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I am trying to run the following script, but get the error

IndexError: list index out of range

I have read that this is because when you create a list it is initially empty so you need to assign to it some value which I have done by doing the following

q.append(0)

but I still get the error. Can someone point out what I an doing wrong? Thank you!

import numpy
from numpy import *
import matplotlib.pyplot as plt

pfa = []                        #Create lists that will hold pf,qf values
qfa = []
pf = []
qf = []
p = []
q = []
pf.append(0)
qf.append(0)
p.append(0)
q.append(0)
q[0]  = -0.5         # initial p and q values
p[0]  = 0
h = 0.001
for i in range(10):

  k1 = -h*sin(q[i])
  j1 = h*(p[i])
  k2 = -h*sin(q[i]+(1/2)*j1)
  j2 = h*p[i]*(q[i]+(1/2)*k1)             
  k3 = -h*sin(q[i]+(1/2)*j2)
  j3 = h*p[i]*(q[i]+(1/2)*k2)
  k4 = -h*sin(q[i]+(1/2)*j3)
  j4 = h*p[i]*(q[i]+(1/2)*k3)
  pf[i+1] = p[i] +(h/6.0)*(k1+2*k2+2*k3+k4)
  qf[i+1] = q[i] +(h/6.0)*(j1+2*j2+2*j3+j4)
  pfa.append(pf)                   #append lists
  qfa.append(qf)

plt.plot(qfa,pfa)
plt.show()

the trace back and error

Traceback (most recent call last):
File "C:\Documents and Settings\My Documents\Symplectic Integrators\RK4_2.py", line  23, in <module>
j1 = h*(p[i])
IndexError: list index out of range
share|improve this question

marked as duplicate by Lennart Regebro, mgibsonbr, Stony, hexblot, flavian May 21 '13 at 7:42

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
you are accessing q[i] with i being lager than 0 (which is your maximum index). What do you expected it do do? Just use 0 as a value? In that case you need to create a large enough list in the first place: qf = [0,0,0,0,0,0,0,0,0,0] or qf = [0 for _ in range(10)] (those are equivalent). You could also a defaultdict(int), maybe. –  Niklas B. Mar 3 '12 at 2:04
    
I put the p.append(0) q.append(0) pf.append(0) qf.append(0) in the loop now I don't get the error –  Surfcast23 Mar 3 '12 at 2:07
    
Yeah, but only because it fixes the error, it doesn't have to be the right way to do it. It'd be better to initialize the lists properly before the loop. –  Niklas B. Mar 3 '12 at 2:18
    
@Niklas your right I will give it a try –  Surfcast23 Mar 3 '12 at 2:43
    
@NiklasB.your way works, but I now get the same error error at this line pf[i+1] = p[i] +(h/6.0)*(k1+2*k2+2*k3+k4) IndexError: list assignment index out of range I did as you suggested for the pf list as well. –  Surfcast23 Mar 3 '12 at 2:49

1 Answer 1

up vote 2 down vote accepted

Your lists contain only one element, and you are trying to access members at positions 0 to 9. Think about it:

>>> p = []
>>> p.append(0)
>>> p
[0]
>>> for i in range(2):
...     print "position {0}, value {1}".format(p[i], i)
... 
position 0, value 0
Traceback (most recent call last):
  File "<stdin>", line 2, in <module>
IndexError: list index out of range

When you do p[i], p must have at least i + 1 size.

And take a look about at your pf[i] == p[i], it is an expression, not an assignment.

Maybe what you need is something like:

pf = []
for i in range(10):
    ...
    # at this point pf.append() assigns to position i

    pf.append(p[i] + (h / 6.0) * (k1 + 2*k2 + 2*k3 + k4))
    ...

But be careful, because p needs to contain all the values you need before the for loop.

share|improve this answer
    
@Hugo... Thank you for the feedback I put p.append(0) q.append(0) pf.append(0) qf.append(0) on the loop and it now runs error free. I did pf[i] == p[i] as an expression because when I tried it as an assignment I got an error. I also have edited that line it should have read pf[i+1] == p[i]. –  Surfcast23 Mar 3 '12 at 2:13
    
@Surfcast23: An expression and an assignment do not do the same thing. In this case == is seeing if they are the same, but = would make pf[i+1] the value of p[i] +(h/6.0)*(k1+2*k2+2*k3+k4) -- in other words, the code you have now doesn't do anything useful with those two lines. –  Ethan Furman Mar 3 '12 at 14:53
    
Changed it to an assignment –  Surfcast23 Mar 3 '12 at 23:26

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