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546 lines
18 KiB
Go
546 lines
18 KiB
Go
package dkim
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import (
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"bytes"
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"fmt"
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"net/mail"
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"net/textproto"
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"strconv"
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"strings"
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"time"
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)
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type dkimHeader struct {
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// Version This tag defines the version of DKIM
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// specification that applies to the signature record.
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// tag v
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Version string
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// The algorithm used to generate the signature..
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// Verifiers MUST support "rsa-sha1" and "rsa-sha256";
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// Signers SHOULD sign using "rsa-sha256".
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// tag a
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Algorithm string
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// The signature data (base64).
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// Whitespace is ignored in this value and MUST be
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// ignored when reassembling the original signature.
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// In particular, the signing process can safely insert
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// FWS in this value in arbitrary places to conform to line-length
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// limits.
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// tag b
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SignatureData string
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// The hash of the canonicalized body part of the message as
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// limited by the "l=" tag (base64; REQUIRED).
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// Whitespace is ignored in this value and MUST be ignored when reassembling the original
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// signature. In particular, the signing process can safely insert
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// FWS in this value in arbitrary places to conform to line-length
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// limits.
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// tag bh
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BodyHash string
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// Message canonicalization (plain-text; OPTIONAL, default is
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//"simple/simple"). This tag informs the Verifier of the type of
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// canonicalization used to prepare the message for signing. It
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// consists of two names separated by a "slash" (%d47) character,
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// corresponding to the header and body canonicalization algorithms,
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// respectively. These algorithms are described in Section 3.4. If
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// only one algorithm is named, that algorithm is used for the header
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// and "simple" is used for the body. For example, "c=relaxed" is
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// treated the same as "c=relaxed/simple".
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// tag c
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MessageCanonicalization string
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// The SDID claiming responsibility for an introduction of a message
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// into the mail stream (plain-text; REQUIRED). Hence, the SDID
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// value is used to form the query for the public key. The SDID MUST
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// correspond to a valid DNS name under which the DKIM key record is
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// published. The conventions and semantics used by a Signer to
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// create and use a specific SDID are outside the scope of this
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// specification, as is any use of those conventions and semantics.
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// When presented with a signature that does not meet these
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// requirements, Verifiers MUST consider the signature invalid.
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// Internationalized domain names MUST be encoded as A-labels, as
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// described in Section 2.3 of [RFC5890].
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// tag d
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Domain string
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// Signed header fields (plain-text, but see description; REQUIRED).
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// A colon-separated list of header field names that identify the
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// header fields presented to the signing algorithm. The field MUST
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// contain the complete list of header fields in the order presented
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// to the signing algorithm. The field MAY contain names of header
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// fields that do not exist when signed; nonexistent header fields do
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// not contribute to the signature computation (that is, they are
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// treated as the null input, including the header field name, the
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// separating colon, the header field value, and any CRLF
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// terminator). The field MAY contain multiple instances of a header
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// field name, meaning multiple occurrences of the corresponding
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// header field are included in the header hash. The field MUST NOT
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// include the DKIM-Signature header field that is being created or
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// verified but may include others. Folding whitespace (FWS) MAY be
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// included on either side of the colon separator. Header field
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// names MUST be compared against actual header field names in a
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// case-insensitive manner. This list MUST NOT be empty. See
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// Section 5.4 for a discussion of choosing header fields to sign and
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// Section 5.4.2 for requirements when signing multiple instances of
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// a single field.
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// tag h
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Headers []string
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// The Agent or User Identifier (AUID) on behalf of which the SDID is
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// taking responsibility (dkim-quoted-printable; OPTIONAL, default is
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// an empty local-part followed by an "@" followed by the domain from
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// the "d=" tag).
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// The syntax is a standard email address where the local-part MAY be
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// omitted. The domain part of the address MUST be the same as, or a
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// subdomain of, the value of the "d=" tag.
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// Internationalized domain names MUST be encoded as A-labels, as
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// described in Section 2.3 of [RFC5890].
