com.quantum-expectations/quantum-expectations

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v0.6.0com.quantum-expectationsUnknownActualizado hace 1 m

Quantum error-correction feasibility: success probability, qubit overhead, records, trends.

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Paquete
Autorcom.quantum-expectations
LicenciaUnknown
Versión0.6.0
Fuentemcp-registry
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B
60/100Bueno
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EstadoIndexado por la comunidad
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Superficie de herramientas12 herramientas · ninguna privilegiada
Análisis de seguridad✓ Limpiovlive · hace 27 d¿Qué tan bien funciona este análisis?
EvaluacionesNinguna
Indexado3 jul 2026

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Herramientas

12 herramientas · ninguna privilegiada
Observado en vivo desde el endpoint del proveedor27d ago

Leído de un handshake MCP real initialize → tools/list contra el endpoint declarado. No se invocó ninguna herramienta: tools/list es la llamada de introspección de solo lectura que el protocolo define para esto. Refleja lo que el servidor anunciaba en ese momento; un endpoint alojado no está fijado a ninguna versión y puede cambiar sin avisar.

  • https://www.quantum-expectations.com/api/mcp12 herramientas · 487 ms
compute_expectationGiven a quantum circuit (2-qubit error rate p, qubit count n, depth d), compute the effective error rate, success probability, and optional surface-code or qLDPC overhead. The response is self-describing (formulas, assumptions, caveats, glossary, SOTA hardware, historic series with source URLs) so…

Given a quantum circuit (2-qubit error rate p, qubit count n, depth d), compute the effective error rate, success probability, and optional surface-code or qLDPC overhead. The response is self-describing (formulas, assumptions, caveats, glossary, SOTA hardware, historic series with source URLs) so…

ParámetroTipoDescripción
qubitErrorRatenumberPer-gate 2-qubit error rate p, in (0, 0.1]. Supply exactly one of qubitErrorRate or hardwareId.
hardwareIdstringAlias for qubitErrorRate: resolves to the 2-qubit error rate of the given SOTA hardware entry from list_current_quantum_computers. Supply exactly one of qubitE…
numQubits*integer—
compDepth*integer—
useErrorCorrectionboolean—
errorCorrectionCodestringEither "surface" (default when useErrorCorrection=true) or a qLDPC code id from list_qldpc_codes. "surface-code" is accepted as an alias for "surface".
distanceSurfaceCodenumberSurface code distance: odd integer in [3, 31]. Required when useErrorCorrection=true and the surface code is selected; ignored when a qLDPC code is selected.
verbosebooleanWhen false, omits hardwareContext, formulas, assumptions, caveats, glossary, examples, and exampleProblems from the response — leaving only modelVersion, scena…
compute_required_error_rateInverse of compute_expectation. Given a circuit (numQubits, compDepth) and an acceptable effective error rate, return the required per-gate logical error rate (requiredLogicalErrorRatePerGate: a number, or null only when the target is genuinely unreachable; never 0) and, for every EC option (no-EC,…

Inverse of compute_expectation. Given a circuit (numQubits, compDepth) and an acceptable effective error rate, return the required per-gate logical error rate (requiredLogicalErrorRatePerGate: a number, or null only when the target is genuinely unreachable; never 0) and, for every EC option (no-EC,…

ParámetroTipoDescripción
numQubits*integerNumber of logical qubits n in the circuit.
compDepth*integerCircuit depth d (sequential 2-qubit gate layers). Accepts values up to 1e13.
acceptableErrorRatePercent*numberUpper bound on the effective error rate, as a percent. Default website convention is 33 (i.e. ≤33% effective error is "acceptable").
compute_fault_tolerant_resourcesGiven an algorithm stated as (numLogicalQubits, tCount) and a physical error rate (or hardwareId), derive the full surface-code + magic-state-distillation footprint from the general laws of the Litinski lattice-surgery cost model (no per-scenario constants): distillation factory choice, tile layout…

