I want to print a numpy array without truncation. I have seen other solutions but those don't seem to work.

Here is the code snippet:

total_list = np.array(total_list)

And this is what the output looks like:

22        A
23        G
24        C
25        T
26        A
27        A
28        A
29        G
232272    G
232273    T
232274    G
232275    C
232276    T
232277    C
232278    G
232279    T

This is the entire code. I might be making a mistake in type casting.

import csv
import pandas as pd
import numpy as np

seqs = pd.read_csv('BAP_GBS_BTXv2_imp801.hmp.csv')
plts = pd.read_csv('BAP16_PlotPlan.csv')

required_rows = np.array([7,11,14,19,22,31,35,47,50,55,58,63,66,72,74,79,82,87,90,93,99])
total_list = []

for i in range(len(required_rows)):
    curr_row = required_rows[i];
    for j in range(len(plts.RW)):
        if(curr_row == plts.RW[j]):
            curr_plt = plts.PI[j]
            curr_range = plts.RA1[j]
            curr_plt = curr_plt.replace("_", "").lower()
            if curr_plt in seqs.columns:
                new_item = [curr_row,curr_range,seqs[curr_plt]]

total_list = np.array(total_list)
np.savetxt("foo.csv", total_list[:,2], delimiter=',',fmt='%s')

  • 1
    It works for me, maybe your total_list is not a numpy array?
    – Psidom
    Jun 1, 2017 at 15:33
  • 1
    It is not how numpy arrays look. Are you sure it is not a pandas Series?
    – ayhan
    Jun 1, 2017 at 15:34
  • are you trying to print to a file?
    – Aaron
    Jun 1, 2017 at 15:41
  • That was the actual intent. But had the same problem. So I m trying to print it on the terminal first.
    – Harjatin
    Jun 1, 2017 at 15:43
  • does this file need to be human readable? or is it for the purpose of storing the data?
    – Aaron
    Jun 1, 2017 at 15:51

5 Answers 5


use the following snippet to get no ellipsis.

import numpy
import sys


If you have a pandas.DataFrame use the following snippet to print your array:

def print_full(x):
    pd.set_option('display.max_rows', len(x))

Or you can use the pandas.DataFrame.to_string() method to get the desired result.


An earlier version of this post suggested the option below


Technically, this might work, however, the numpy documentation specifies int and None as allowed types. Reference: https://docs.scipy.org/doc/numpy/reference/generated/numpy.set_printoptions.html.

  • python and numpy version? Jun 1, 2017 at 15:42
  • Python 3.5.2, numpy 1.11.1
    – Harjatin
    Jun 1, 2017 at 16:01
  • @Harjatin maybe the other print is not formatted properly (the first one in the loop) Jun 1, 2017 at 16:05
  • I commented all the other print statements. The output is still truncated.
    – Harjatin
    Jun 1, 2017 at 16:10
  • 1
    At least from 1.16.5, this doesn't work: ValueError: threshold must be numeric and non-NAN, try sys.maxsize for untruncated representation, so use sys.maxsize. Dec 13, 2019 at 20:22

You can get around the weird Numpy repr/print behavior by changing it to a list:

print list(total_list)

should print out your list of 2-element np arrays.

  • This still gives the same output
    – Harjatin
    Jun 1, 2017 at 15:42
  • 2
    Weird - does it happen if you use total_list.tolist() as well?
    – a p
    Jun 1, 2017 at 15:45
  • 1
    you probably run a different code what you edit :)) I can confirm both of the answers work fine. add a print("hello") or whatever Jun 1, 2017 at 15:45
  • What is total_list to start with?
    – a p
    Jun 1, 2017 at 15:52
  • numpy's printing is more useful though for most cases, because it is more readable ― no commas between the numbers..
    – matanox
    Sep 2, 2018 at 17:40

You are not printing numpy arrays.

Add the following line after the imports:

pd.set_option('display.max_rows', 100000)
  • Thank you. This worked. I am little confused through, shouldn't total_list = np.array(total_list) covert DataFrame to numpy array ?
    – Harjatin
    Jun 1, 2017 at 16:49
#for a 2d array
def print_full(x):
    dim = x.shape
    pd.set_option('display.max_rows', dim[0])#dim[0] = len(x)
    pd.set_option('display.max_columns', dim[1])

It appears that as of Python 3, the threshold can no longer be unlimited.

Therefore, the recommended option is:

import numpy
import sys

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