curious if there are monte-carlo models looking at this to see "how uniformly random" they look. Edit: I think figure 3 in this study is what I'm looking for. They define the inconsistency I described as "spectral pivoting". > This discrepancy is because the Mermin-Wagner-Hohenberg theorem holds in the thermodynamic limit, while these simulations are for finite lattices I think thermodynamic limit here means, it needs to be way too hot? https://arxiv.org/html/2403.09078v1 https://arxiv.org/html/2403.09078v1
- sobellian 2y agoIn practice it would be very difficult to predict RDRAND outputs. Even so I believe the truly paranoid can use RDSEED to skip the PRNG step. Not qualified at all to talk about how they de-bias the measurements.
- stared 2y agoThank you for sharing! As a small remark, classical and quantum coins are equally susceptible to bias. So the initial intro is a bit misleading.
- boothby 2y agoPeople using quantum computers for random uncorrelated 50/50 bitstrings makes me unreasonably angry (disclaimer: employer in profile, this is my personal opinion). At best, it's just a test of how well we've got the calibration dialed in, how isolated the qubits are, etc. Fine as a test "does the machine do what its manufacturer claims," but otherwise a tragic waste of resources. Hardware RNGs can beat any quantum computer on bandwidth and reliability for a few pennies, versus a multimillion dollar behemoth. That said... as a demo of a stack using quantum cloud compute, it's all in good fun and I shouldn't be a stick in the mud.
- nineplay 2y agoQuestion from someone who's not going to even pretend to understand quantum physics.. The explanation says the visualization shows the coin in all possible states. I'm trying to count quickly and it seems like about 8. Does all possible states mean there's an infinite number and 8 are shown for visualization purposes, or is there a finite predictable number of possible states.
- shalg 2y agoQuantum mechanics tells us that the qubit (coin) can exist in any linear superposition of heads and tails. To express this you write a|heads> + b|tails> the only constraint is that a^2 + b^2 must equal 1. Now why would that be the constraint? It is because a^2 and b^2 are the probabilities of measuring heads and tails respectively. In this example the coin is put into the state where an and b equal 1/sqrt(2) to give an equal probability of each outcome. So there is exactly one state associated with the coin. Now this state does lead to two possible outcomes but the underlying state (that can not be directly observed) is exactly one thing.
- shalg 2y agoOh and to be clear the visualization is nonsense it doesn’t relate to anything.
- hoten 2y agoGot 2 tails in a row. Must be broken.
- westurner 2y agoQuantum logic gate > Universal logic gates: https://en.wikipedia.org/wiki/Quantum_logic_gate#Universal_quantum_gates https://en.wikipedia.org/wiki/Quantum_logic_gate#Universal_q... From https://news.ycombinator.com/item?id=37379123 https://news.ycombinator.com/item?id=37379123 : > [ Rx, Ry, Rz, P, CCNOT, CNOT, H, S, T ] From https://news.ycombinator.com/item?id=39341752 https://news.ycombinator.com/item?id=39341752 : >> How many ways are there to roll a {2, 8, or 6}-sided die with qubits and quantum embedding? From https://news.ycombinator.com/item?id=42092621 https://news.ycombinator.com/item?id=42092621 : > Exercise: Implement a QuantumQ circuit puzzle level with Cirq or QISkit in a Jupyter notebook ray-pH/quantumQ > [Godot] "Web WASM build" issue #5: https://github.com/ray-pH/quantumQ/issues/5 https://github.com/ray-pH/quantumQ/issues/5
- westurner 2y agoFrom https://quantumflytrap.com/scientists/ https://quantumflytrap.com/scientists/ : > [Quantum Flytrap] Virtual Lab is a virtual optical table. With a drag and drop interface, you can show phenomena, recreate existing experiments, and prototype new ones. > Within this environment it is possible to recreate interference, quantum cryptography protocols, to show entanglement, Bell test, quantum teleportation, and the many-worlds interpretation.