Given an algorithm stated as (numLogicalQubits, tCount) and a physical error rate (or hardwareId), derive the full surface-code + magic-state-distillation footprint from the general laws of the Litinski lattice-surgery cost model (no per-scenario constants): distillation factory choice, tile layout…

ParámetroTipoDescripción
numLogicalQubits*integerNumber of logical data qubits the algorithm needs.
tCount*integerTotal number of T gates (magic states consumed). Convention: state Toffoli-counted algorithms in T gates before calling (1 Toffoli ≈ 4–7 T depending on decompo…
qubitErrorRatenumberPhysical 2-qubit error rate p in (0, 0.1]. Supply exactly one of qubitErrorRate or hardwareId.
hardwareIdstringAlias for qubitErrorRate: resolves to the error rate of a SOTA hardware entry.
targetSuccessProbabilitynumberTarget end-to-end success probability. The failure budget (1 − target) is split evenly between T-state error and logical (memory/surgery) error, matching Litin…
dataBlockstringData-block layout (Litinski §2): compact = fewest qubits, fast = shortest time per T gate.
cycleTimeSecondsnumberSurface-code cycle time in seconds. Default 1 µs (Litinski convention; Google 2024 measured 1.1 µs on superconducting hardware). Trapped-ion/neutral-atom cycle…
compare_hardware_scenariosRun the same circuit against multiple current SOTA hardware entries in one call so an agent can rank platforms without N sequential compute_expectation calls. Defaults to every entry in list_current_quantum_computers when hardwareIds is omitted.

Run the same circuit against multiple current SOTA hardware entries in one call so an agent can rank platforms without N sequential compute_expectation calls. Defaults to every entry in list_current_quantum_computers when hardwareIds is omitted.

ParámetroTipoDescripción
numQubits*integer—
compDepth*integer—
useErrorCorrectionboolean—
errorCorrectionCodestringEither "surface" (default when useErrorCorrection=true) or a qLDPC code id. "surface-code" is accepted as an alias for "surface".
distanceSurfaceCodenumberSurface code distance: odd integer in [3, 31]. Required when useErrorCorrection=true and the surface code is selected; ignored when a qLDPC code is selected.
hardwareIdsarraySubset of QUANTUM_COMPUTERS ids to compare. Omit to compare every entry.
list_current_quantum_computersReturn the representative-entry table of current SOTA quantum computers (id, hardware type, physical qubit count, 2-qubit error rate). Same data that powers the website's "Current Quantum Computers" table.

Return the representative-entry table of current SOTA quantum computers (id, hardware type, physical qubit count, 2-qubit error rate). Same data that powers the website's "Current Quantum Computers" table.

No se publicó ningún esquema de entrada para esta herramienta.

list_hardware_timingsReturn per-platform gate-cycle timings (2Q gate time, readout time, in SI seconds) plus the testbed they were measured on (`representativeDevice`) and the native 2Q gate name, with source URLs. Joins list_current_quantum_computers via `hardwareType`, but the numbers are BEST-CASE DEMONSTRATIONS fro…

Return per-platform gate-cycle timings (2Q gate time, readout time, in SI seconds) plus the testbed they were measured on (`representativeDevice`) and the native 2Q gate name, with source URLs. Joins list_current_quantum_computers via `hardwareType`, but the numbers are BEST-CASE DEMONSTRATIONS fro…

No se publicó ningún esquema de entrada para esta herramienta.

compute_quantum_volume_rateCompute the Quantum Volume Rate (QV/second): QVR = V_Q / (log2(V_Q) * t_2Q + t_meas). First-order estimate of how fast a device prepares one QV-sized square circuit (one native 2Q gate per QV layer + one end-of-circuit measurement). OVERSTATES achievable rate: real compilation inflates the 2Q-gate…

Compute the Quantum Volume Rate (QV/second): QVR = V_Q / (log2(V_Q) * t_2Q + t_meas). First-order estimate of how fast a device prepares one QV-sized square circuit (one native 2Q gate per QV layer + one end-of-circuit measurement). OVERSTATES achievable rate: real compilation inflates the 2Q-gate…

