forked from cory/tildefriends
Cory McWilliams
09ddfffa6b
git-svn-id: https://www.unprompted.com/svn/projects/tildefriends/trunk@4088 ed5197a5-7fde-0310-b194-c3ffbd925b24
435 lines
16 KiB
Groff
435 lines
16 KiB
Groff
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.\" ========================================================================
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.\"
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.IX Title "PKCS8 1"
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.TH PKCS8 1 "2020-04-21" "1.1.1g" "OpenSSL"
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.\" For nroff, turn off justification. Always turn off hyphenation; it makes
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.\" way too many mistakes in technical documents.
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.if n .ad l
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.nh
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.SH "NAME"
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openssl\-pkcs8, pkcs8 \- PKCS#8 format private key conversion tool
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.SH "SYNOPSIS"
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.IX Header "SYNOPSIS"
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\&\fBopenssl\fR \fBpkcs8\fR
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[\fB\-help\fR]
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[\fB\-topk8\fR]
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[\fB\-inform PEM|DER\fR]
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[\fB\-outform PEM|DER\fR]
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[\fB\-in filename\fR]
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[\fB\-passin arg\fR]
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[\fB\-out filename\fR]
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[\fB\-passout arg\fR]
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[\fB\-iter count\fR]
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[\fB\-noiter\fR]
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[\fB\-rand file...\fR]
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[\fB\-writerand file\fR]
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[\fB\-nocrypt\fR]
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[\fB\-traditional\fR]
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[\fB\-v2 alg\fR]
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[\fB\-v2prf alg\fR]
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[\fB\-v1 alg\fR]
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[\fB\-engine id\fR]
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[\fB\-scrypt\fR]
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[\fB\-scrypt_N N\fR]
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[\fB\-scrypt_r r\fR]
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[\fB\-scrypt_p p\fR]
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.SH "DESCRIPTION"
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.IX Header "DESCRIPTION"
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The \fBpkcs8\fR command processes private keys in PKCS#8 format. It can handle
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both unencrypted PKCS#8 PrivateKeyInfo format and EncryptedPrivateKeyInfo
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format with a variety of PKCS#5 (v1.5 and v2.0) and PKCS#12 algorithms.
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.SH "OPTIONS"
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.IX Header "OPTIONS"
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.IP "\fB\-help\fR" 4
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.IX Item "-help"
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Print out a usage message.
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.IP "\fB\-topk8\fR" 4
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.IX Item "-topk8"
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Normally a PKCS#8 private key is expected on input and a private key will be
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written to the output file. With the \fB\-topk8\fR option the situation is
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reversed: it reads a private key and writes a PKCS#8 format key.
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.IP "\fB\-inform DER|PEM\fR" 4
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.IX Item "-inform DER|PEM"
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This specifies the input format: see \*(L"\s-1KEY FORMATS\*(R"\s0 for more details. The default
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format is \s-1PEM.\s0
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.IP "\fB\-outform DER|PEM\fR" 4
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.IX Item "-outform DER|PEM"
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This specifies the output format: see \*(L"\s-1KEY FORMATS\*(R"\s0 for more details. The default
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format is \s-1PEM.\s0
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.IP "\fB\-traditional\fR" 4
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.IX Item "-traditional"
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When this option is present and \fB\-topk8\fR is not a traditional format private
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key is written.
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.IP "\fB\-in filename\fR" 4
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.IX Item "-in filename"
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This specifies the input filename to read a key from or standard input if this
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option is not specified. If the key is encrypted a pass phrase will be
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prompted for.
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.IP "\fB\-passin arg\fR" 4
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.IX Item "-passin arg"
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The input file password source. For more information about the format of \fBarg\fR
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see the \fB\s-1PASS PHRASE ARGUMENTS\s0\fR section in \fBopenssl\fR\|(1).
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.IP "\fB\-out filename\fR" 4
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.IX Item "-out filename"
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This specifies the output filename to write a key to or standard output by
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default. If any encryption options are set then a pass phrase will be
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prompted for. The output filename should \fBnot\fR be the same as the input
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filename.
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.IP "\fB\-passout arg\fR" 4
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.IX Item "-passout arg"
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The output file password source. For more information about the format of \fBarg\fR
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see the \fB\s-1PASS PHRASE ARGUMENTS\s0\fR section in \fBopenssl\fR\|(1).
