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Understanding the decision tree structure¶
The decision tree structure can be analysed to gain further insight on the relation between the features and the target to predict. In this example, we show how to retrieve:
the binary tree structure;
the depth of each node and whether or not it’s a leaf;
the nodes that were reached by a sample using the
decision_path
method;the leaf that was reached by a sample using the apply method;
the rules that were used to predict a sample;
the decision path shared by a group of samples.
import numpy as np
from matplotlib import pyplot as plt
from sklearn.model_selection import train_test_split
from sklearn.datasets import load_iris
from sklearn.tree import DecisionTreeClassifier
from sklearn import tree
Train tree classifier¶
First, we fit a DecisionTreeClassifier
using the
load_iris
dataset.
iris = load_iris()
X = iris.data
y = iris.target
X_train, X_test, y_train, y_test = train_test_split(X, y, random_state=0)
clf = DecisionTreeClassifier(max_leaf_nodes=3, random_state=0)
clf.fit(X_train, y_train)
Tree structure¶
The decision classifier has an attribute called tree_
which allows access
to low level attributes such as node_count
, the total number of nodes,
and max_depth
, the maximal depth of the tree. It also stores the
entire binary tree structure, represented as a number of parallel arrays. The
i-th element of each array holds information about the node i
. Node 0 is
the tree’s root. Some of the arrays only apply to either leaves or split
nodes. In this case the values of the nodes of the other type is arbitrary.
For example, the arrays feature
and threshold
only apply to split
nodes. The values for leaf nodes in these arrays are therefore arbitrary.
Among these arrays, we have:
children_left[i]
: id of the left child of nodei
or -1 if leaf node
children_right[i]
: id of the right child of nodei
or -1 if leaf node
feature[i]
: feature used for splitting nodei
threshold[i]
: threshold value at nodei
n_node_samples[i]
: the number of of training samples reaching nodei
impurity[i]
: the impurity at nodei
Using the arrays, we can traverse the tree structure to compute various properties. Below, we will compute the depth of each node and whether or not it is a leaf.
n_nodes = clf.tree_.node_count
children_left = clf.tree_.children_left
children_right = clf.tree_.children_right
feature = clf.tree_.feature
threshold = clf.tree_.threshold
node_depth = np.zeros(shape=n_nodes, dtype=np.int64)
is_leaves = np.zeros(shape=n_nodes, dtype=bool)
stack = [(0, 0)] # start with the root node id (0) and its depth (0)
while len(stack) > 0:
# `pop` ensures each node is only visited once
node_id, depth = stack.pop()
node_depth[node_id] = depth
# If the left and right child of a node is not the same we have a split
# node
is_split_node = children_left[node_id] != children_right[node_id]
# If a split node, append left and right children and depth to `stack`
# so we can loop through them
if is_split_node:
stack.append((children_left[node_id], depth + 1))
stack.append((children_right[node_id], depth + 1))
else:
is_leaves[node_id] = True
print("The binary tree structure has {n} nodes and has "
"the following tree structure:\n".format(n=n_nodes))
for i in range(n_nodes):
if is_leaves[i]:
print("{space}node={node} is a leaf node.".format(
space=node_depth[i] * "\t", node=i))
else:
print("{space}node={node} is a split node: "
"go to node {left} if X[:, {feature}] <= {threshold} "
"else to node {right}.".format(
space=node_depth[i] * "\t",
node=i,
left=children_left[i],
feature=feature[i],
threshold=threshold[i],
right=children_right[i]))
Out:
The binary tree structure has 5 nodes and has the following tree structure:
node=0 is a split node: go to node 1 if X[:, 3] <= 0.800000011920929 else to node 2.
node=1 is a leaf node.
node=2 is a split node: go to node 3 if X[:, 2] <= 4.950000047683716 else to node 4.
node=3 is a leaf node.
node=4 is a leaf node.
We can compare the above output to the plot of the decision tree.
tree.plot_tree(clf)
plt.show()
Decision path¶
We can also retrieve the decision path of samples of interest. The
decision_path
method outputs an indicator matrix that allows us to
retrieve the nodes the samples of interest traverse through. A non zero
element in the indicator matrix at position (i, j)
indicates that
the sample i
goes through the node j
. Or, for one sample i
, the
positions of the non zero elements in row i
of the indicator matrix
designate the ids of the nodes that sample goes through.
The leaf ids reached by samples of interest can be obtained with the
apply
method. This returns an array of the node ids of the leaves
reached by each sample of interest. Using the leaf ids and the
decision_path
we can obtain the splitting conditions that were used to
predict a sample or a group of samples. First, let’s do it for one sample.
Note that node_index
is a sparse matrix.
node_indicator = clf.decision_path(X_test)
leaf_id = clf.apply(X_test)
sample_id = 0
# obtain ids of the nodes `sample_id` goes through, i.e., row `sample_id`
node_index = node_indicator.indices[node_indicator.indptr[sample_id]:
node_indicator.indptr[sample_id + 1]]
print('Rules used to predict sample {id}:\n'.format(id=sample_id))
for node_id in node_index:
# continue to the next node if it is a leaf node
if leaf_id[sample_id] == node_id:
continue
# check if value of the split feature for sample 0 is below threshold
if (X_test[sample_id, feature[node_id]] <= threshold[node_id]):
threshold_sign = "<="
else:
threshold_sign = ">"
print("decision node {node} : (X_test[{sample}, {feature}] = {value}) "
"{inequality} {threshold})".format(
node=node_id,
sample=sample_id,
feature=feature[node_id],
value=X_test[sample_id, feature[node_id]],
inequality=threshold_sign,
threshold=threshold[node_id]))
Out:
Rules used to predict sample 0:
decision node 0 : (X_test[0, 3] = 2.4) > 0.800000011920929)
decision node 2 : (X_test[0, 2] = 5.1) > 4.950000047683716)
For a group of samples, we can determine the common nodes the samples go through.
sample_ids = [0, 1]
# boolean array indicating the nodes both samples go through
common_nodes = (node_indicator.toarray()[sample_ids].sum(axis=0) ==
len(sample_ids))
# obtain node ids using position in array
common_node_id = np.arange(n_nodes)[common_nodes]
print("\nThe following samples {samples} share the node(s) {nodes} in the "
"tree.".format(samples=sample_ids, nodes=common_node_id))
print("This is {prop}% of all nodes.".format(
prop=100 * len(common_node_id) / n_nodes))
Out:
The following samples [0, 1] share the node(s) [0 2] in the tree.
This is 40.0% of all nodes.
Total running time of the script: ( 0 minutes 0.122 seconds)