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// tag i
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Auid string
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// Body length count (plain-text unsigned decimal integer; OPTIONAL,
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// default is entire body). This tag informs the Verifier of the
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// number of octets in the body of the email after canonicalization
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// included in the cryptographic hash, starting from 0 immediately
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// following the CRLF preceding the body. This value MUST NOT be
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// larger than the actual number of octets in the canonicalized
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// message body. See further discussion in Section 8.2.
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// tag l
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BodyLength uint
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// A colon-separated list of query methods used to retrieve the
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// public key (plain-text; OPTIONAL, default is "dns/txt"). Each
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// query method is of the form "type[/options]", where the syntax and
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// semantics of the options depend on the type and specified options.
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// If there are multiple query mechanisms listed, the choice of query
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// mechanism MUST NOT change the interpretation of the signature.
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// Implementations MUST use the recognized query mechanisms in the
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// order presented. Unrecognized query mechanisms MUST be ignored.
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// Currently, the only valid value is "dns/txt", which defines the
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// DNS TXT resource record (RR) lookup algorithm described elsewhere
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// in this document. The only option defined for the "dns" query
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// type is "txt", which MUST be included. Verifiers and Signers MUST
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// support "dns/txt".
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// tag q
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QueryMethods []string
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// The selector subdividing the namespace for the "d=" (domain) tag
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// (plain-text; REQUIRED).
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// Internationalized selector names MUST be encoded as A-labels, as
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// described in Section 2.3 of [RFC5890].
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// tag s
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Selector string
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// Signature Timestamp (plain-text unsigned decimal integer;
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// RECOMMENDED, default is an unknown creation time). The time that
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// this signature was created. The format is the number of seconds
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// since 00:00:00 on January 1, 1970 in the UTC time zone. The value
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// is expressed as an unsigned integer in decimal ASCII. This value
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// is not constrained to fit into a 31- or 32-bit integer.
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// Implementations SHOULD be prepared to handle values up to at least
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// 10^12 (until approximately AD 200,000; this fits into 40 bits).
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// To avoid denial-of-service attacks, implementations MAY consider
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// any value longer than 12 digits to be infinite. Leap seconds are
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// not counted. Implementations MAY ignore signatures that have a
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// timestamp in the future.
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// tag t
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SignatureTimestamp time.Time
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// Signature Expiration (plain-text unsigned decimal integer;
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// RECOMMENDED, default is no expiration). The format is the same as
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// in the "t=" tag, represented as an absolute date, not as a time
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// delta from the signing timestamp. The value is expressed as an
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// unsigned integer in decimal ASCII, with the same constraints on
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// the value in the "t=" tag. Signatures MAY be considered invalid
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// if the verification time at the Verifier is past the expiration
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// date. The verification time should be the time that the message
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// was first received at the administrative domain of the Verifier if
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// that time is reliably available; otherwise, the current time
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// should be used. The value of the "x=" tag MUST be greater than
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// the value of the "t=" tag if both are present.
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//tag x
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SignatureExpiration time.Time
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// Copied header fields (dkim-quoted-printable, but see description;
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// OPTIONAL, default is null). A vertical-bar-separated list of
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// selected header fields present when the message was signed,
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// including both the field name and value. It is not required to
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// include all header fields present at the time of signing. This
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// field need not contain the same header fields listed in the "h="
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// tag. The header field text itself must encode the vertical bar
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// ("|", %x7C) character (i.e., vertical bars in the "z=" text are
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// meta-characters, and any actual vertical bar characters in a
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// copied header field must be encoded). Note that all whitespace
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// must be encoded, including whitespace between the colon and the
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// header field value. After encoding, FWS MAY be added at arbitrary
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// locations in order to avoid excessively long lines; such
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// whitespace is NOT part of the value of the header field and MUST
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// be removed before decoding.
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// The header fields referenced by the "h=" tag refer to the fields
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// in the [RFC5322] header of the message, not to any copied fields
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// in the "z=" tag. Copied header field values are for diagnostic
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// use.
