Double slit
How does one particle make an interference pattern?
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Explained by
Copenhagen
The orthodox viewThe electron has no path. A wave of possibility passes through both slits and interferes with itself. At the screen a measurement happens: the wave collapses, and one point flashes. Before that click, “which slit?” has no answer.
Most Copenhagen readings treat the wave function as a tool for computing probabilities rather than a thing in the world — though how far Bohr himself went that way is still argued over, and there was no single Copenhagen doctrine until Heisenberg named one in 1955. Between source and screen there is only the calculus of amplitudes; reality enters at measurement, and the theory is deliberately silent about anything more. Bohr insisted the experiment must be described half classically — the slits and the screen belong to our world, the electron to the quantum one — with the boundary set by what the instrument has to do rather than by the observer's choice. The freely movable cut belongs more to Heisenberg and von Neumann.
Many Worlds
Everything happensThe wave function is everything, and it never collapses. It passes through both slits — there is no separate particle taking a route; when it reaches the screen, the screen — and you — join the superposition. Every landing point happens, each in its own branch. You simply find yourself in one of them.
Take the equation literally and never add anything: superpositions never resolve, they spread. Decoherence explains why branches stop interfering and why each one looks like a single classical world from inside. The one dot you see is not selected — it is indexed. All the others are seen too, by other versions of you. The hard part is probability: if everything happens, what does “a 5% chance” even mean?
Pilot Wave
Particles, guidedThe electron is a real particle with a definite position at every instant — it goes through exactly one slit. But it rides a real wave that goes through both. The wave steers the particle, and over many runs the trajectories bunch into the interference pattern.
De Broglie proposed it in 1927; Bohm completed it in 1952. Particles have positions; the wave function is a physical field that guides them. Measurement is nothing special — just particles moving. The catch is that the guidance is instantaneously sensitive to distant events: the nonlocality Bell later proved unavoidable is written on the theory's face rather than hidden.
Objective Collapse
Collapse is physicsThe wave function is real, and it really collapses — spontaneously, at random, as a physical process. A lone electron almost never collapses mid-flight, so interference survives. A screen of a trillion trillion atoms collapses almost instantly, so you see one dot.
GRW-type models change the equation itself: each particle suffers rare, random localization events. Entanglement makes them contagious — one hit localizes a whole apparatus. Size, not consciousness, draws the quantum–classical line. Because the dynamics differ from standard quantum mechanics, these models are testable in principle: precision interference experiments with ever-larger molecules keep tightening the allowed collapse rates.
QBism
Probability is personalThe wave function isn't out there — it's yours. It encodes your expectations about what you'll experience. The interference structure is a fact about the world; the “collapse” is just you updating your bets after the screen flashes.
QBism treats quantum states the way a Bayesian treats probabilities: as personal degrees of belief, exquisitely disciplined by the quantum formalism. Two agents may honestly assign different states to the same electron. The measurement problem dissolves — nothing physical collapses when beliefs update. What remains is a live question: what is the world like, that it forces agents to bet this way and no other?
Relational
Facts are relativeThere is no absolute state of the electron — only states relative to other systems. Relative to the screen, the electron becomes definite on impact. Relative to you, it becomes definite when you look at the screen. Both descriptions are complete.
Rovelli's move is to treat every system as an observer of the systems it interacts with. Variables take values only in interactions, and a value for one observer need not yet exist for another — like simultaneity in relativity, definiteness is relative. Collapse never happens absolutely; it happens for someone. The bookkeeping stays consistent because whenever two observers compare notes, that comparison is itself an interaction.
Consistent Histories
Histories, not measurementsAsk a consistent question and you get a consistent story. In a framework where the electron has no path, histories interfere and the pattern follows. In a which-slit framework, paths are definite — but interference questions can no longer be asked. Neither framework is the true one; they are different bookkeepings of the same event.
Griffiths, Omnès, Gell-Mann and Hartle recast quantum mechanics as rules for assigning probabilities to families of histories. A family counts as consistent when its histories don't interfere, so ordinary probability rules apply. Measurement devices appear as physical systems inside histories, not as special acts from outside. The unsettled question is famous: many incompatible families are equally consistent, and the formalism itself never says which one describes what actually happened.
Key assumptions
- The wave function is a predictive tool, not an object
- Measurement is a special, unanalysed act
- A classical world of labs and screens is assumed, not derived
What it gets right
- Matches every experiment with the least machinery
- No extra worlds, particles, or equations
- The working physicist's default for a century
What it gets questioned on
- Never says what counts as a measurement
- Puts a movable, unexplained cut through reality
- Not one doctrine — Bohr and Heisenberg never fully agreed
Key assumptions
- The wave function is physically real — and is all there is
- The equation holds always, with no exceptions for observers
- Branching structure emerges through decoherence
What it gets right
- No collapse, no special role for measurement
- Fully deterministic at the level of the whole
- Removes a rule rather than adding equations, supporters argue
What it gets questioned on
- An enormous inventory of worlds no one can see
- The Born rule must be argued for, not assumed
- What exactly counts as one branch?
Key assumptions
- Particles with definite positions at all times
- A real guiding wave obeying the usual equation
- An initial statistical distribution (quantum equilibrium)
What it gets right
- A single definite world — no collapse, no branching
- Observers appear nowhere in the laws
- Recovers the non-relativistic predictions exactly
What it gets questioned on
- Openly nonlocal — awkward with special relativity
- Only position is definite; spin and the rest are contextual
- Extending it to quantum field theory is hard work
Key assumptions
- The wave function is a physical object
- The standard equation is slightly, stochastically wrong
- Collapse rate grows with the number of constituent particles
What it gets right
- Observers play no role at all
- Draws the quantum–classical boundary quantitatively
- Makes predictions that experiments can chase
What it gets questioned on
- The wave function never quite vanishes — the problem of tails
- Standard versions heat matter slowly — later variants patch this
- Each null experiment shrinks its living room
Key assumptions
- Probabilities are personal degrees of belief
- A measurement is an agent's action on the world
- The formalism is a normative rule for betting, not a map
What it gets right
- The measurement problem simply dissolves
- No nonlocal mechanism — updating isn't physics
- Takes the probabilistic core of the theory seriously
What it gets questioned on
- Seems to abandon the third-person picture science expects
- The world between agents is left undescribed
- Critics hear solipsism; QBists insist it is not
Key assumptions
- States describe relations, not intrinsic properties
- Every physical system can serve as an observer
- Facts are complete only relative to an interaction
What it gets right
- No collapse, no extra worlds, no new dynamics
- Dissolves paradoxes by forbidding the view from nowhere
- Kinship with the spirit of relativity
What it gets questioned on
- A world of many partial facts takes getting used to
- Comparing observers' accounts needs delicate care
- Critics ask: relations between what, exactly?
Key assumptions
- Probabilities attach to histories, not measurement outcomes
- Only mutually consistent families of histories may be combined
- The formalism applies to closed systems, observers included
What it gets right
- Measurement loses its special status entirely
- Applies to the whole universe — no outside observer needed
- Stays close to the standard formalism, adding no new dynamics
What it gets questioned on
- No rule selects which framework to use
- Different frameworks license incompatible descriptions
- Critics ask what, if anything, actually happens