Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to draw bar chart for below data:

4  1406575305  4
4  -220936570  2
4  2127249516  2
5  -1047108451  4
5  767099153  2
5  1980251728  2
5  -2015783241  2
6  -402215764  2
7  927697904  2
7  -631487113  2
7  329714360  2
7  1905727440  2
8  1417432814  2
8  1906874956  2
8  -1959144411  2
9  859830686  2
9  -1575740934  2
9  -1492701645  2
9  -539934491  2
9  -756482330  2
10  1273377106  2
10  -540812264  2
10  318171673  2

The 1st column is the x-axis and the 3rd column is for y-axis. Multiple data exist for same x-axis value. For example,

4  1406575305  4
4  -220936570  2
4  2127249516  2

This means three bars for 4 value of x-axis and each of bar is labelled with tag(the value in middle column). The sample bar chart is like: http://matplotlib.org/examples/pylab_examples/barchart_demo.html

I am using matplotlib.pyplot and np. Thanks..

share|improve this question

1 Answer 1

up vote 0 down vote accepted

I followed the tutorial you linked to, but it's a bit tricky to shift them by a nonuniform amount:

import numpy as np
import matplotlib.pyplot as plt

x, label, y = np.genfromtxt('tmp.txt', dtype=int, unpack=True)

ux, uidx, uinv = np.unique(x, return_index=True, return_inverse=True)
max_width = np.bincount(x).max()
bar_width = 1/(max_width + 0.5)

locs = x.astype(float)
shifted = []
for i in range(max_width):
    where = np.setdiff1d(uidx + i, shifted)
    locs[where[where<len(locs)]] += i*bar_width
    shifted = np.concatenate([shifted, where])

plt.bar(locs, y, bar_width)

numbered

If you want you can label them with the second column instead of x:

plt.xticks(locs + bar_width/2, label, rotation=-90)

labeled

I'll leave doing both of them as an exercise to the reader (mainly because I have no idea how you want them to show up).

share|improve this answer
    
Great.. This is what i want it.. By the way, can we add colour for each bar? –  shijie xu Apr 11 at 23:53

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.