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// tag z
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CopiedHeaderFields []string
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// HeaderMailFromDomain store the raw email address of the header Mail From
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// used for verifying in case of multiple DKIM header (we will prioritise
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// header with d = mail from domain)
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//HeaderMailFromDomain string
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// RawForsign represents the raw part (without canonicalization) of the header
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// used for computint sig in verify process
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RawForSign string
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}
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// NewDkimHeaderBySigOptions return a new DkimHeader initioalized with sigOptions value
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func newDkimHeaderBySigOptions(options SigOptions) *dkimHeader {
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h := new(dkimHeader)
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h.Version = "1"
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h.Algorithm = options.Algo
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h.MessageCanonicalization = options.Canonicalization
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h.Domain = options.Domain
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h.Headers = options.Headers
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h.Auid = options.Auid
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h.BodyLength = options.BodyLength
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h.QueryMethods = options.QueryMethods
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h.Selector = options.Selector
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if options.AddSignatureTimestamp {
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h.SignatureTimestamp = time.Now()
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}
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if options.SignatureExpireIn > 0 {
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h.SignatureExpiration = time.Now().Add(time.Duration(options.SignatureExpireIn) * time.Second)
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}
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h.CopiedHeaderFields = options.CopiedHeaderFields
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return h
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}
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// NewFromEmail return a new DkimHeader by parsing an email
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// Note: according to RFC 6376 an email can have multiple DKIM Header
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// in this case we return the last inserted or the last with d== mail from
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func newDkimHeaderFromEmail(email *[]byte) (*dkimHeader, error) {
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m, err := mail.ReadMessage(bytes.NewReader(*email))
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if err != nil {
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return nil, err
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}
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// DKIM header ?
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if len(m.Header[textproto.CanonicalMIMEHeaderKey("DKIM-Signature")]) == 0 {
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return nil, ErrDkimHeaderNotFound
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}
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// Get mail from domain
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mailFromDomain := ""
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mailfrom, err := mail.ParseAddress(m.Header.Get(textproto.CanonicalMIMEHeaderKey("From")))
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if err != nil {
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if err.Error() != "mail: no address" {
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return nil, err
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}
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} else {
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t := strings.SplitAfter(mailfrom.Address, "@")
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if len(t) > 1 {
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mailFromDomain = strings.ToLower(t[1])
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}
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}
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// get raw dkim header
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// we can't use m.header because header key will be converted with textproto.CanonicalMIMEHeaderKey
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// ie if key in header is not DKIM-Signature but Dkim-Signature or DKIM-signature ot... other
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// combination of case, verify will fail.
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rawHeaders, _, err := getHeadersBody(email)
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if err != nil {
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return nil, ErrBadMailFormat
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}
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rawHeadersList, err := getHeadersList(&rawHeaders)
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if err != nil {
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return nil, err
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}
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dkHeaders := []string{}
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for h := rawHeadersList.Front(); h != nil; h = h.Next() {
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if strings.HasPrefix(strings.ToLower(h.Value.(string)), "dkim-signature") {
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dkHeaders = append(dkHeaders, h.Value.(string))
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}
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}
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var keep *dkimHeader
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var keepErr error
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//for _, dk := range m.Header[textproto.CanonicalMIMEHeaderKey("DKIM-Signature")] {
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for _, h := range dkHeaders {
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parsed, err := parseDkHeader(h)
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// if malformed dkim header try next
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if err != nil {
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keepErr = err
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continue
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}
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// Keep first dkim headers
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if keep == nil {
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keep = parsed
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}
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// if d flag == domain keep this header and return
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if mailFromDomain == parsed.Domain {
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return parsed, nil
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}
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}
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if keep == nil {
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return nil, keepErr
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}
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return keep, nil
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}
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// parseDkHeader parse raw dkim header
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func parseDkHeader(header string) (dkh *dkimHeader, err error) {
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dkh = new(dkimHeader)
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keyVal := strings.SplitN(header, ":", 2)
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t := strings.LastIndex(header, "b=")
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if t == -1 {
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return nil, ErrDkimHeaderBTagNotFound
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}
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dkh.RawForSign = header[0 : t+2]
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p := strings.IndexByte(header[t:], ';')
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if p != -1 {
