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I have a service to integrate with another application, and it accept just 21 hexa chars. I need to pass and recieve a string with 11 decimal chars, for sample: String s = "0101230154V";

I would like to know, how could I use the shift operations to convert it in bits and transmit, because I cannot convert my decimal string to hexa because it will result in 22 hexa chars. I have tried with the code bellow. I think it is ok the hexa conversion, but when I have tried to convert back to decimal notation it does not work, give me other values. Programmers C#, C++ and Java I think could help me.

int n = 99;  // 2^6 bits to use 99
int k = 999; // 2^9 bits to use 999

int bits = (n << 6) | (k << 9 << 6); // I'm not sure if it is ok to convert and use with hexa

var hexa = bits.ToString("X"); // I will transmit this hexa to a web service

And in a another project, I have a Windows Service to read the hexa from the web service. I can read fine but I do not know how to convert back the hexa value and take the n and k values, for sample:

string hexa = GetFromWebService(); // get from the value from the web service here, its fine

// I will recieve the hexa and get the number in bits
int received = Int32.Parse(hexa, System.Globalization.NumberStyles.HexNumber);

// here I need to discover the N and K values... how?

How to discover the n and k values?

Final solution

long v = 123456789456;
string h = v.ToString("X");

// trasmit h value

var data = long.Parse(hexaValueFromService, System.Globalization.NumberStyles.HexNumber);

thank you

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Your question is confusing me a bit. Your example String s = "0101230154V"; does contain 11 chars, but the last char is not decimal. Is this a typo? –  Nolonar Aug 8 '13 at 12:00
1  
I think he meant 11 as in decimal notion. –  Levente Kurusa Aug 8 '13 at 12:01
2  
What characters do you allow in the string? Obviously, if you can have 256 options (or more), you cannot encode this in a hexadecimal string of less than 22 characters. –  Vincent van der Weele Aug 8 '13 at 12:06
    
I update my question guys, I think it is simpler to understand. Tks –  Felipe Oriani Aug 8 '13 at 14:21

3 Answers 3

up vote 1 down vote accepted

I don't know if there's a typo when you're saying "11 decimal characters" or not because the last character clearly is not a decimal digit.

If it's a real typo. 11 decimal characters have a maximum value of 99,999,999,999 which fits into a 64 bit int. So you can convert the string to int64 (which takes only 16 hexa chars), padding 0 bytes if necessary and then pass to the other service.

In case that it's not a typo. Then you can still convert to first 10 decimal digits to int64 and then pass both the int64 and the remaining char, only 18 hexa chars is needed

Another solution if you don't want to convert to binary, densely packed decimal (DPD) is a good choice. It packs 3 decimal digits into 10 bits. So 10 digits need 34 bit which takes up 9 hexa digits. This works directly on decimal and don't need to convert into binary so it's not only takes up less space but also very quick in conversion back and forth. If you don't need to do arithmetics on the value, this maybe the best choice

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Could you give-me an exemple? I'm really noob with this type of approuch hehe –  Felipe Oriani Aug 8 '13 at 13:49
    
as for your string "0101230154V", 0101230154 = 0x000000000608A64A, V = 0x56 ASCII. So you may transfer the string as 0x000000000608A64A560000 –  Lưu Vĩnh Phúc Aug 8 '13 at 13:54
    
Don't you have a code sample how to implement the DPD? –  Felipe Oriani Aug 8 '13 at 14:32
    
I've solved using int64 as you said. Thank you friend. –  Felipe Oriani Aug 8 '13 at 17:46

An ASCII character takes one byte, or 8 bits. A Unicode character takes two bytes, or 16 bits. Therefore that String of 11 chars will either take 11 bytes or 22 bytes depending on CharacterSet. Try setting the CharacterSet to ASCII, and it will work.
In normal typing, two hexadecimal characters store ONE byte. Therefore, your service has a maximum of 90bits input (10.5 byte)

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1  
"A Unicode character takes two bytes" that's not exactly correct. The Unicode encoding UTF-8 encodes a character in 1,2,3 or 4 bytes, UTF-16 in 2 or 4 bytes and UTF-32 encodes every character in 4 bytes. –  jlordo Aug 8 '13 at 12:26
    
I think java uses 16-bit Unicode character set, but correct me if I am wrong –  Levente Kurusa Aug 8 '13 at 12:28
1  
Yes, internally Java uses UTF-16, so each character is encoded in 2 or in 4 Bytes (low and high surrogate). –  jlordo Aug 8 '13 at 12:30
    
I update my question guys, I think it is simpler to understand. Tks –  Felipe Oriani Aug 8 '13 at 13:22
    
Not really, I am even more lost to be honest. –  Levente Kurusa Aug 8 '13 at 13:30

can you ensure that the character will not appear in the first 2 digits? if so, then you can put the integer from the first 2 digits in k.

if you left shift for suppressing the leading '0's while you pass, once you get it you have right shift again to get the original number rather than parsing the Integer. for example: if you do this :

(n is 6 bits and k is 9 bits) so, you want combine them into bits (15 bits, 16th bit is sign bit so will not use that)

int bits =   (k << 6) | n

when you receive, you have to do this to retrieve the values:

n = (bits & 0x3F)     // gets rid of k in the first part 0x3F means '0000000000111111'
k = (bits >> 6)       // gets rid of n at the bottom part
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Hi friend, thank you for your answer. I'm testing it and the k is comming fine, but the n not. Why k is 10 bits instead os 9? –  Felipe Oriani Aug 8 '13 at 14:31
    
with 9 bits, you can go upto 512. you need 10 bits to go upto 999. changed my answer anyway because we should not use the 16th bit which is sign bit; also need 7 bits to go upto 99. try now –  Zia Aug 8 '13 at 14:32
    
Strange, n is 35 and k is 999 (ok). I change the initial values of n to 12 and k to 452.. and both comes fine, when n is 99 (the max possible value) it comes 35.. –  Felipe Oriani Aug 8 '13 at 14:37
    
as I said, you can go upto 63 and 511 with 6 and 9 bits respectively...for 99 and 999 you need 7 and 10 bits respectively. can you use 99 and 99 in n and k ? then you need 7 + 7 = 14 bits and easily be done in int type. in that case int bits = (k << 7) | n; n=(bits & 0x7F) ; k= bits >> 7 –  Zia Aug 8 '13 at 14:41
    
The max possible value for n is 99 and k is 999. That's the reason I'm trying out with theses values. I have tested this: int bits = (k << 7) | n; and to convert: n= (bits & 255); k = bits >> 7. I get all values fine but I do not know why 255, it is because 255 is the 2^7-1 (-1 because sign)? –  Felipe Oriani Aug 8 '13 at 14:49

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