Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I am trying to decrypt a string with RSA. It was encrypted in C# on the iPhone and I have the private key. This seems like a silly problem, but all of the examples I have seen show generating the private key. I have the private key (it is a byte[] of hex). It using PKCS#1 padding. The part I cannot figure out how to do is create a object with the private key I already have.

Do I need to have them give me the private key in 2 parts...modulus and exponent?

Thanks in advance.

share|improve this question
We're going to need some more information -- there are a bunch of ways the key could be represented. DER? PEM? PKCS#8? – Meredith L. Patterson Aug 6 '09 at 1:06
It is using PKCS#1 padding...that should just change the Cipher instance though, right? – cici Aug 6 '09 at 1:09
Also, the private key may itself be encrypted (this is pretty common), in which case you'd need to know the encrypting algorithm and passphrase. – Meredith L. Patterson Aug 6 '09 at 1:10
So you've got a binary ASN.1 blob then? (If you're not sure, try running it through dumpasn1 or openssl dumpasn1 -inform DER first.) – Meredith L. Patterson Aug 6 '09 at 1:15
...derh, that should have been openssl asn1parse -inform DER, brainfart. – Meredith L. Patterson Aug 6 '09 at 1:25

1 Answer 1

You need to go through a RSAPrivateKeySpec. Here's an example (based on this):

        BigInteger n = new BigInteger(nBytes);
        BigInteger p = new BigInteger(pBytes);
        RSAPrivateKeySpec privateSpec = new RSAPrivateKeySpec(n, p);
        KeyFactory kf = KeyFactory.getInstance("RSA");
        Key privateKey = kf.generatePrivate(privateSpec);
share|improve this answer
I guess my problem is that I was given the private key as a byte array in hex...0x12, 0xe3, etc. I guess the solution is that I need the modulus and exponent. – cici Aug 6 '09 at 1:18
Actually, it looks like SshRsaPrivateKey from the library you linked has an appropriate constructor.… – Meredith L. Patterson Aug 6 '09 at 1:20
So, it does...I will give it a try. Thanks for the help Meredith and Laurence. – cici Aug 6 '09 at 1:22

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.