.\" Automatically generated by Pod::Man version 1.15 .\" Thu May 9 13:15:43 2002 .\" .\" Standard preamble: .\" ====================================================================== .de Sh \" Subsection heading .br .if t .Sp .ne 5 .PP \fB\\$1\fR .PP .. .de Sp \" Vertical space (when we can't use .PP) .if t .sp .5v .if n .sp .. .de Ip \" List item .br .ie \\n(.$>=3 .ne \\$3 .el .ne 3 .IP "\\$1" \\$2 .. .de Vb \" Begin verbatim text .ft CW .nf .ne \\$1 .. .de Ve \" End verbatim text .ft R .fi .. .\" Set up some character translations and predefined strings. \*(-- will .\" give an unbreakable dash, \*(PI will give pi, \*(L" will give a left .\" double quote, and \*(R" will give a right double quote. | will give a .\" real vertical bar. \*(C+ will give a nicer C++. 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It has two endpoints between data can be buffered. Its typical use is to connect one endpoint as underlying input/output \s-1BIO\s0 to an \s-1SSL\s0 and access the other one controlled by the program instead of accessing the network connection directly. .PP The two new BIOs \fBbio1\fR and \fBbio2\fR are symmetric with respect to their functionality. The size of their buffers is determined by \fBwritebuf1\fR and \&\fBwritebuf2\fR. If the size give is 0, the default size is used. .PP \&\fIBIO_new_bio_pair()\fR does not check whether \fBbio1\fR or \fBbio2\fR do point to some other \s-1BIO\s0, the values are overwritten, \fIBIO_free()\fR is not called. .PP The two BIOs, even though forming a \s-1BIO\s0 pair and must be \fIBIO_free()\fR'ed separately. This can be of importance, as some SSL-functions like \fISSL_set_bio()\fR or \fISSL_free()\fR call \fIBIO_free()\fR implicitly, so that the peer-BIO is left untouched and must also be \fIBIO_free()\fR'ed. .SH "EXAMPLE" .IX Header "EXAMPLE" The \s-1BIO\s0 pair can be used to have full control over the network access of an application. The application can call \fIselect()\fR on the socket as required without having to go through the SSL-interface. .PP .Vb 6 \& BIO *internal_bio, *network_bio; \& ... \& BIO_new_bio_pair(internal_bio, 0, network_bio, 0); \& SSL_set_bio(ssl, internal_bio); \& SSL_operations(); \& ... .Ve .Vb 9 \& application | TLS-engine \& | | \& +----------> SSL_operations() \& | /\e || \& | || \e/ \& | BIO-pair (internal_bio) \& +----------< BIO-pair (network_bio) \& | | \& socket | .Ve .Vb 4 \& ... \& SSL_free(ssl); /* implicitly frees internal_bio */ \& BIO_free(network_bio); \& ... .Ve As the \s-1BIO\s0 pair will only buffer the data and never directly access the connection, it behaves non-blocking and will return as soon as the write buffer is full or the read buffer is drained. Then the application has to flush the write buffer and/or fill the read buffer. .PP Use the \fIBIO_ctrl_pending()\fR, to find out whether data is buffered in the \s-1BIO\s0 and must be transfered to the network. Use \fIBIO_ctrl_get_read_request()\fR to find out, how many bytes must be written into the buffer before the \&\fISSL_operation()\fR can successfully be continued. .SH "IMPORTANT" .IX Header "IMPORTANT" As the data is buffered, \fISSL_operation()\fR may return with a \s-1ERROR_SSL_WANT_READ\s0 condition, but there is still data in the write buffer. An application must not rely on the error value of \fISSL_operation()\fR but must assure that the write buffer is always flushed first. Otherwise a deadlock may occur as the peer might be waiting for the data before being able to continue. .SH "RETURN VALUES" .IX Header "RETURN VALUES" The following return values can occur: .Ip "1" 4 .IX Item "1" The \s-1BIO\s0 pair was created successfully. The new BIOs are available in \&\fBbio1\fR and \fBbio2\fR. .Ip "0" 4 The operation failed. The \s-1NULL\s0 pointer is stored into the locations for \&\fBbio1\fR and \fBbio2\fR. Check the error stack for more information. .SH "SEE ALSO" .IX Header "SEE ALSO" SSL_set_bio(3), ssl(3), bio(3), BIO_ctrl_pending(3), BIO_ctrl_get_read_request(3)