Python——微信数据分析
数据可视化:http://echarts.baidu.com/echarts2/doc/example.html
import re
from wxpy import *
import jieba
import numpy
import pandas as pd
import matplotlib.pyplot as plt
from scipy.misc import imread
from wordcloud import WordCloud, ImageColorGenerator
#初始化机器人bot
bot = Bot()
# 通过扫码的方式获取你的所有好友信息
My_friends = bot.friends()
print(type(My_friends))
def friends_count():
sex_dict = {'male':0,'female':0}
for friend in My_friends:
if friend.sex ==1:
sex_dict['male'] +=1
elif friend.sex ==2:
sex_dict['female'] +=1
print(sex_dict)
def province_count():
# 使用一个字典统计各省好友数量
province_dict = {'北京': 0, '上海': 0, '天津': 0, '重庆': 0,
'河北': 0, '山西': 0, '吉林': 0, '辽宁': 0, '黑龙江': 0,
'陕西': 0, '甘肃': 0, '青海': 0, '山东': 0, '福建': 0,
'浙江': 0, '台湾': 0, '河南': 0, '湖北': 0, '湖南': 0,
'江西': 0, '江苏': 0, '安徽': 0, '广东': 0, '海南': 0,
'四川': 0, '贵州': 0, '云南': 0,
'内蒙古': 0, '新疆': 0, '宁夏': 0, '广西': 0, '西藏': 0,
'香港': 0, '澳门': 0}
# 统计省份
for friend in My_friends:
if friend.province in province_dict.keys():
province_dict[friend.province] += 1
# 为了方便数据的呈现,生成JSON Array格式数据
data = []
for key, value in province_dict.items():
data.append({'name': key, 'value': value})
print(data)
def write_txt_file(path, txt):
'''
写入txt文本
'''
with open(path, 'a', encoding='gb18030', newline='') as f:
f.write(txt)
def read_txt_file(path):
'''
读取txt文本
'''
with open(path, 'r', encoding='gb18030', newline='') as f:
return f.read()
def show_signature(My_friends):
# 统计签名
for friend in My_friends:
# 对数据进行清洗,将标点符号等对词频统计造成影响的因素剔除
pattern = re.compile(r'[一-龥]+')
filterdata = re.findall(pattern, friend.signature)
write_txt_file('signatures.txt', ''.join(filterdata))
# 读取文件
content = read_txt_file('signatures.txt')
segment = jieba.lcut(content)
words_df = pd.DataFrame({'segment':segment})
# 读取stopwords
stopwords = pd.read_csv("stopwords.txt",index_col=False,quoting=3,sep=" ",names=['stopword'],encoding='utf-8')
words_df = words_df[~words_df.segment.isin(stopwords.stopword)]
print(words_df)
words_stat = words_df.groupby(by=['segment'])['segment'].agg({"计数":numpy.size})
words_stat = words_stat.reset_index().sort_values(by=["计数"],ascending=False)
# 设置词云属性
color_mask = imread('background.jfif')
wordcloud = WordCloud(font_path="simhei.ttf", # 设置字体可以显示中文
background_color="white", # 背景颜色
max_words=100, # 词云显示的最大词数
mask=color_mask, # 设置背景图片
max_font_size=100, # 字体最大值
random_state=42,
width=1000, height=860, margin=2,# 设置图片默认的大小,但是如果使用背景图片的话, # 那么保存的图片大小将会按照其大小保存,margin为词语边缘距离
)
# 生成词云, 可以用generate输入全部文本,也可以我们计算好词频后使用generate_from_frequencies函数
word_frequence = {x[0]:x[1]for x in words_stat.head(100).values}
print(word_frequence)
word_frequence_dict = {}
for key in word_frequence:
word_frequence_dict[key] = word_frequence[key]
wordcloud.generate_from_frequencies(word_frequence_dict)
# 从背景图片生成颜色值
image_colors = ImageColorGenerator(color_mask)
# 重新上色
wordcloud.recolor(color_func=image_colors)
# 保存图片
wordcloud.to_file('output.png')
plt.imshow(wordcloud)
plt.axis("off")
plt.show()
show_signature(My_friends)
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posted on 2018-04-19 09:58 pandaboy1123 阅读(549) 评论(0) 编辑 收藏 举报