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Cosmetic change
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@ -2040,6 +2040,8 @@ print(f"A = {A} +/- {deltaA}")
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#+END_SRC
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#+RESULTS:
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: E = -0.48034171558629885 +/- 0.0005286038561061781
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: A = 0.6210380000000001 +/- 0.0005457375900937905
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*Fortran*
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#+BEGIN_SRC f90
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@ -2379,13 +2381,13 @@ gfortran hydrogen.f90 qmc_stats.f90 vmc_metropolis.f90 -o vmc_metropolis
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$\exp \left( -\delta t\,( E_L(\mathbf{r}) - E_{\rm ref}) \right)$ as a
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cumulative product of weights:
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\[
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\begin{eqnarray*}
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W(\mathbf{r}_n, \tau)
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= \exp \left( \int_0^\tau - (E_L(\mathbf{r}_t) - E_{\text{ref}}) dt \right)
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\approx \prod_{i=1}^{n} \exp \left( -\delta t\,
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& = & \exp \left( \int_0^\tau - (E_L(\mathbf{r}_t) - E_{\text{ref}}) dt \right) \\
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& \approx & \prod_{i=1}^{n} \exp \left( -\delta t\,
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(E_L(\mathbf{r}_i) - E_{\text{ref}}) \right) =
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\prod_{i=1}^{n} w(\mathbf{r}_i)
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\]
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\end{eqnarray*}
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where $\mathbf{r}_i$ are the coordinates along the trajectory and we introduced a time-step $\delta t$.
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