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Create utils.py
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utils.py
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| 1 |
+
import pandas as pd
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| 2 |
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import pymatgen as mg
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| 3 |
+
from pymatgen.core.structure import Composition
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| 4 |
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import numpy as np
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| 5 |
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import tensorflow as tf
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| 6 |
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import shap
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| 7 |
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import joblib
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| 8 |
+
import matplotlib.pyplot as plt
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| 9 |
+
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| 10 |
+
# Explainer path
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| 11 |
+
explainer_filename = "models/explainer_old.bz2"
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| 12 |
+
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| 13 |
+
feature_names = ['PROPERTY: BCC/FCC/other', 'PROPERTY: Calculated Density (g/cm$^3$)',
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| 14 |
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'PROPERTY: Calculated Young modulus (GPa)',
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| 15 |
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'PROPERTY: Processing method', 'PROPERTY: Microstructure',
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| 16 |
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'PROPERTY: Single/Multiphase', 'Microstructure One Hot',
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| 17 |
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'Processing Method One Hot', 'BCC/FCC/other One Hot',
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| 18 |
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'Single/Multiphase One Hot', 'Microstructure B2',
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'Microstructure B2+BCC', 'Microstructure B2+L12',
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| 20 |
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'Microstructure B2+Laves+Sec.', 'Microstructure B2+Sec.',
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| 21 |
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'Microstructure BCC', 'Microstructure BCC+B2',
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| 22 |
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'Microstructure BCC+B2+FCC', 'Microstructure BCC+B2+FCC+Sec.',
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| 23 |
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'Microstructure BCC+B2+L12', 'Microstructure BCC+B2+Laves',
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| 24 |
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'Microstructure BCC+B2+Sec.', 'Microstructure BCC+BCC',
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| 25 |
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'Microstructure BCC+BCC+HCP', 'Microstructure BCC+BCC+Laves',
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| 26 |
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'Microstructure BCC+BCC+Laves(C14)',
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| 27 |
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'Microstructure BCC+BCC+Laves(C15)', 'Microstructure BCC+FCC',
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| 28 |
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'Microstructure BCC+HCP', 'Microstructure BCC+Laves',
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| 29 |
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'Microstructure BCC+Laves(C14)', 'Microstructure BCC+Laves(C15)',
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| 30 |
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'Microstructure BCC+Laves+Sec.', 'Microstructure BCC+Sec.',
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| 31 |
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'Microstructure FCC', 'Microstructure FCC+B2',
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| 32 |
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'Microstructure FCC+B2+Sec.', 'Microstructure FCC+BCC',
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| 33 |
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'Microstructure FCC+BCC+B2', 'Microstructure FCC+BCC+B2+Sec.',
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| 34 |
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'Microstructure FCC+BCC+BCC', 'Microstructure FCC+BCC+Sec.',
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| 35 |
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'Microstructure FCC+FCC', 'Microstructure FCC+HCP',
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| 36 |
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'Microstructure FCC+HCP+Sec.', 'Microstructure FCC+L12',
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| 37 |
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'Microstructure FCC+L12+B2', 'Microstructure FCC+L12+Sec.',
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| 38 |
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'Microstructure FCC+Laves', 'Microstructure FCC+Laves(C14)',
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| 39 |
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'Microstructure FCC+Laves+Sec.', 'Microstructure FCC+Sec.',
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| 40 |
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'Microstructure L12+B2', 'Microstructure Laves(C14)+Sec.',
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| 41 |
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'Microstructure OTHER', 'Preprocessing method ANNEAL',
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| 42 |
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'Preprocessing method CAST', 'Preprocessing method OTHER',
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| 43 |
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'Preprocessing method POWDER', 'Preprocessing method WROUGHT',
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| 44 |
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'BCC/FCC/other BCC', 'BCC/FCC/other FCC', 'BCC/FCC/other OTHER',
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| 45 |
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'Single/Multiphase ', 'Single/Multiphase M', 'Single/Multiphase S']
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| 46 |
+
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| 47 |
+
def normalize_and_alphabetize_formula(formula):
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| 48 |
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'''Normalizes composition labels. Used to enable matching / groupby on compositions.'''
