Quantum physics simulation library for open quantum systems. Use when studying master equations, Lindblad dynamics, decoherence, quantum optics, or cavity QED. Best for physics research, open system dynamics, and educational simulations. NOT for circuit-based quantum computing—use qiskit, cirq, or pennylane for quantum algorithms and hardware execution.
85
81%
Does it follow best practices?
Impact
90%
1.40xAverage score across 3 eval scenarios
Passed
No known issues
Floquet periodic solver selection
Floquet solver used
100%
100%
Period calculation
100%
100%
String-based time dependence
0%
100%
Args dictionary used
100%
100%
Collapse operator scaling
0%
100%
e_ops for observables
100%
100%
Floquet modes computed
100%
100%
Hamiltonian list format
100%
100%
Output data saved
100%
100%
T passed to fmmesolve
100%
100%
Emission spectrum and Wigner visualization
Steady state initial condition
0%
100%
Two-time correlation function
100%
100%
FFT spectrum computation
100%
100%
wigner_cmap used
0%
100%
Wigner function computed
100%
100%
Collapse operator scaling
100%
100%
mesolve or steadystate used
70%
100%
Photon operators in correlation
100%
100%
Spectrum data saved
100%
100%
xvec defined with linspace
100%
100%
HEOM non-Markovian dynamics and import
Correct HEOM import path
0%
0%
BosonicBath construction
100%
100%
HEOMSolver creation
70%
100%
max_depth set explicitly
100%
100%
hsolver.run() for time evolution
100%
100%
parallel_map for parameter sweep
0%
100%
store_final_state option
0%
0%
Sigma coupling operator
100%
100%
Density matrix initial state
100%
100%
Results saved to file
100%
100%
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Table of Contents
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