# This code is part of Qiskit.
#
# (C) Copyright IBM 2021.
#
# This code is licensed under the Apache License, Version 2.0. You may
# obtain a copy of this license in the LICENSE.txt file in the root directory
# of this source tree or at http://www.apache.org/licenses/LICENSE-2.0.
#
# Any modifications or derivative works of this code must retain this
# copyright notice, and modified files need to carry a notice indicating
# that they have been altered from the originals.
"""
A library of fit functions.
"""
# pylint: disable=invalid-name, no-member
import numpy as np
[docs]
def cos(
x: np.ndarray,
amp: float = 1.0,
freq: float = 1 / (2 * np.pi),
phase: float = 0.0,
baseline: float = 0.0,
) -> np.ndarray:
r"""Cosine function.
.. math::
y = {\rm amp} \cdot \cos\left(2 \pi {\rm freq} \cdot x
+ {\rm phase}\right) + {\rm baseline}
"""
return amp * np.cos(2 * np.pi * freq * x + phase) + baseline
[docs]
def sin(
x: np.ndarray,
amp: float = 1.0,
freq: float = 1 / (2 * np.pi),
phase: float = 0.0,
baseline: float = 0.0,
) -> np.ndarray:
r"""Sine function.
.. math::
y = {\rm amp} \cdot \sin\left(2 \pi {\rm freq} \cdot x
+ {\rm phase}\right) + {\rm baseline}
"""
return amp * np.sin(2 * np.pi * freq * x + phase) + baseline
[docs]
def exponential_decay(
x: np.ndarray,
amp: float = 1.0,
lamb: float = 1.0,
base: float = np.e,
x0: float = 0.0,
baseline: float = 0.0,
) -> np.ndarray:
r"""Exponential function
.. math::
y = {\rm amp} \cdot {\rm base}^{\left( - \lambda x + {\rm x0} \right)} + {\rm baseline}
"""
return amp * base ** (-lamb * x + x0) + baseline
[docs]
def gaussian(
x: np.ndarray, amp: float = 1.0, sigma: float = 1.0, x0: float = 0.0, baseline: float = 0.0
) -> np.ndarray:
r"""Gaussian function
.. math::
y = {\rm amp} \cdot \exp \left( - (x - x0)^2 / 2 \sigma^2 \right) + {\rm baseline}
"""
return amp * np.exp(-((x - x0) ** 2) / (2 * sigma**2)) + baseline
[docs]
def sqrt_lorentzian(
x: np.ndarray, amp: float = 1.0, kappa: float = 1.0, x0: float = 0.0, baseline: float = 0.0
) -> np.ndarray:
r"""Square-root Lorentzian function for spectroscopy.
.. math::
y = \frac{{\rm amp} |\kappa|}{\sqrt{\kappa^2 + 4(x -x_0)^2}} + {\rm baseline}
"""
return amp * np.abs(kappa) / np.sqrt(kappa**2 + 4 * (x - x0) ** 2) + baseline
[docs]
def cos_decay(
x: np.ndarray,
amp: float = 1.0,
tau: float = 1.0,
freq: float = 1 / (2 * np.pi),
phase: float = 0.0,
baseline: float = 0.0,
) -> np.ndarray:
r"""Cosine function with exponential decay.
.. math::
y = {\rm amp} \cdot e^{-x/\tau} \cos\left(2 \pi \cdot {\rm freq} \cdot x
+ {\rm phase}\right) + {\rm baseline}
"""
return exponential_decay(x, lamb=1 / tau) * cos(x, amp=amp, freq=freq, phase=phase) + baseline
[docs]
def sin_decay(
x: np.ndarray,
amp: float = 1.0,
tau: float = 1.0,
freq: float = 1 / (2 * np.pi),
phase: float = 0.0,
baseline: float = 0.0,
) -> np.ndarray:
r"""Sine function with exponential decay.
.. math::
y = {\rm amp} \cdot e^{-x/\tau} \sin\left(2 \pi \cdot {\rm freq} \cdot x
+ {\rm phase}\right) + {\rm baseline}
"""
return exponential_decay(x, lamb=1 / tau) * sin(x, amp=amp, freq=freq, phase=phase) + baseline