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.IP "\fB\-iter count\fR" 4
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.IX Item "-iter count"
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When creating new PKCS#8 containers, use a given number of iterations on
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the password in deriving the encryption key for the PKCS#8 output.
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High values increase the time required to brute-force a PKCS#8 container.
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.IP "\fB\-nocrypt\fR" 4
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.IX Item "-nocrypt"
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PKCS#8 keys generated or input are normally PKCS#8 EncryptedPrivateKeyInfo
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structures using an appropriate password based encryption algorithm. With
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this option an unencrypted PrivateKeyInfo structure is expected or output.
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This option does not encrypt private keys at all and should only be used
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when absolutely necessary. Certain software such as some versions of Java
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code signing software used unencrypted private keys.
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.IP "\fB\-rand file...\fR" 4
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.IX Item "-rand file..."
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A file or files containing random data used to seed the random number
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generator.
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Multiple files can be specified separated by an OS-dependent character.
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The separator is \fB;\fR for MS-Windows, \fB,\fR for OpenVMS, and \fB:\fR for
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all others.
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.IP "[\fB\-writerand file\fR]" 4
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.IX Item "[-writerand file]"
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Writes random data to the specified \fIfile\fR upon exit.
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This can be used with a subsequent \fB\-rand\fR flag.
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.IP "\fB\-v2 alg\fR" 4
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.IX Item "-v2 alg"
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This option sets the PKCS#5 v2.0 algorithm.
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.Sp
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The \fBalg\fR argument is the encryption algorithm to use, valid values include
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\&\fBaes128\fR, \fBaes256\fR and \fBdes3\fR. If this option isn't specified then \fBaes256\fR
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is used.
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.IP "\fB\-v2prf alg\fR" 4
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.IX Item "-v2prf alg"
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This option sets the \s-1PRF\s0 algorithm to use with PKCS#5 v2.0. A typical value
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value would be \fBhmacWithSHA256\fR. If this option isn't set then the default
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for the cipher is used or \fBhmacWithSHA256\fR if there is no default.
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.Sp
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Some implementations may not support custom \s-1PRF\s0 algorithms and may require
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the \fBhmacWithSHA1\fR option to work.
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.IP "\fB\-v1 alg\fR" 4
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.IX Item "-v1 alg"
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This option indicates a PKCS#5 v1.5 or PKCS#12 algorithm should be used. Some
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older implementations may not support PKCS#5 v2.0 and may require this option.
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If not specified PKCS#5 v2.0 form is used.
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.IP "\fB\-engine id\fR" 4
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.IX Item "-engine id"
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Specifying an engine (by its unique \fBid\fR string) will cause \fBpkcs8\fR
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to attempt to obtain a functional reference to the specified engine,
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thus initialising it if needed. The engine will then be set as the default
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for all available algorithms.
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.IP "\fB\-scrypt\fR" 4
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.IX Item "-scrypt"
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Uses the \fBscrypt\fR algorithm for private key encryption using default
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parameters: currently N=16384, r=8 and p=1 and \s-1AES\s0 in \s-1CBC\s0 mode with a 256 bit
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key. These parameters can be modified using the \fB\-scrypt_N\fR, \fB\-scrypt_r\fR,
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\&\fB\-scrypt_p\fR and \fB\-v2\fR options.
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.IP "\fB\-scrypt_N N\fR \fB\-scrypt_r r\fR \fB\-scrypt_p p\fR" 4
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.IX Item "-scrypt_N N -scrypt_r r -scrypt_p p"
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Sets the scrypt \fBN\fR, \fBr\fR or \fBp\fR parameters.
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.SH "KEY FORMATS"
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.IX Header "KEY FORMATS"
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Various different formats are used by the pkcs8 utility. These are detailed
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below.
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.PP
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If a key is being converted from PKCS#8 form (i.e. the \fB\-topk8\fR option is
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not used) then the input file must be in PKCS#8 format. An encrypted
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key is expected unless \fB\-nocrypt\fR is included.
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.PP
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If \fB\-topk8\fR is not used and \fB\s-1PEM\s0\fR mode is set the output file will be an
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unencrypted private key in PKCS#8 format. If the \fB\-traditional\fR option is
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used then a traditional format private key is written instead.
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.PP
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If \fB\-topk8\fR is not used and \fB\s-1DER\s0\fR mode is set the output file will be an
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unencrypted private key in traditional \s-1DER\s0 format.