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| 49 |
+
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| 50 |
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if formula:
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| 51 |
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try:
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| 52 |
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comp = Composition(formula)
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weights = [comp.get_atomic_fraction(ele) for ele in comp.elements]
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| 54 |
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normalized_weights = [round(w/max(weights), 3) for w in weights]
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| 55 |
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normalized_comp = "".join([str(x)+str(y) for x,y in zip(comp.elements, normalized_weights)])
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| 56 |
+
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| 57 |
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return Composition(normalized_comp).alphabetical_formula
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| 58 |
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except:
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print("INVALID: ", formula)
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| 60 |
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return None
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| 61 |
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else:
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return None
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| 63 |
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| 64 |
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def calculate_density(formula):
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| 65 |
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'''Calculates densisty based on Rule of Mixtures (ROM).'''
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| 66 |
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| 67 |
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comp = Composition(formula)
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| 68 |
+
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| 69 |
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weights = [comp.get_atomic_fraction(e)for e in comp.elements]
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| 70 |
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vols = np.array([e.molar_volume for e in comp.elements])
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| 71 |
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atomic_masses = np.array([e.atomic_mass for e in comp.elements])
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| 72 |
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| 73 |
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val = np.sum(weights*atomic_masses) / np.sum(weights*vols)
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| 74 |
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| 75 |
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return round(val, 1)
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| 76 |
+
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| 77 |
+
def calculate_youngs_modulus(formula):
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| 78 |
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'''Calculates Young Modulus based on Rule of Mixtures (ROM).'''
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| 79 |
+
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| 80 |
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comp = Composition(formula)
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| 81 |
+
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| 82 |
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weights = np.array([comp.get_atomic_fraction(e)for e in comp.elements])
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| 83 |
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vols = np.array([e.molar_volume for e in comp.elements])
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| 84 |
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ym_vals = []
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| 85 |
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for e in comp.elements:
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| 86 |
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if str(e) == 'C': #use diamond form for carbon
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| 87 |
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ym_vals.append(1050)
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| 88 |
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elif str(e) == 'B': #use minimum value for Boron Carbide
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| 89 |
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ym_vals.append(362)
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| 90 |
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elif str(e) == 'Mo':
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| 91 |
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ym_vals.append(329)
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| 92 |
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elif str(e) == 'Co':
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| 93 |
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ym_vals.append(209)
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| 94 |
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else:
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| 95 |
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ym_vals.append(e.youngs_modulus)
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| 96 |
+
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| 97 |
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#ym_vals = np.array([e.youngs_modulus for e in comp.elements])
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| 98 |
