pcmcia: add new CIS access helpers
As a replacement to pcmcia_get_{first,next}_tuple() and pcmcia_get_tuple_data(), three new -- and easier to use -- functions are added: - pcmcia_get_tuple() to get the very first CIS entry of one type. - pcmcia_loop_tuple() to loop over all CIS entries of one type. - pcmcia_get_mac_from_cis() to read out the hardware MAC address from CISTPL_FUNCE. Only a handful of drivers need these functions anyway, as most CIS access is already handled by pcmcia_loop_config(), which now shares the same backed (pccard_loop_tuple()) with pcmcia_loop_tuple(). A pcmcia_get_mac_from_cis() bug noted by Komuro <komurojun-mbn@nifty.com> has been fixed in this revision. Signed-off-by: Dominik Brodowski <linux@dominikbrodowski.net>
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91284224da
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@ -1,5 +1,12 @@
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This file details changes in 2.6 which affect PCMCIA card driver authors:
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* New CIS tuple access (as of 2.6.33)
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Instead of pcmcia_get_{first,next}_tuple(), pcmcia_get_tuple_data() and
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pcmcia_parse_tuple(), a driver shall use "pcmcia_get_tuple()" if it is
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only interested in one (raw) tuple, or "pcmcia_loop_tuple()" if it is
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interested in all tuples of one type. To decode the MAC from CISTPL_FUNCE,
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a new helper "pcmcia_get_mac_from_cis()" was added.
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* New configuration loop helper (as of 2.6.28)
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By calling pcmcia_loop_config(), a driver can iterate over all available
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configuration options. During a driver's probe() phase, one doesn't need
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@ -1482,6 +1482,67 @@ done:
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}
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EXPORT_SYMBOL(pccard_read_tuple);
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/**
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* pccard_loop_tuple() - loop over tuples in the CIS
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* @s: the struct pcmcia_socket where the card is inserted
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* @function: the device function we loop for
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* @code: which CIS code shall we look for?
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* @parse: buffer where the tuple shall be parsed (or NULL, if no parse)
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* @priv_data: private data to be passed to the loop_tuple function.
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* @loop_tuple: function to call for each CIS entry of type @function. IT
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* gets passed the raw tuple, the paresed tuple (if @parse is
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* set) and @priv_data.
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*
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* pccard_loop_tuple() loops over all CIS entries of type @function, and
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* calls the @loop_tuple function for each entry. If the call to @loop_tuple
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* returns 0, the loop exits. Returns 0 on success or errorcode otherwise.
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*/
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int pccard_loop_tuple(struct pcmcia_socket *s, unsigned int function,
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cisdata_t code, cisparse_t *parse, void *priv_data,
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int (*loop_tuple) (tuple_t *tuple,
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cisparse_t *parse,
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void *priv_data))
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{
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tuple_t tuple;
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cisdata_t *buf;
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int ret;
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buf = kzalloc(256, GFP_KERNEL);
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if (buf == NULL) {
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dev_printk(KERN_WARNING, &s->dev, "no memory to read tuple\n");
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return -ENOMEM;
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}
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tuple.TupleData = buf;
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tuple.TupleDataMax = 255;
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tuple.TupleOffset = 0;
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tuple.DesiredTuple = code;
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tuple.Attributes = 0;
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ret = pccard_get_first_tuple(s, function, &tuple);
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while (!ret) {
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if (pccard_get_tuple_data(s, &tuple))
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goto next_entry;
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if (parse)
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if (pcmcia_parse_tuple(&tuple, parse))
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goto next_entry;
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ret = loop_tuple(&tuple, parse, priv_data);
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if (!ret)
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break;
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next_entry:
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ret = pccard_get_next_tuple(s, function, &tuple);
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}
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kfree(buf);
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return ret;
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}
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EXPORT_SYMBOL(pccard_loop_tuple);
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/*======================================================================
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This tries to determine if a card has a sensible CIS. It returns
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@ -199,6 +199,13 @@ int pcmcia_replace_cis(struct pcmcia_socket *s,
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const u8 *data, const size_t len);
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int pccard_validate_cis(struct pcmcia_socket *s, unsigned int *count);
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/* loop over CIS entries */
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int pccard_loop_tuple(struct pcmcia_socket *s, unsigned int function,
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cisdata_t code, cisparse_t *parse, void *priv_data,
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int (*loop_tuple) (tuple_t *tuple,
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cisparse_t *parse,
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void *priv_data));
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/* rsrc_mgr.c */
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int pcmcia_validate_mem(struct pcmcia_socket *s);
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struct resource *pcmcia_find_io_region(unsigned long base,
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@ -20,6 +20,7 @@
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#include <linux/delay.h>
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#include <linux/pci.h>
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#include <linux/device.h>
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#include <linux/netdevice.h>
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#include <pcmcia/cs_types.h>
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#include <pcmcia/ss.h>
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@ -885,12 +886,39 @@ EXPORT_SYMBOL(pcmcia_disable_device);
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struct pcmcia_cfg_mem {
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tuple_t tuple;
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struct pcmcia_device *p_dev;
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void *priv_data;
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int (*conf_check) (struct pcmcia_device *p_dev,
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cistpl_cftable_entry_t *cfg,
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cistpl_cftable_entry_t *dflt,
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unsigned int vcc,
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void *priv_data);
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cisparse_t parse;
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u8 buf[256];
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cistpl_cftable_entry_t dflt;
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};
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/**
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* pcmcia_do_loop_config() - internal helper for pcmcia_loop_config()
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*
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* pcmcia_do_loop_config() is the internal callback for the call from
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* pcmcia_loop_config() to pccard_loop_tuple(). Data is transferred
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* by a struct pcmcia_cfg_mem.