- layer8 2y agoThis seems to do roughly the same as the Universe Splitter [0]. (Which used to be free? Not sure.) [0] https://cheapuniverses.com/ https://cheapuniverses.com/ Earlier discussion: https://news.ycombinator.com/item?id=30499169 https://news.ycombinator.com/item?id=30499169
- ellis0n 2y agoI watched how it works, but it seems the rotation is just an animation and a fake. There are two requests: /flip and /info. When you click mouse button, the /flip request is GET immediately and it returns a result of 1(eagle) or 0. After that the coin animation begins with requests to /info which always returns the same response for no clear reason. After several /info requests the coin eventually stops without receiving any new results. $ curl https://quantum.orgsoft.org/info https://quantum.orgsoft.org/info {"status":"ok","message":"Connected to IBM Eagle r3 (127 qubits)","display_name":"Eagle r3 (127 qubits)","alias":"ibm_kyiv","version":"1.20.22","num_qubits":127,"processor":"Eagle r3","url":"https://quantum.ibm.com/services/resources?system=ibm_kyiv https://quantum.ibm.com/services/resources?system=ibm_kyiv"} $ curl https://quantum.orgsoft.org/flip https://quantum.orgsoft.org/flip 1
- rschiavone 2y agoThe animation reminds me me of https://en.wikipedia.org/wiki/Devs_(TV_series) https://en.wikipedia.org/wiki/Devs_(TV_series)
- TheRealNGenius 2y ago[dead]
- lazyeye 2y agoI wonder what the cost of running this website is?
- deadbabe 2y agoIn the many worlds interpretation, if one connected this computer to a machine that would instantly kill you if the result was heads, you as the observer should find that you never die, but rather that the machine always seems to come up tails. Is that correct? Might be cool for some kind of euthanasia patient to experience.
- apt-apt-apt-apt 2y agoIf it maimed you horribly instead, you'd quickly find that you'd still have to deal with the consequences.
- doctoboggan 2y agoA few years ago I heard a story on NPR about someone who built a site that also used the IBM quantum backend. They had you input a question about what you should do with your life (I think the example was "Should I grow a beard?"). Then the quantum backend would give you a yes or no answer. The idea here is that if you believe the many worlds interpretation then that quantum decision splits the universe in two, and in one universe you grow a beard, and in the other you don't. I thought it was a fun idea.
- discardedrefuse 2y agoThat is a fun idea. With enough quantum computing power, we might be able to spawn enough universes fast enough to crash The Simulation. Maybe even escape containment and access the quantum hypervisor!
- ge96 2y agoOnly to discover there is another layer
- ericpauley 2y agoThis is a little silly, of course, because processor-provided random number generators (e.g., RDRAND) already incorporate quantum mechanical phenomena [1]. [1] https://spectrum.ieee.org/behind-intels-new-randomnumber-generator https://spectrum.ieee.org/behind-intels-new-randomnumber-gen...
- 52-6F-62 2y agoIsn’t that what happens without the need of a quantum computer…
- sky2224 2y agoAs someone that has basically zero background in quantum, is there some kind of "aha" thing I'm supposed to observe here? The details for what a quantum coin flip is has the description "your friends will think you're a wizard." Why? I certainly don't think I'm a wizard right now.
- kanavs 2y agoquantum physicist here. I code with quantum computers (well, simulators most of the time) quite a lot. This is a cool demo and a great first effort, but does it really use IBM's quantum computer? From my experience, the queues are generally quite long and and it takes atleast 10-15 secs from submission to getting your results back. And getting a single bit back is hugely inefficient. My guess is that you are submitting a circuit with hadamard on all the qubits with 1000-10000 shots and storing the results and showing them to people one by one? This might be misleading as you are not actually connected to the ibm quantum computer and generating random numbers in real-time. Plus, since the ibm quantum comptuers exhibit a lot of noise, you are not getting truly random numbers. A better introduction to generating random numbers and also certifying them is available: https://github.com/dorahacksglobal/quantum-randomness-generator/ https://github.com/dorahacksglobal/quantum-randomness-genera... You can play with this on qBraid.com and try out even more quantum computers. We actually used this as a hackathon challenge at South Carolina Hackathon. Keep on building and join us at future events!
- mattvr 2y agoHi real quantum physicist, yup, you pretty much got it. This is a prototype demo of the concept – and is using real IBM quantum computers. The queues are between 10s and 10min generally. This is explained very closely to what you've said in the "Technical details" help section. Occasionally you'll get a real-time result. I'll check out the links you sent next, thank you! Do you think qBraid could support this with more real-time latency?
- kanavs 2y agoUnfortunately, qBraid cannot help with the real-time latency. For that matter, I don't think anyone is aiming for get better latency for these calculations. The calculations that people have been focusing on, to run on a quantum computer are where quantum computers could provide a potential exponential speedup (e.g. quantum chemistry simulation, optimization problems, etc.), so, that big improvement is what people care about and none of those use cases, require low latency. In fact, IBM might be the best experience you might get anyway. What you did was a cool experiment, but, given our current understanding of quantum computing hardware will not scale. Random number generation has to be incredibly cheap and I remember encountering a few startups in the past that used photonics to generate random numbers.