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ym_vals = np.array(ym_vals)
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| 99 |
+
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| 100 |
+
if None in ym_vals:
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| 101 |
+
print(formula, ym_vals)
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| 102 |
+
return ''
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| 103 |
+
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| 104 |
+
val = np.sum(weights*vols*ym_vals) / np.sum(weights*vols)
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| 105 |
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| 106 |
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return int(round(val, 0))
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| 107 |
+
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| 108 |
+
def interpret(input):
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| 109 |
+
plt.clf()
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| 110 |
+
ex = joblib.load(filename=explainer_filename)
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| 111 |
+
shap_values = ex.shap_values(input)
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| 112 |
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shap.summary_plot(shap_values[0], input, feature_names=feature_names)
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| 113 |
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fig = plt.gcf()
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| 114 |
+
return fig, None
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| 115 |
+
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| 116 |
+
def to_categorical_num_classes_microstructure(X, num_classes_one_hot):
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| 117 |
+
return tf.keras.utils.to_categorical(X, num_classes_one_hot["Num classes microstructure"])
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| 118 |
+
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| 119 |
+
def to_categorical_num_classes_processing(X, num_classes_one_hot):
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| 120 |
+
return tf.keras.utils.to_categorical(X, num_classes_one_hot["Num classes preprocessing"])
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| 121 |
+
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| 122 |
+
def to_categorical_bcc_fcc_other(X, num_classes_one_hot):
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| 123 |
+
return tf.keras.utils.to_categorical(X, num_classes_one_hot["Num classes bcc/fcc/other"])
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| 124 |
+
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| 125 |
+
def to_categorical_single_multiphase(X, num_classes_one_hot):
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| 126 |
+
return tf.keras.utils.to_categorical(X, num_classes_one_hot["Num classes single/multiphase"])
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| 127 |
+
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| 128 |
+
def return_num_classes_one_hot(df):
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| 129 |
+
num_classes_microstructure = len(np.unique(np.asarray(df['PROPERTY: Microstructure'])))
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| 130 |
+
num_classes_processing = len(np.unique(np.asarray(df['PROPERTY: Processing method'])))
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| 131 |
+
num_classes_single_multiphase = len(np.unique(np.asarray(df['PROPERTY: Single/Multiphase'])))
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| 132 |
+
num_classes_bcc_fcc_other = len(np.unique(np.asarray(df['PROPERTY: BCC/FCC/other'])))
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| 133 |
+
return {"Num classes microstructure": num_classes_microstructure,
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| 134 |
+
"Num classes preprocessing": num_classes_processing,
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| 135 |
+
"Num classes single/multiphase": num_classes_single_multiphase,
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| 136 |
+
"Num classes bcc/fcc/other": num_classes_bcc_fcc_other}
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| 137 |
+
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| 138 |
+
# def turn_into_one_hot(X, mapping_dict):
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| 139 |
+
# one_hot = X
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| 140 |
+
# num_classes_one_hot = {'Num classes microstructure': 45, 'Num classes preprocessing': 5,
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| 141 |
+
# 'Num classes single/multiphase': 3, 'Num classes bcc/fcc/other': 3}
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| 142 |
+
# one_hot["Microstructure One Hot"] = X["PROPERTY: Microstructure"].apply(to_categorical_num_classes_microstructure, num_classes_one_hot=num_classes_one_hot)
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| 143 |
+
# one_hot["Processing Method One Hot"] = X["PROPERTY: Processing method"].apply(to_categorical_num_classes_processing,
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| 144 |
+
# num_classes_one_hot=num_classes_one_hot)
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| 145 |
+
# one_hot["BCC/FCC/other One Hot"] = X["PROPERTY: BCC/FCC/other"].apply(to_categorical_bcc_fcc_other,
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| 146 |
+
# num_classes_one_hot=num_classes_one_hot)
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| 147 |
+
# one_hot["Single/Multiphase One Hot"] = X["PROPERTY: Single/Multiphase"].apply(to_categorical_single_multiphase,
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| 148 |
+
# num_classes_one_hot=num_classes_one_hot)
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| 149 |
+
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| 150 |
+
# flatten_microstructure = one_hot["Microstructure One Hot"].apply(pd.Series)
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| 151 |
+
# flatten_processing = one_hot["Processing Method One Hot"].apply(pd.Series)
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| 152 |
+