ParámetroTipoDescripción
quantumVolume*integerQuantum volume V_Q (integer ≥ 2, e.g. 64 for a depth-log2=6 square circuit).
t2QSeconds*numberNative 2-qubit gate time in seconds (e.g. 60e-9 for a 60 ns CZ).
tMeasurementSeconds*numberEnd-of-circuit measurement/readout time in seconds (e.g. 5e-3 for 5 ms).
fit_historic_seriesFit a log-linear trend (ln(value) = slope * year + intercept) to one historic series — fidelity or qubit-count — for one hardware type. Atomic primitive: compose with list_current_quantum_computers, compute_required_error_rate, or your own modelling to answer "when might hardware reach X?". residua…

Fit a log-linear trend (ln(value) = slope * year + intercept) to one historic series — fidelity or qubit-count — for one hardware type. Atomic primitive: compose with list_current_quantum_computers, compute_required_error_rate, or your own modelling to answer "when might hardware reach X?". residua…

ParámetroTipoDescripción
seriesType*stringWhich historic series to fit: "fidelity" (2-qubit gate error rate) or "qubit-count" (physical qubits).
hardwareType*stringHardware platform as used by get_historic_series.
targetValuenumberOptional. When supplied, the response includes yearAtTargetValue — the extrapolated year the fit crosses this value (error rate for fidelity series, qubit coun…
list_example_algorithmsReturn the curated list of example quantum algorithms with published resource estimates (qubit count, depth/gate count, source paper URL). Useful for comparing what algorithms need vs. what hardware can deliver. Each entry carries a `provenance` field: 'published-circuit' means the figure is reprod…

Return the curated list of example quantum algorithms with published resource estimates (qubit count, depth/gate count, source paper URL). Useful for comparing what algorithms need vs. what hardware can deliver. Each entry carries a `provenance` field: 'published-circuit' means the figure is reprod…

No se publicó ningún esquema de entrada para esta herramienta.

list_qldpc_codesReturn the catalog of supported qLDPC codes (id, label, family, n, k, d, circuitLevelDistance, ancilla counts, roundsPerLogicalOp, threshold, fitCoefficients {c0, c1, c2}, logicalErrorExponent [alpha = d_circ/2], source URLs, provenance, caveats). The per-block, per-syndrome-cycle logical error rat…

Return the catalog of supported qLDPC codes (id, label, family, n, k, d, circuitLevelDistance, ancilla counts, roundsPerLogicalOp, threshold, fitCoefficients {c0, c1, c2}, logicalErrorExponent [alpha = d_circ/2], source URLs, provenance, caveats). The per-block, per-syndrome-cycle logical error rat…

No se publicó ningún esquema de entrada para esta herramienta.

get_historic_seriesReturn the full historic time series — either two-qubit gate error rates ("fidelity") or physical qubit counts ("qubit-count") — broken down by hardware type. Each datapoint carries a source URL. Use this to extrapolate trends — "when might hardware reach X?" — or pair with fit_historic_series for…

Return the full historic time series — either two-qubit gate error rates ("fidelity") or physical qubit counts ("qubit-count") — broken down by hardware type. Each datapoint carries a source URL. Use this to extrapolate trends — "when might hardware reach X?" — or pair with fit_historic_series for…

ParámetroTipoDescripción
seriesType*string"fidelity" → 2-qubit gate error rates; "qubit-count" → physical qubit counts.
get_agent_briefReturn the plain-text site brief describing scope, assumptions, the honesty clause, and the API contract. Mirrors the /agent.txt document served by the website.

Return the plain-text site brief describing scope, assumptions, the honesty clause, and the API contract. Mirrors the /agent.txt document served by the website.

No se publicó ningún esquema de entrada para esta herramienta.

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Quantum error-correction feasibility: success probability, qubit overhead, records, trends.

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