170

How can I display this:

Decimal('40800000000.00000000000000') as '4.08E+10'?

I've tried this:

>>> '%E' % Decimal('40800000000.00000000000000')
'4.080000E+10'

But it has those extra 0's.

  • 3
    kinda doubleposting, you could have used this topic you just started: stackoverflow.com/questions/6913166/… – Samuele Mattiuzzo Aug 2 '11 at 14:20
  • 14
    nah, not at all. I wanted to separate this into the easy question (how to do it in Python) and the hard, obscure question that I doubt anyone will answer (how to do it in Django). Notice how this already has an answer. I'm now halfway to my final answer instead of 0% if I had posted them together. Besides that, separating the questions makes it easier for people to search for the answers. E.,g if Bob is searching for a decimal formatting question he might skip a SO questin with Django in the title. – Greg Aug 2 '11 at 14:26
  • yeah, it was just for my interest :P it's easier to follow one thread. basically it's similar to my answer (just a "bit" more specific). i'm hoping for a django answer too, btw. – Samuele Mattiuzzo Aug 2 '11 at 14:29

12 Answers 12

163
from decimal import Decimal

'%.2E' % Decimal('40800000000.00000000000000')

# returns '4.08E+10'

In your '40800000000.00000000000000' there are many more significant zeros that have the same meaning as any other digit. That's why you have to tell explicitly where you want to stop.

If you want to remove all trailing zeros automatically, you can try:

def format_e(n):
    a = '%E' % n
    return a.split('E')[0].rstrip('0').rstrip('.') + 'E' + a.split('E')[1]

format_e(Decimal('40800000000.00000000000000'))
# '4.08E+10'

format_e(Decimal('40000000000.00000000000000'))
# '4E+10'

format_e(Decimal('40812300000.00000000000000'))
# '4.08123E+10'
| improve this answer | |
  • 22
    As an aside, despite the format % values syntax still being used even within the Python 3 standard library, I believe it's technically deprecated in Python 3, or at least not the recommended formatting method, and the current recommended syntax, starting with Python 2.6, would be '{0:.2E}'.format(Decimal('40800000000.00000000000000')) (or '{:.2E}' in Python 2.7+). While not strictly useful for this situation, due to the additional characters for no added functionality, str.format does allow for more complex mixing/rearranging/reutilizing of format arguments. – JAB Aug 2 '11 at 14:42
  • what about python 3? – Charlie Parker Jul 6 '17 at 19:05
  • 4
    @CharlieParker Use format. It's more jazzy. – Mateen Ulhaq Feb 5 '18 at 21:26
128

Here's an example using the format() function:

>>> "{:.2E}".format(Decimal('40800000000.00000000000000'))
'4.08E+10'

Instead of format, you can also use f-strings:

>>> f"{Decimal('40800000000.00000000000000'):.2E}"
'4.08E+10'
| improve this answer | |
  • 4
    This syntax also applies to f-strings in 3.6+ f"{Decimal('40800000000.00000000000000'):.2E}" – Tritium21 Nov 6 '18 at 3:41
40

Given your number

x = Decimal('40800000000.00000000000000')

Starting from Python 3,

'{:.2e}'.format(x)

is the recommended way to do it.

e means you want scientific notation, and .2 means you want 2 digits after the dot. So you will get x.xxE±n

| improve this answer | |
  • 1
    The point of using Decimal is to get exact and arbitrary precision decimal arithmetic. It is not equivalent to using a float. – asmeurer Apr 5 '17 at 21:28
  • @asmeurer Thanks for the clarification. Changed my answer. – patapouf_ai Apr 5 '17 at 22:42
  • Is there a way to get back from this to float? – olenscki May 17 at 23:40
  • @olenscki just doing float(x) will convert x into float. – patapouf_ai May 20 at 13:45
35

No one mentioned the short form of the .format method:

Needs at least Python 3.6

f"{Decimal('40800000000.00000000000000'):.2E}"

(I believe it's the same as Cees Timmerman, just a bit shorter)

| improve this answer | |
  • 3
    Should be accepted answer. f-strings is the future of python string formatting :) – Gandalf Saxe Nov 19 '18 at 11:13
  • 1
    As an fyi to future readers like myself: if you don't care to control the number of digits and don't mind floating point errors, you can simply use {num:E}, where e.g. num = 40800000000.00000000000000 – Shayaan Feb 26 '19 at 8:16
  • 1
    For information about formatting stackoverflow.com/questions/45310254/… – Eulenfuchswiesel Aug 25 at 16:49
8

See tables from Python string formatting to select the proper format layout. In your case it's %.2E.

| improve this answer | |
6

This is a consolidated list of the "Simple" Answers & Comments.

