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I have an array of float that I need to send over TCP/IP, the protocol is text based so basically I cannot send directly binary.

What Im trying to do is to convert the Float values to 4 Ord

So ex:

""" Initialize the float """

a = 3.14159

""" Final result should be a string containing the 4 Ord, 1 for each byte the of the float value: """

b = "\123\23\22\245"

Anybody can help me with this?

TIA!

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Are you sure you don't mean b = b"\123\23\22\245"? –  Ignacio Vazquez-Abrams May 12 '11 at 2:55
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1 Answer 1

up vote 4 down vote accepted
>>> import struct
>>> struct.pack("!f",3.14159)
b'@I\x0f\xd0'

not sure where you arrived at "\123\23\22\245"

If you wish to convert a list of floats

>>> a=[3.14159, 2.71828]
>>> struct.pack("!{}f".format(len(a)), *a)

will give you a single string. No need for an explicit loop and join

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Ho! the \ between the number is the way the protocol is analyzing bytes value... So basically I have like 1 float of 3.14159 and I need to convert it into 4 unsigned char value delimited by a \ –  McBob May 12 '11 at 3:23
    
Alright just tried your code above: a = struct.pack("!f",3.14159) for i in range( len( a ) ): print( a[ i ] ) Got it working, now I need to concatenate that into a long string. For this "".join should be the fastest right? –  McBob May 12 '11 at 3:27
    
Another question the !f reverse the byte order, shouldn't it be just f instead? –  McBob May 12 '11 at 3:29
    
"!f" uses "network order", so if you are using big endian cpu at one end and little endian cpu at the other end it will still work. You can also use "<f" or ">f" to explicitly choose which of those orderings to use –  gnibbler May 12 '11 at 4:09
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