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seaborn_study.py
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seaborn_study.py
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#-*- coding: utf-8 -*-
import numpy as np
import pandas as pd
import matplotlib as mpl
import matplotlib.pyplot as plt
import seaborn as sns
#%matplotlib inline # 为了在jupyter notebook里作图,需要用到这个命令
def displot():
tips = sns.load_dataset('tips')
print(tips.shape)
#sns.distplot(tips['total_bill'], bins=None, hist=True, kde=False, rug=True, fit=None,
#hist_kws=None, kde_kws=None, rug_kws=None,
#fit_kws=None, color=None, vertical=False,
#norm_hist=False, axlabel='total_bill', label='dis plot', ax=None)
from scipy import stats
sns.distplot(tips.total_bill, fit=stats.gamma, kde=False)
sns.plt.show()
def kdeplot():
tips = sns.load_dataset('tips')
print(tips.shape)
ax = sns.kdeplot(tips['total_bill'], data2=None, shade=False, vertical=False,
kernel="gau", bw="scott",
gridsize=100, cut=3, clip=None,
legend=True, cumulative=False,
shade_lowest=True, ax=None)
sns.plt.show()
def pairplot():
iris = sns.load_dataset('iris')
g = sns.pairplot(iris, hue='species', hue_order=None, palette=None,
vars=list(iris.columns[0:-1]),
x_vars=None, y_vars=None,
kind="reg", diag_kind="hist",
markers=None, size=1.5, aspect=1,
dropna=True, plot_kws=None,
diag_kws=None, grid_kws=None)
sns.plt.show()
def stripplot():
tips = sns.load_dataset('tips')
ax = sns.stripplot(x='sex', y='total_bill', hue='day', data=tips, order=None,
hue_order=None, jitter=True,
split=False, orient=None,
color=None, palette=None, size=5,
edgecolor="gray", linewidth=0,
ax=None)
sns.plt.show()
def swarmplot():
tips = sns.load_dataset('tips')
ax = sns.swarmplot(x='sex', y='total_bill', hue='day', data=tips)
sns.plt.show()
def boxplot():
tips = sns.load_dataset('tips')
ax = sns.boxplot(x='day', y='total_bill', hue=None, data=tips, order=None,
hue_order=None, orient=None,
color=None, palette=None,
saturation=.75, width=.8,
fliersize=5, linewidth=None,
whis=1.5, notch=False, ax=None)
sns.stripplot(x='day', y='total_bill', hue=None, data=tips, order=None,
hue_order=None, jitter=True, split=False,
orient=None, color=None, palette=None,
size=5, edgecolor="gray", linewidth=0,
ax=None)
sns.plt.show()
def jointplot():
tips = sns.load_dataset('tips')
from scipy import stats
g = (sns.jointplot(x='total_bill', y='tip',data=tips).plot_joint(sns.kdeplot))
sns.plt.show()
def violinplot():
tips = sns.load_dataset('tips')
ax = sns.violinplot(x='day', y='total_bill',
hue='smoker', data=tips, order=None,
hue_order=None, bw="scott",
cut=2, scale="area",
scale_hue=True, gridsize=100,
width=.8, inner="quartile",
split=False, orient=None,
linewidth=None, color=None,
palette='muted', saturation=.75,
ax=None)
#sns.violinplot(x=tips['total_bill'])
sns.plt.show()
def pointplot():
tips = sns.load_dataset('tips')
sns.pointplot(x='time', y='total_bill', hue='smoker', data=tips, order=None,
hue_order=None, estimator=np.mean, ci=95,
n_boot=1000, units=None, markers="o",
linestyles="-", dodge=False, join=True,
scale=1, orient=None, color=None,
palette=None, ax=None, errwidth=None,
capsize=None)
sns.plt.show()
def barplot():
tips = sns.load_dataset('tips')
sns.barplot(x='day', y='total_bill', hue='sex', data=tips, order=None,
hue_order=None, estimator=np.mean, ci=95,
n_boot=1000, units=None, orient=None,
color=None, palette=None, saturation=.75,
errcolor=".26", errwidth=None, capsize=None,
ax=None)
sns.plt.show()
def countplot():
tips = sns.load_dataset('tips')
sns.countplot(x='day', hue='sex', data=tips)
sns.plt.show()
def factorplot():
titanic = sns.load_dataset('titanic')
sns.factorplot(x='age', y='embark_town',
hue='sex', data=titanic,
row='class', col='sex',
col_wrap=None, estimator=np.mean, ci=95,
n_boot=1000, units=None, order=None,
hue_order=None, row_order=None,
col_order=None, kind="box", size=4,
aspect=1, orient=None, color=None,
palette=None, legend=True,
legend_out=True, sharex=True,
sharey=True, margin_titles=False,
facet_kws=None)
sns.plt.show()
def heatmap():
flight = sns.load_dataset('flights')
flights = flight.pivot('month','year','passengers')
sns.heatmap(flights, annot=True, fmt='d')
sns.plt.show()
def tsplot():
gammas = sns.load_dataset('gammas')
sns.tsplot(data=gammas, time='timepoint', unit='subject',
condition='ROI', value='BOLD signal',
err_style="ci_band", ci=68, interpolate=True,
color=None, estimator=np.mean, n_boot=5000,
err_palette=None, err_kws=None, legend=True,
ax=None)
sns.plt.show()
tsplot()