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.PP
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If \fB\-topk8\fR is used then any supported private key can be used for the input
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file in a format specified by \fB\-inform\fR. The output file will be encrypted
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PKCS#8 format using the specified encryption parameters unless \fB\-nocrypt\fR
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is included.
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.SH "NOTES"
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.IX Header "NOTES"
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By default, when converting a key to PKCS#8 format, PKCS#5 v2.0 using 256 bit
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\&\s-1AES\s0 with \s-1HMAC\s0 and \s-1SHA256\s0 is used.
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.PP
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Some older implementations do not support PKCS#5 v2.0 format and require
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the older PKCS#5 v1.5 form instead, possibly also requiring insecure weak
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encryption algorithms such as 56 bit \s-1DES.\s0
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.PP
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The encrypted form of a \s-1PEM\s0 encode PKCS#8 files uses the following
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headers and footers:
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.PP
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.Vb 2
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\& \-\-\-\-\-BEGIN ENCRYPTED PRIVATE KEY\-\-\-\-\-
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\& \-\-\-\-\-END ENCRYPTED PRIVATE KEY\-\-\-\-\-
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.Ve
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.PP
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The unencrypted form uses:
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.PP
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.Vb 2
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\& \-\-\-\-\-BEGIN PRIVATE KEY\-\-\-\-\-
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\& \-\-\-\-\-END PRIVATE KEY\-\-\-\-\-
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.Ve
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.PP
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Private keys encrypted using PKCS#5 v2.0 algorithms and high iteration
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counts are more secure that those encrypted using the traditional
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SSLeay compatible formats. So if additional security is considered
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important the keys should be converted.
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.PP
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It is possible to write out \s-1DER\s0 encoded encrypted private keys in
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PKCS#8 format because the encryption details are included at an \s-1ASN1\s0
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level whereas the traditional format includes them at a \s-1PEM\s0 level.
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.SH "PKCS#5 v1.5 and PKCS#12 algorithms."
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.IX Header "PKCS#5 v1.5 and PKCS#12 algorithms."
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Various algorithms can be used with the \fB\-v1\fR command line option,
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including PKCS#5 v1.5 and PKCS#12. These are described in more detail
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below.
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.IP "\fB\s-1PBE\-MD2\-DES PBE\-MD5\-DES\s0\fR" 4
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.IX Item "PBE-MD2-DES PBE-MD5-DES"
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These algorithms were included in the original PKCS#5 v1.5 specification.
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They only offer 56 bits of protection since they both use \s-1DES.\s0
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.IP "\fB\s-1PBE\-SHA1\-RC2\-64\s0\fR, \fB\s-1PBE\-MD2\-RC2\-64\s0\fR, \fB\s-1PBE\-MD5\-RC2\-64\s0\fR, \fB\s-1PBE\-SHA1\-DES\s0\fR" 4
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.IX Item "PBE-SHA1-RC2-64, PBE-MD2-RC2-64, PBE-MD5-RC2-64, PBE-SHA1-DES"
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These algorithms are not mentioned in the original PKCS#5 v1.5 specification
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but they use the same key derivation algorithm and are supported by some
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software. They are mentioned in PKCS#5 v2.0. They use either 64 bit \s-1RC2\s0 or
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56 bit \s-1DES.\s0
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.IP "\fB\s-1PBE\-SHA1\-RC4\-128\s0\fR, \fB\s-1PBE\-SHA1\-RC4\-40\s0\fR, \fB\s-1PBE\-SHA1\-3DES\s0\fR, \fB\s-1PBE\-SHA1\-2DES\s0\fR, \fB\s-1PBE\-SHA1\-RC2\-128\s0\fR, \fB\s-1PBE\-SHA1\-RC2\-40\s0\fR" 4
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.IX Item "PBE-SHA1-RC4-128, PBE-SHA1-RC4-40, PBE-SHA1-3DES, PBE-SHA1-2DES, PBE-SHA1-RC2-128, PBE-SHA1-RC2-40"
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These algorithms use the PKCS#12 password based encryption algorithm and
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allow strong encryption algorithms like triple \s-1DES\s0 or 128 bit \s-1RC2\s0 to be used.