# flatten_bcc_fcc_other = one_hot["BCC/FCC/other One Hot"].apply(pd.Series)
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| 153 |
+
# flatten_single_multiphase = one_hot["Single/Multiphase One Hot"].apply(pd.Series)
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| 154 |
+
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| 155 |
+
# one_hot.drop(columns=["Microstructure One Hot", "Processing Method One Hot", "BCC/FCC/other One Hot",
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| 156 |
+
# "Single/Multiphase One Hot"])
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| 157 |
+
|
| 158 |
+
# for column in flatten_microstructure.columns:
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| 159 |
+
# one_hot["Microstructure " + str(
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| 160 |
+
# list(mapping_dict["PROPERTY: Microstructure"].keys())[int(column)])] = flatten_microstructure[int(column)]
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| 161 |
+
# for column in flatten_processing.columns:
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| 162 |
+
# one_hot["Preprocessing method " + str(list(mapping_dict["PROPERTY: Processing method"].keys())[int(column)])] = flatten_processing[column]
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| 163 |
+
# for column in flatten_bcc_fcc_other.columns:
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| 164 |
+
# one_hot["BCC/FCC/other " + str(list(mapping_dict["PROPERTY: BCC/FCC/other"].keys())[int(column)])] = flatten_bcc_fcc_other[column]
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| 165 |
+
# for column in flatten_single_multiphase.columns:
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| 166 |
+
# one_hot["Single/Multiphase " + str(list(mapping_dict["PROPERTY: Single/Multiphase"].keys())[int(column)])] = flatten_single_multiphase[column]
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| 167 |
+
|
| 168 |
+
# one_hot = one_hot.drop(columns=["PROPERTY: Microstructure", "Microstructure One Hot", "BCC/FCC/other One Hot", "Single/Multiphase One Hot",
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| 169 |
+
# "Processing Method One Hot", "PROPERTY: Processing method", "PROPERTY: BCC/FCC/other", "PROPERTY: Single/Multiphase"])
|
| 170 |
+
# return one_hot
|
| 171 |
+
|
| 172 |
+
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| 173 |
+
def turn_into_one_hot(X, mapping_dict):
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| 174 |
+
one_hot = X
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| 175 |
+
num_classes_one_hot = {'Num classes microstructure': 30, 'Num classes preprocessing': 5,
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| 176 |
+
'Num classes single/multiphase': 3, 'Num classes bcc/fcc/other': 3}
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| 177 |
+
one_hot["Microstructure One Hot"] = X["PROPERTY: Microstructure"].apply(to_categorical_num_classes_microstructure, num_classes_one_hot=num_classes_one_hot)
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| 178 |
+
one_hot["Processing Method One Hot"] = X["PROPERTY: Processing method"].apply(to_categorical_num_classes_processing,
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| 179 |
+
num_classes_one_hot=num_classes_one_hot)
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| 180 |
+
one_hot["BCC/FCC/other One Hot"] = X["PROPERTY: BCC/FCC/other"].apply(to_categorical_bcc_fcc_other,
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| 181 |
+
num_classes_one_hot=num_classes_one_hot)
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| 182 |
+
one_hot["Single/Multiphase One Hot"] = X["PROPERTY: Single/Multiphase"].apply(to_categorical_single_multiphase,
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| 183 |
+
num_classes_one_hot=num_classes_one_hot)
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| 184 |
+
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| 185 |
+
flatten_microstructure = one_hot["Microstructure One Hot"].apply(pd.Series)
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| 186 |
+
flatten_processing = one_hot["Processing Method One Hot"].apply(pd.Series)
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| 187 |
+
flatten_bcc_fcc_other = one_hot["BCC/FCC/other One Hot"].apply(pd.Series)
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| 188 |
+
flatten_single_multiphase = one_hot["Single/Multiphase One Hot"].apply(pd.Series)
|
| 189 |
+
|
| 190 |
+
one_hot.drop(columns=["Microstructure One Hot", "Processing Method One Hot", "BCC/FCC/other One Hot",
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| 191 |
+
"Single/Multiphase One Hot"])
|
| 192 |
+
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| 193 |
+
for column in flatten_microstructure.columns:
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| 194 |
+
one_hot["Microstructure " + str(
|
| 195 |
+
list(mapping_dict["PROPERTY: Microstructure"].keys())[int(column)])] = flatten_microstructure[int(column)]
|
| 196 |
+
for column in flatten_processing.columns:
|
| 197 |
+
one_hot["Preprocessing method " + str(list(mapping_dict["PROPERTY: Processing method"].keys())[int(column)])] = flatten_processing[column]
|
| 198 |
+
for column in flatten_bcc_fcc_other.columns:
|
| 199 |
+
one_hot["BCC/FCC/other " + str(list(mapping_dict["PROPERTY: BCC/FCC/other"].keys())[int(column)])] = flatten_bcc_fcc_other[column]
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| 200 |
+
for column in flatten_single_multiphase.columns:
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| 201 |
+
one_hot["Single/Multiphase " + str(list(mapping_dict["PROPERTY: Single/Multiphase"].keys())[int(column)])] = flatten_single_multiphase[column]
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| 202 |
+
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| 203 |
+
one_hot = one_hot.drop(columns=["PROPERTY: Microstructure", "Microstructure One Hot", "BCC/FCC/other One Hot", "Single/Multiphase One Hot", "Processing Method One Hot", "PROPERTY: Processing method", "PROPERTY: BCC/FCC/other", "PROPERTY: Single/Multiphase"])
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| 204 |
+
return one_hot
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