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How can I plot word frequency histogram (for author column)using pandas and matplotlib from a csv file? My csv is like: id, author, title, language Sometimes I have more than one authors in author column separated by space

file = 'c:/books.csv'
sheet = open(file)
df = read_csv(sheet)
print df['author']
share|improve this question
For opening a file you should use the width open(path) as f: ... idion. Not necessary here, pandas.read_csv() can take a path in the first place. Also, be precise in your question. The column name is 'author', not 'authors', right? – Jan-Philip Gehrcke Mar 10 '14 at 15:08
"Sometimes I have more than one authors in author column separated by space" -- you really should have made that clear from the beginning. Can you show an example? – Jan-Philip Gehrcke Mar 10 '14 at 15:21
3,bob peter,t3,en – DevEx Mar 10 '14 at 15:47
up vote 3 down vote accepted

Use collections.Counter for creating the histogram data, and follow the example given here, i.e.:

from collections import Counter
import numpy as np
import matplotlib.pyplot as plt
import pandas as pd

# Read CSV file, get author names and counts.
df = pd.read_csv("books.csv", index_col="id")
counter = Counter(df['author'])
author_names = counter.keys()
author_counts = counter.values()

# Plot histogram using matplotlib bar().
indexes = np.arange(len(author_names))
width = 0.7, author_counts, width)
plt.xticks(indexes + width * 0.5, author_names)

With this test file:

$ cat books.csv 

the code above creates the following graph:

enter image description here


You added a secondary condition, where the author column might contain multiple space-separated names. The following code handles this:

from itertools import chain

# Read CSV file, get 
df = pd.read_csv("books2.csv", index_col="id")
authors_notflat = [a.split() for a in df['author']]
counter = Counter(chain.from_iterable(authors_notflat))
print counter

For this example:

$ cat books2.csv 
1,peter harald,t1,de
2,peter harald,t2,de

it prints

$ python 
Counter({'peter': 3, 'bob': 2, 'harald': 2, 'marianne': 1})

Note that this code only works because strings are iterable.

This code is essentially free of pandas, except for the CSV-parsing part that led the DataFrame df. If you need the default plot styling of pandas, then there also is a suggestion in the mentioned thread.

share|improve this answer
Thank you very much, quite helpful – DevEx Mar 10 '14 at 15:31

You can count up the number of occurrences of each name using value_counts:

In [11]: df['author'].value_counts()
peter       3
bob         2
marianne    1
dtype: int64

Series (and DataFrames) have a hist method for drawing histograms:

In [12]: df['author'].value_counts().hist()
share|improve this answer
I am loving Pandas, but still learning all about it! Does Pandas still give you control over the x-axis labels, as shown in the previous answer? – Nicole Goebel Jan 3 '15 at 20:06
I just realized that counting values and plotting as a bar plot does the trick! df['author'].value_counts().plot(kind='bar') Now I just need to rotate the x axis labels! – Nicole Goebel Jan 3 '15 at 20:15
A really nice way. The hist() part isn't working for me though. Can anybody help me out ? – akki May 20 '15 at 11:27
@akki I suspect it's how you've set up matplotlib, does .plot() work? – Andy Hayden May 20 '15 at 16:41
I tried df['author'].value_counts().hist().plot() and then df['author'].value_counts().hist().show() but they don't seem to work for me. – akki May 21 '15 at 11:44

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