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What is the fastes way to convert a string to float if it doesn has a standard format?

In my special case I need to read these strings and convert them to float

-7.5-4
7.5-5

that correspond to the numbers -7.5E-4 and 7.5E-5

I need the fastest because I'm loading big size files.

Thanks

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  • What is -7.5-4? It it -7.5 - 4 = -11.4? it is not a non standard format – Tushar Jan 22 '16 at 15:44
  • I don't know if it's the fastest way, but wouldn't something like float(re.sub(r'([0-9.][-+)', r'\1e', mystring)) work? – L3viathan Jan 22 '16 at 15:46
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    I don't know why you got the down votes or the votes to close. It seems like a good question to me. You could use a combination of regex to split the string and string formatting to insert an "E", then convert the string to a float float('{}E{}'.format(*re.match(r'(-?\d+\.\d+)(-\d*)', test[0]).groups())) – tdelaney Jan 22 '16 at 16:11
  • thanks guys, at leat you understood the question. I'll try your options – Pablo V. Jan 22 '16 at 19:29
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This lambda works with your test cases (also with a leading '+'):

to_num = lambda s: (1,-1)[s[0]=='-']*
                             float(s.lstrip('-+').replace('-','E-').replace('+','E+'))

The opening (1,-1)[s[0]=='-'] takes care of multiplying by -1 if there is a leading '-', then the float conversion strips leading '+' and '-' signs, and replaces embedded '+' and '-' with 'E+' and 'E-', permitting a valid conversion to float.

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