PYTHON 3

from decimal import Decimal

x = '40800000000.00000000000000'
# Converted to Float
x = Decimal(x)

# ===================================== # `Dot Format`
print("{0:.2E}".format(x))
# ===================================== # `%` Format
print("%.2E" % x)
# ===================================== # `f` Format
print(f"{x:.2E}")
# =====================================
# ALL Return: 4.08E+10
print((f"{x:.2E}") == ("%.2E" % x) == ("{0:.2E}".format(x)))
# True
print(type(f"{x:.2E}") == type("%.2E" % x) == type("{0:.2E}".format(x)))
# True
# =====================================

OR Without IMPORT's

# NO IMPORT NEEDED FOR BASIC FLOATS
y = '40800000000.00000000000000'
y = float(y)

# ===================================== # `Dot Format`
print("{0:.2E}".format(y))
# ===================================== # `%` Format
print("%.2E" % y)
# ===================================== # `f` Format
print(f"{y:.2E}")
# =====================================
# ALL Return: 4.08E+10
print((f"{y:.2E}") == ("%.2E" % y) == ("{0:.2E}".format(y)))
# True
print(type(f"{y:.2E}") == type("%.2E" % y) == type("{0:.2E}".format(y)))
# True
# =====================================

Comparing

# =====================================
x
# Decimal('40800000000.00000000000000')
y
# 40800000000.0

type(x)
# <class 'decimal.Decimal'>
type(y)
# <class 'float'>

x == y
# True
type(x) == type(y)
# False

x
# Decimal('40800000000.00000000000000')
y
# 40800000000.0

So for Python 3, you can switch between any of the three for now.

My Fav:

print("{0:.2E}".format(y))
| improve this answer | |
4

My decimals are too big for %E so I had to improvize:

def format_decimal(x, prec=2):
    tup = x.as_tuple()
    digits = list(tup.digits[:prec + 1])
    sign = '-' if tup.sign else ''
    dec = ''.join(str(i) for i in digits[1:])
    exp = x.adjusted()
    return '{sign}{int}.{dec}e{exp}'.format(sign=sign, int=digits[0], dec=dec, exp=exp)

Here's an example usage:

>>> n = decimal.Decimal(4.3) ** 12314
>>> print format_decimal(n)
3.39e7800
>>> print '%e' % n
inf
| improve this answer | |
  • 3
    Just "{:.2e}".format(n) returns '3.39e+7800' in Python 3.3.2 (v3.3.2:d047928ae3f6, May 16 2013, 00:06:53) [MSC v.1600 64 bit (AMD64)] on win32. – Cees Timmerman Nov 8 '13 at 16:52
4

This worked best for me:

import decimal
'%.2E' % decimal.Decimal('40800000000.00000000000000')
# 4.08E+10
| improve this answer | |
3

I prefer Python 3.x way.

cal = 123.4567
print(f"result {cal:.4E}")

4 indicates how many digits are shown shown in the floating part.

cal = 123.4567
totalDigitInFloatingPArt = 4
print(f"result {cal:.{totalDigitInFloatingPArt}E} ")
| improve this answer | |
2

To convert a Decimal to scientific notation without needing to specify the precision in the format string, and without including trailing zeros, I'm currently using

def sci_str(dec):
    return ('{:.' + str(len(dec.normalize().as_tuple().digits) - 1) + 'E}').format(dec)

print( sci_str( Decimal('123.456000') ) )    # 1.23456E+2

To keep any trailing zeros, just remove the normalize().

| improve this answer | |
1

Here is the simplest one I could find.

format(40800000000.00000000000000, '.2E')
#'4.08E+10'

('E' is not case sensitive. You can also use '.2e')

| improve this answer | |
0
def formatE_decimal(x, prec=2):
    """ Examples:
    >>> formatE_decimal('0.1613965',10)
    '1.6139650000E-01'
    >>> formatE_decimal('0.1613965',5)
    '1.61397E-01'
    >>> formatE_decimal('0.9995',2)
    '1.00E+00'
    """
    xx=decimal.Decimal(x) if type(x)==type("") else x 
    tup = xx.as_tuple()
    xx=xx.quantize( decimal.Decimal("1E{0}".format(len(tup[1])+tup[2]-prec-1)), decimal.ROUND_HALF_UP )
    tup = xx.as_tuple()
    exp = xx.adjusted()
    sign = '-' if tup.sign else ''
    dec = ''.join(str(i) for i in tup[1][1:prec+1])   
    if prec>0:
        return '{sign}{int}.{dec}E{exp:+03d}'.format(sign=sign, int=tup[1][0], dec=dec, exp=exp)
    elif prec==0:
        return '{sign}{int}E{exp:+03d}'.format(sign=sign, int=tup[1][0], exp=exp)
    else:
        return None
| improve this answer | |

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