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dkh.RawForSign = dkh.RawForSign + header[t+p:]
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}
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// Mandatory
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mandatoryFlags := make(map[string]bool, 7) //(b'v', b'a', b'b', b'bh', b'd', b'h', b's')
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mandatoryFlags["v"] = false
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mandatoryFlags["a"] = false
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mandatoryFlags["b"] = false
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mandatoryFlags["bh"] = false
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mandatoryFlags["d"] = false
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mandatoryFlags["h"] = false
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mandatoryFlags["s"] = false
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// default values
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dkh.MessageCanonicalization = "simple/simple"
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dkh.QueryMethods = []string{"dns/txt"}
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// unfold && clean
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val := removeFWS(keyVal[1])
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val = strings.Replace(val, " ", "", -1)
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fs := strings.Split(val, ";")
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for _, f := range fs {
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if f == "" {
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continue
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}
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flagData := strings.SplitN(f, "=", 2)
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// https://github.com/toorop/go-dkim/issues/2
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// if flag is not in the form key=value (eg doesn't have "=")
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if len(flagData) != 2 {
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return nil, ErrDkimHeaderBadFormat
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}
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flag := strings.ToLower(strings.TrimSpace(flagData[0]))
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data := strings.TrimSpace(flagData[1])
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switch flag {
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case "v":
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if data != "1" {
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return nil, ErrDkimVersionNotsupported
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}
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dkh.Version = data
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mandatoryFlags["v"] = true
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case "a":
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dkh.Algorithm = strings.ToLower(data)
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if dkh.Algorithm != "rsa-sha1" && dkh.Algorithm != "rsa-sha256" {
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return nil, ErrSignBadAlgo
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}
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mandatoryFlags["a"] = true
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case "b":
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//dkh.SignatureData = removeFWS(data)
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// remove all space
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dkh.SignatureData = strings.Replace(removeFWS(data), " ", "", -1)
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if len(dkh.SignatureData) != 0 {
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mandatoryFlags["b"] = true
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}
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case "bh":
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dkh.BodyHash = removeFWS(data)
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if len(dkh.BodyHash) != 0 {
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mandatoryFlags["bh"] = true
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}
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case "d":
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dkh.Domain = strings.ToLower(data)
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if len(dkh.Domain) != 0 {
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mandatoryFlags["d"] = true
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}
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case "h":
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data = strings.ToLower(data)
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dkh.Headers = strings.Split(data, ":")
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if len(dkh.Headers) != 0 {
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mandatoryFlags["h"] = true
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}
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fromFound := false
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for _, h := range dkh.Headers {
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if h == "from" {
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fromFound = true
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}
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}
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if !fromFound {
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return nil, ErrDkimHeaderNoFromInHTag
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}
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case "s":
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dkh.Selector = strings.ToLower(data)
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if len(dkh.Selector) != 0 {
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mandatoryFlags["s"] = true
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}
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case "c":
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dkh.MessageCanonicalization, err = validateCanonicalization(strings.ToLower(data))
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if err != nil {
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return nil, err
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}
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case "i":
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if data != "" {
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if !strings.HasSuffix(data, dkh.Domain) {
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return nil, ErrDkimHeaderDomainMismatch
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}
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dkh.Auid = data
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}
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case "l":
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ui, err := strconv.ParseUint(data, 10, 32)
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if err != nil {
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return nil, err
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}
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dkh.BodyLength = uint(ui)
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case "q":
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dkh.QueryMethods = strings.Split(data, ":")
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if len(dkh.QueryMethods) == 0 || strings.ToLower(dkh.QueryMethods[0]) != "dns/txt" {
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return nil, errQueryMethodNotsupported
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}
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case "t":
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ts, err := strconv.ParseInt(data, 10, 64)
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if err != nil {
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return nil, err
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}
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dkh.SignatureTimestamp = time.Unix(ts, 0)
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case "x":
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ts, err := strconv.ParseInt(data, 10, 64)
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if err != nil {
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return nil, err
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}
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dkh.SignatureExpiration = time.Unix(ts, 0)
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case "z":
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dkh.CopiedHeaderFields = strings.Split(data, "|")
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}
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}
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// All mandatory flags are in ?