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.SH "EXAMPLES"
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.IX Header "EXAMPLES"
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Convert a private key to PKCS#8 format using default parameters (\s-1AES\s0 with
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256 bit key and \fBhmacWithSHA256\fR):
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.PP
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.Vb 1
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\& openssl pkcs8 \-in key.pem \-topk8 \-out enckey.pem
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.Ve
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.PP
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Convert a private key to PKCS#8 unencrypted format:
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.PP
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.Vb 1
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\& openssl pkcs8 \-in key.pem \-topk8 \-nocrypt \-out enckey.pem
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.Ve
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.PP
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Convert a private key to PKCS#5 v2.0 format using triple \s-1DES:\s0
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.PP
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.Vb 1
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\& openssl pkcs8 \-in key.pem \-topk8 \-v2 des3 \-out enckey.pem
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.Ve
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.PP
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Convert a private key to PKCS#5 v2.0 format using \s-1AES\s0 with 256 bits in \s-1CBC\s0
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mode and \fBhmacWithSHA512\fR \s-1PRF:\s0
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.PP
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.Vb 1
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\& openssl pkcs8 \-in key.pem \-topk8 \-v2 aes\-256\-cbc \-v2prf hmacWithSHA512 \-out enckey.pem
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.Ve
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.PP
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Convert a private key to PKCS#8 using a PKCS#5 1.5 compatible algorithm
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(\s-1DES\s0):
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|
.PP
|
|
.Vb 1
|
|
\& openssl pkcs8 \-in key.pem \-topk8 \-v1 PBE\-MD5\-DES \-out enckey.pem
|
|
.Ve
|
|
.PP
|
|
Convert a private key to PKCS#8 using a PKCS#12 compatible algorithm
|
|
(3DES):
|
|
.PP
|
|
.Vb 1
|
|
\& openssl pkcs8 \-in key.pem \-topk8 \-out enckey.pem \-v1 PBE\-SHA1\-3DES
|
|
.Ve
|
|
.PP
|
|
Read a \s-1DER\s0 unencrypted PKCS#8 format private key:
|
|
.PP
|
|
.Vb 1
|
|
\& openssl pkcs8 \-inform DER \-nocrypt \-in key.der \-out key.pem
|
|
.Ve
|
|
.PP
|
|
Convert a private key from any PKCS#8 encrypted format to traditional format:
|
|
.PP
|
|
.Vb 1
|
|
\& openssl pkcs8 \-in pk8.pem \-traditional \-out key.pem
|
|
.Ve
|
|
.PP
|
|
Convert a private key to PKCS#8 format, encrypting with \s-1AES\-256\s0 and with
|
|
one million iterations of the password:
|
|
.PP
|
|
.Vb 1
|
|
\& openssl pkcs8 \-in key.pem \-topk8 \-v2 aes\-256\-cbc \-iter 1000000 \-out pk8.pem
|
|
.Ve
|
|
.SH "STANDARDS"
|
|
.IX Header "STANDARDS"
|
|
Test vectors from this PKCS#5 v2.0 implementation were posted to the
|
|
pkcs-tng mailing list using triple \s-1DES, DES\s0 and \s-1RC2\s0 with high iteration
|
|
counts, several people confirmed that they could decrypt the private
|
|
keys produced and Therefore it can be assumed that the PKCS#5 v2.0
|
|
implementation is reasonably accurate at least as far as these
|
|
algorithms are concerned.
|
|
.PP
|
|
The format of PKCS#8 \s-1DSA\s0 (and other) private keys is not well documented:
|
|
it is hidden away in PKCS#11 v2.01, section 11.9. OpenSSL's default \s-1DSA\s0
|
|
PKCS#8 private key format complies with this standard.
|
|
.SH "BUGS"
|
|
.IX Header "BUGS"
|
|
There should be an option that prints out the encryption algorithm
|
|
in use and other details such as the iteration count.
|
|
.SH "SEE ALSO"
|
|
.IX Header "SEE ALSO"
|
|
\&\fBdsa\fR\|(1), \fBrsa\fR\|(1), \fBgenrsa\fR\|(1),
|
|
\&\fBgendsa\fR\|(1)
|
|
.SH "HISTORY"
|
|
.IX Header "HISTORY"
|
|
The \fB\-iter\fR option was added in OpenSSL 1.1.0.
|
|
.SH "COPYRIGHT"
|
|
.IX Header "COPYRIGHT"
|
|
Copyright 2000\-2018 The OpenSSL Project Authors. All Rights Reserved.
|
|
.PP
|
|
Licensed under the OpenSSL license (the \*(L"License\*(R"). You may not use
|
|
this file except in compliance with the License. You can obtain a copy
|
|
in the file \s-1LICENSE\s0 in the source distribution or at
|
|
<https://www.openssl.org/source/license.html>.
|