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I have a list of tuple of float numbers, something like

[ (1.00000001, 349183.1430, 2148.12222222222222), ( , , ), ..., ( , ,) ]

How can I convert all numbers to strings, with same format (scientific notation with 8 decimal point precision), while maintaining the same structure (list of tuples, or list of lists)?

I think I can do it with nested for loops, but is there a simpler way such as using map somehow?

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2  
What do you mean by shape? Do you have a list of tuples or something? It would help if you showed an example of data and desired behavior. –  Antimony Apr 21 '13 at 4:09
    
If it's "shaped" (m, n), it's a tuple. –  timss Apr 21 '13 at 4:10

5 Answers 5

up vote 7 down vote accepted

Assuming you have some list-of-lists or list-of-tuples:

lst = [ [ 1,2,3 ], [ 1e6, 2e6, 3e6], [1e-6, 2e-6, 3e-6] ]

You can create a parallel list-of-lists using list comprehension:

str_list = [['{0:.8e}'.format(flt) for flt in sublist] for sublist in lst]

Or a list-of-tuples:

str_list = [tuple('{0:.8e}'.format(flt) for flt in sublist) for sublist in lst]

Then, if you'd like to display this set of numbers:

str_display = '\n'.join(' '.join(lst) for lst in strlist)
print str_display
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1  
And if the OP wants to preserve a list of tuples, it's the same thing, just with tuple('{..}'.. for flt in sublist) instead. –  DSM Apr 21 '13 at 4:15
    
Note that the inner list in the join is not needed. –  Burhan Khalid Apr 21 '13 at 7:31
    
@BurhanKhalid, it seems needed to me. What would you put in place of the join expression? –  Robᵩ Apr 22 '13 at 13:12
    
@Rob: print '\n'.join(' '.join(lst) for lst in strlist) –  Burhan Khalid Apr 22 '13 at 14:43
    
@BurhanKhalid - Ah, I see. I misunderstood your original comment. Agreed, the list is not needed. I have edited my answer in response to your comment. –  Robᵩ Apr 22 '13 at 14:48

One way:

a = [ (2.3, 2.3123), (231.21, 332.12) ]
p = list()
for b in a:
    k = list()
    for c in b:
        k.append("{0:.2f}".format(c))
    p.append(tuple(k))
print p     

remove inner loop:

p = list()
for b in a:
    p.append(tuple("{0:.2f}".format(c) for c in b))

remove outer loop also:

p = [ tuple("{0:.2f}".format(c) for c in b) for b in a ]

to print p:

"\n".join([ "\t".join(b) for b in p ])
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Using numpy you could do it this way:

>>> a=[[11.2345, 2.0, 3.0], [4.0, 5.0, 61234123412341234]]
>>> numpy.char.mod('%14.8E', a)

array([['1.12345000E+01', '2.00000000E+00', '3.00000000E+00'],
      ['4.00000000E+00', '5.00000000E+00', '6.12341234E+16']],
      dtype='|S14')

The datatype in the numpy array of strings is given as S14 which according to the documentation is a string (S) of 14 byte length.

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I see. But that doesn't give me the string in scientific notation, does it? –  LWZ Apr 21 '13 at 5:03
    
sorry corrected it and this is probably the most compact (and fastest) of the lot. –  DrSAR Apr 21 '13 at 7:11

If you really want to use map, you can do something like this:

map(lambda x: tuple(map(lambda y: '%08f' % y, x)), list)

But IMO, the list comprehension is easier to read.

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A handy function:

def stringify(listAll, sFormat):
    listReturn = []
    for xItem in listAll:
        if type(xItem) == float:
            xNewItem = sFormat.format(xItem)
            print(type(xNewItem))
            listReturn.append(xNewItem)
        else:
            xNewItem = str(xItem)
            print(type(xNewItem))
            listReturn.append(xNewItem)
    return listReturn

listAll = ['a', 3.1, 'b', 2.6, 4, 5, 'c']
listNew = stringify(listAll, '{0:.3}')
print(listNew)

Take out the prints before using, etc. I made it a bit verbose so you can see how it works, then tighten the code yourself.

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