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for _, p := range mandatoryFlags {
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if !p {
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return nil, ErrDkimHeaderMissingRequiredTag
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}
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}
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// default for i/Auid
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if dkh.Auid == "" {
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dkh.Auid = "@" + dkh.Domain
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}
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// defaut for query method
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if len(dkh.QueryMethods) == 0 {
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dkh.QueryMethods = []string{"dns/text"}
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}
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return dkh, nil
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}
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// GetHeaderBase return base header for signers
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// Todo: some refactoring needed...
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func (d *dkimHeader) getHeaderBaseForSigning(bodyHash string) string {
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h := "DKIM-Signature: v=" + d.Version + "; a=" + d.Algorithm + "; q=" + strings.Join(d.QueryMethods, ":") + "; c=" + d.MessageCanonicalization + ";" + CRLF + TAB
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subh := "s=" + d.Selector + ";"
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if len(subh)+len(d.Domain)+4 > MaxHeaderLineLength {
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h += subh + FWS
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subh = ""
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}
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subh += " d=" + d.Domain + ";"
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// Auid
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if len(d.Auid) != 0 {
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if len(subh)+len(d.Auid)+4 > MaxHeaderLineLength {
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h += subh + FWS
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subh = ""
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}
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subh += " i=" + d.Auid + ";"
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}
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/*h := "DKIM-Signature: v=1; a=rsa-sha256; c=relaxed/simple; d=tmail.io; i=@tmail.io;" + FWS
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subh := "q=dns/txt; s=test;"*/
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// signature timestamp
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if !d.SignatureTimestamp.IsZero() {
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ts := d.SignatureTimestamp.Unix()
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if len(subh)+14 > MaxHeaderLineLength {
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h += subh + FWS
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subh = ""
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}
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subh += " t=" + fmt.Sprintf("%d", ts) + ";"
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}
|
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if len(subh)+len(d.Domain)+4 > MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
}
|
|
|
|
// Expiration
|
|
if !d.SignatureExpiration.IsZero() {
|
|
ts := d.SignatureExpiration.Unix()
|
|
if len(subh)+14 > MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
}
|
|
subh += " x=" + fmt.Sprintf("%d", ts) + ";"
|
|
}
|
|
|
|
// body length
|
|
if d.BodyLength != 0 {
|
|
bodyLengthStr := fmt.Sprintf("%d", d.BodyLength)
|
|
if len(subh)+len(bodyLengthStr)+4 > MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
}
|
|
subh += " l=" + bodyLengthStr + ";"
|
|
}
|
|
|
|
// Headers
|
|
if len(subh)+len(d.Headers)+4 > MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
}
|
|
subh += " h="
|
|
for _, header := range d.Headers {
|
|
if len(subh)+len(header)+1 > MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
}
|
|
subh += header + ":"
|
|
}
|
|
subh = subh[:len(subh)-1] + ";"
|
|
|
|
// BodyHash
|
|
if len(subh)+5+len(bodyHash) > MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
} else {
|
|
subh += " "
|
|
}
|
|
subh += "bh="
|
|
l := len(subh)
|
|
for _, c := range bodyHash {
|
|
subh += string(c)
|
|
l++
|
|
if l >= MaxHeaderLineLength {
|
|
h += subh + FWS
|
|
subh = ""
|
|
l = 0
|
|
}
|
|
}
|
|
h += subh + ";" + FWS + "b="
|
|
return h
|
|
}
|