1

I have a data set which I will read from the text file:

0.0000000e+000 -1.4275799e-003  
2.0000000e-002 -1.1012760e-002  
4.0000000e-002 -1.0298970e-002  
6.0000000e-002 -8.9733599e-003  
8.0000000e-002 -9.6871497e-003  
1.0000000e-001 -1.2236400e-002  
1.2000000e-001 -1.4479739e-002  
1.4000000e-001 -1.3052160e-002  
1.6000000e-001 -1.1216700e-002  
1.8000000e-001 -8.6674497e-003  
2.0000000e-001 -8.6674497e-003  
2.2000000e-001 -1.3358070e-002  
2.4000000e-001 -1.7946720e-002  
2.6000000e-001 -1.9782179e-002

I want to convert after reading the text file into a format as:

(0.0000000e+000, -1.4275799e-003), (2.0000000e-002, -1.1012760e-002), (4.0000000e-002, -1.0298970e-002), ..., (2.6000000e-001, -1.9782179e-002)

which should be arranged in a single row.

Can anyone kindly help me regarding this? I have the code as follows:

with open('1.txt') as f:    
    for line in f:    
        n0 = map(float, line.split())    
        n1 = tuple(n0)    
        n2 = zip(n1)    
        print n0  

I am not getting any error, however, the problem is the zip command is not giving me the desired format in row.

2 Answers 2

0

The code below should get the job done:

def load_data(fn):
    with open(fn) as f:    
        lines = f.readlines()
    return [tuple([float(item) for item in line.split()]) for line in lines]

def display_data(lst):
    return lst.__repr__()[1:-1]

ppp = load_data('1.txt')

print(display_data(ppp))
#(0.0, -0.0014275799), (0.02, -0.01101276), (0.04, -0.01029897), (0.06, -0.0089733599), (0.08, -0.0096871497), (0.1, -0.0122364), (0.12, -0.014479739), (0.14, -0.01305216), (0.16, -0.0112167), (0.18, -0.0086674497), (0.2, -0.0086674497), (0.22, -0.01335807), (0.24, -0.01794672), (0.26, -0.019782179)

print(ppp)
#[(0.0, -0.0014275799),
# (0.02, -0.01101276),
# (0.04, -0.01029897),
# (0.06, -0.0089733599),
# (0.08, -0.0096871497),
# (0.1, -0.0122364),
# (0.12, -0.014479739),
# (0.14, -0.01305216),
# (0.16, -0.0112167),
# (0.18, -0.0086674497),
# (0.2, -0.0086674497),
# (0.22, -0.01335807),
# (0.24, -0.01794672),
# (0.26, -0.019782179)]
8
  • Yes I got the result earlier also. However, my question was to arrange the result in the format shown above in which I am stuck. Python is giving me this: (0.0, -0.0014275799) (0.02, -0.01101276) (0.04, -0.01029897) (0.06, -0.0089733599) (0.08, -0.0096871497) (0.1, -0.0122364) (0.12, -0.014479739) (0.14, -0.01305216) (0.16, -0.0112167) (0.18, -0.0086674497) (0.2, -0.0086674497) (0.22, -0.01335807) (0.24, -0.01794672) (0.26, -0.019782179) The set of values are in columns and comma separator is missing after each set.
    – user7667107
    Commented Mar 13, 2017 at 10:57
  • Thank you Tonechas, still I am getting the same results. The output should be in a single row (0.0000000e+000, -1.4275799e-003), (2.0000000e-002, -1.1012760e-002), ... There should be a comma after each bracket ends, except the last one.
    – user7667107
    Commented Mar 13, 2017 at 11:06
  • Thank you very much Tonechas. This code will help me in solving the rest of my problem.
    – user7667107
    Commented Mar 13, 2017 at 11:13
  • Dear Tonechas, could you please help me in creating an output variable which gives the desired result, as I don't want to print it always?
    – user7667107
    Commented Mar 13, 2017 at 17:24
  • What type should such a variable be? A string?
    – Tonechas
    Commented Mar 13, 2017 at 17:26
0
with open("1.txt" , "rb") as txtfile:
        outputstr = ""
        ioreader = txtfile.read()
        for line in ioreader.split("\n"):
            outputstr += str(tuple(line.split("\t")))
            outputstr += ","
        print outputstr
7
  • Thank you Kanagaraj dhanapal for the effort. However, the desired result is not achieved.
    – user7667107
    Commented Mar 13, 2017 at 11:00
  • do you want single line of out put with comma separated ? Commented Mar 13, 2017 at 11:02
  • Yes, the output should be (0.0000000e+000, -1.4275799e-003), (2.0000000e-002, -1.1012760e-002), ... There should be a comma after each bracket ends.
    – user7667107
    Commented Mar 13, 2017 at 11:04
  • You are almost there. However, you need to remove the string before getting the desired output.
    – user7667107
    Commented Mar 13, 2017 at 11:14
  • 3
    While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. Commented Mar 13, 2017 at 12:53

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