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MAINT: remove matplotlib inline (#392)
* MAINT: remove matplotlib inline * fix linkchecker issue
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lectures/_static/quant-econ.bib

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Note: Extended Information (like abstracts, doi, url's etc.) can be found in quant-econ-extendedinfo.bib file in _static/
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###
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@book{Brunton_Kutz_2019,
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place={Cambridge},
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title={Data-Driven Science and Engineering: Machine Learning, Dynamical Systems, and Control},
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publisher={Cambridge University Press},
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author={Brunton, Steven L. and Kutz, J. Nathan},
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year={2019}
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}
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@article{wallis1980statistical,
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title={The statistical research group, 1942--1945},
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author={Wallis, W Allen},

lectures/kalman_2.md

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To conduct simulations, we bring in these imports, as in {doc}`A First Look at the Kalman filter <kalman>`.
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```{code-cell} ipython3
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%matplotlib inline
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import matplotlib.pyplot as plt
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plt.rcParams["figure.figsize"] = (11, 5) #set default figure size
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import numpy as np
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from quantecon import Kalman, LinearStateSpace
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from collections import namedtuple
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from scipy.stats import multivariate_normal
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import matplotlib as mpl
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mpl.rcParams['text.usetex'] = True
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mpl.rcParams['text.latex.preamble'] = r'\usepackage{{amsmath}}'
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```

lectures/var_dmd.md

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Dynamic mode decomposition was introduced by {cite}`schmid2010`,
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You can read about Dynamic Mode Decomposition here {cite}`DMD_book` and here [[BK19](https://python.quantecon.org/zreferences.html#id25)] (section 7.2).
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You can read about Dynamic Mode Decomposition {cite}`DMD_book` and {cite}`Brunton_Kutz_2019` (section 7.2).
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**Dynamic Mode Decomposition** (DMD) computes a rank $ r < p $ approximation to the least squares regression coefficients $ \hat A $ described by formula {eq}`eq:AhatSVDformula`.
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