More qubits do not automatically make a quantum computer useful. A processor also needs accurate, fast operations—quantum gates—and enough circuit depth to complete a computation before noise overwhelms its result. Qubit count tells you how many quantum bits a device has; gate quality and circuit depth help show how much useful work those bits can do.
What quantum gates do
A quantum gate is an operation applied to one or more qubits. It plays a role similar to a logic gate in a classical computer: a circuit combines operations to transform input data into an output. Quantum gates also manipulate superposition and entanglement, so the computation is not simply a classical calculation performed on a different kind of bit.
A controlled-NOT, or CNOT, is a two-qubit gate with a control qubit and a target qubit. If the control is 0, the target is unchanged; if the control is 1, the target flips. That conditional interaction is a basic way to link qubits, and many useful circuits require such two-qubit operations.
Why gate quality matters as much as qubit count
Every physical gate is imperfect. A gate can produce an unintended result, and errors can accumulate as a circuit runs. A processor with many qubits may therefore be unable to use all of them in a deep computation if its operations are too noisy, too slow, or difficult to connect.
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Useful performance depends on several factors working together:
- Gate fidelity and error rate: how reliably an operation produces its intended result. Small errors can compound over a long sequence.
- Gate speed and coherence: how quickly operations run relative to how long qubits retain their quantum state. Longer coherence can allow more work before information degrades.
- Connectivity: which qubits can interact directly. Limited connectivity may require extra operations to move or rearrange information, adding time and possible errors.
- Control and calibration: how precisely the processor can apply and maintain its operations.
- Error handling: mitigation can reduce the impact of some errors in near-term computations; fault-tolerant error correction is designed to protect logical information through much larger computations.
As Francis Sideco, principal analyst at TIRIAS Research, put it in EE Times on February 18, 2025, gates support “the more complex workloads that will ultimately enable quantum computers to achieve ‘quantum advantage,’ essentially performing practical tasks faster or cheaper than classical computing.”
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What circuit depth means
A quantum circuit is arranged as layers of operations. Circuit depth is the number of sequential layers that must run, rather than simply the total number of gates. Gates acting on separate qubits can sometimes run in the same layer; operations that depend on earlier results must wait. So two circuits with the same total gate count can have different depths and different execution challenges.
Depth matters because errors and decoherence build as a computation proceeds. If the useful signal is lost before the circuit finishes, adding qubits will not rescue the answer. Better qubit design, longer coherence, calibrated control, connectivity, and error mitigation can improve the depth that a processor can use. Fault-tolerant error correction is intended to enable a much larger increase by encoding logical qubits in physical hardware and correcting errors during computation.
How many gates can a quantum computer run?
There is no single gate-count number that answers this for every processor or task. The meaningful limit depends on gate type, error rates, circuit structure, connectivity, and whether the reported figure describes physical operations, logical operations, or a particular demonstration. A bare gate total does not establish that a computer can run an arbitrary circuit of that size accurately.
One example illustrates why qubit and gate figures belong together. EE Times described IBM’s Heron processor in 2025 as supporting 5,000 two-qubit gates; IBM’s processor documentation lists Heron at 156 physical qubits. These figures refer to different aspects of the system, and the 5,000-gate description should not be read as a guarantee that any 5,000-gate workload will produce a useful answer.
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IBM’s Heron, Starling, and Blue Jay figures
The figures below distinguish a described processor from future roadmap goals. IBM says its roadmap represents current intent and may change or be withdrawn; its dates are targets, not guarantees.
| System | Qubit figure | Gate figure | Status and source |
|---|---|---|---|
| Heron | 156 physical qubits | 5,000 two-qubit gates, as described by EE Times | Processor example; IBM processor documentation and EE Times (2025) |
| Starling | 200 logical qubits | 100 million gates | IBM 2026 roadmap goal for 2029, not a delivered milestone |
| Blue Jay | Up to 2,000 qubits | 1 billion gates | IBM 2026 roadmap goal for 2033 or later, not a delivered milestone |
IBM’s Technology Atlas, updated March 2026, says: “The first fault-tolerant quantum computer, Starling, will be available to clients in 2029.” That is IBM’s stated target, not an independently validated forecast. The roadmap figures are not directly comparable to Heron’s physical-qubit and two-qubit-gate description: Starling’s count is explicitly logical, while the Blue Jay figure is stated as qubits without a physical-versus-logical qualification here.
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How to judge claims about quantum advantage
Quantum advantage means completing a practical task faster or more cheaply than classical computing, not merely running a circuit with many qubits or gates. When comparing claims from IBM, Quantinuum, Google, Microsoft, Amazon, Alice & Bob, or Intel, check whether the measurements describe the same kind of system and workload.
- Qubit type: Is the count physical qubits, logical qubits, or an unspecified total?
- Gate performance: What are the two-qubit gate fidelity and error rate, and under what conditions were they measured?
- Demonstrated computation: What maximum circuit depth or operations per circuit has actually been shown?
- Architecture: What connectivity is available, and how does the design scale across modules?
- State handling: What coherence and reset performance is reported?
- Error strategy: Is the result based on error mitigation, error correction, or neither?
- Evidence status: Is the figure a delivered milestone, a measured demonstration, or a roadmap target?
When quantum computing will achieve an advantage
No independently established date can be given for when quantum computers will deliver practical advantage over classical machines. IBM’s Starling and Blue Jay dates are company roadmap goals, and the Starling statement is an IBM target rather than an independent forecast. The central technical test is whether a system can execute a relevant workload with enough reliable circuit depth to outperform the best classical approach on that same task.
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