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*/
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static int pcmcia_do_loop_config(tuple_t *tuple, cisparse_t *parse, void *priv)
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{
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cistpl_cftable_entry_t *cfg = &parse->cftable_entry;
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struct pcmcia_cfg_mem *cfg_mem = priv;
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/* default values */
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cfg_mem->p_dev->conf.ConfigIndex = cfg->index;
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if (cfg->flags & CISTPL_CFTABLE_DEFAULT)
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cfg_mem->dflt = *cfg;
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return cfg_mem->conf_check(cfg_mem->p_dev, cfg, &cfg_mem->dflt,
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cfg_mem->p_dev->socket->socket.Vcc,
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cfg_mem->priv_data);
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}
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/**
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* pcmcia_loop_config() - loop over configuration options
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* @p_dev: the struct pcmcia_device which we need to loop for.
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@ -913,48 +941,173 @@ int pcmcia_loop_config(struct pcmcia_device *p_dev,
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void *priv_data)
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{
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struct pcmcia_cfg_mem *cfg_mem;
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tuple_t *tuple;
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int ret;
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unsigned int vcc;
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cfg_mem = kzalloc(sizeof(struct pcmcia_cfg_mem), GFP_KERNEL);
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if (cfg_mem == NULL)
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return -ENOMEM;
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/* get the current Vcc setting */
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vcc = p_dev->socket->socket.Vcc;
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cfg_mem->p_dev = p_dev;
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cfg_mem->conf_check = conf_check;
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cfg_mem->priv_data = priv_data;
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tuple = &cfg_mem->tuple;
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tuple->TupleData = cfg_mem->buf;
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tuple->TupleDataMax = 255;
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tuple->TupleOffset = 0;
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tuple->DesiredTuple = CISTPL_CFTABLE_ENTRY;
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tuple->Attributes = 0;
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ret = pcmcia_get_first_tuple(p_dev, tuple);
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while (!ret) {
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cistpl_cftable_entry_t *cfg = &cfg_mem->parse.cftable_entry;
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if (pcmcia_get_tuple_data(p_dev, tuple))
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goto next_entry;
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if (pcmcia_parse_tuple(tuple, &cfg_mem->parse))
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goto next_entry;
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/* default values */
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p_dev->conf.ConfigIndex = cfg->index;
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if (cfg->flags & CISTPL_CFTABLE_DEFAULT)
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cfg_mem->dflt = *cfg;
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ret = conf_check(p_dev, cfg, &cfg_mem->dflt, vcc, priv_data);
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if (!ret)
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break;
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next_entry:
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ret = pcmcia_get_next_tuple(p_dev, tuple);
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}
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ret = pccard_loop_tuple(p_dev->socket, p_dev->func,
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CISTPL_CFTABLE_ENTRY, &cfg_mem->parse,
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cfg_mem, pcmcia_do_loop_config);
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kfree(cfg_mem);
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return ret;
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}
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EXPORT_SYMBOL(pcmcia_loop_config);
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struct pcmcia_loop_mem {
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struct pcmcia_device *p_dev;
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void *priv_data;
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int (*loop_tuple) (struct pcmcia_device *p_dev,
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tuple_t *tuple,
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void *priv_data);
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};
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/**
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* pcmcia_do_loop_tuple() - internal helper for pcmcia_loop_config()
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*
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* pcmcia_do_loop_tuple() is the internal callback for the call from
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* pcmcia_loop_tuple() to pccard_loop_tuple(). Data is transferred
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* by a struct pcmcia_cfg_mem.
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*/
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static int pcmcia_do_loop_tuple(tuple_t *tuple, cisparse_t *parse, void *priv)
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{
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struct pcmcia_loop_mem *loop = priv;
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return loop->loop_tuple(loop->p_dev, tuple, loop->priv_data);
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};
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/**
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* pcmcia_loop_tuple() - loop over tuples in the CIS
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* @p_dev: the struct pcmcia_device which we need to loop for.
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* @code: which CIS code shall we look for?
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* @priv_data: private data to be passed to the loop_tuple function.
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* @loop_tuple: function to call for each CIS entry of type @function. IT
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* gets passed the raw tuple and @priv_data.
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*
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* pcmcia_loop_tuple() loops over all CIS entries of type @function, and
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* calls the @loop_tuple function for each entry. If the call to @loop_tuple
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* returns 0, the loop exits. Returns 0 on success or errorcode otherwise.
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*/
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int pcmcia_loop_tuple(struct pcmcia_device *p_dev, cisdata_t code,
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int (*loop_tuple) (struct pcmcia_device *p_dev,
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tuple_t *tuple,
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void *priv_data),
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void *priv_data)
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{
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struct pcmcia_loop_mem loop = {
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.p_dev = p_dev,
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.loop_tuple = loop_tuple,
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.priv_data = priv_data};
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return pccard_loop_tuple(p_dev->socket, p_dev->func, code, NULL,
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&loop, pcmcia_do_loop_tuple);
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};
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EXPORT_SYMBOL(pcmcia_loop_tuple);
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struct pcmcia_loop_get {
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size_t len;
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cisdata_t **buf;
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};
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/**
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* pcmcia_do_get_tuple() - internal helper for pcmcia_get_tuple()
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*
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* pcmcia_do_get_tuple() is the internal callback for the call from
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* pcmcia_get_tuple() to pcmcia_loop_tuple(). As we're only interested in
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* the first tuple, return 0 unconditionally. Create a memory buffer large
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* enough to hold the content of the tuple, and fill it with the tuple data.
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* The caller is responsible to free the buffer.
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*/
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static int pcmcia_do_get_tuple(struct pcmcia_device *p_dev, tuple_t *tuple,
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void *priv)
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{
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struct pcmcia_loop_get *get = priv;
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*get->buf = kzalloc(tuple->TupleDataLen, GFP_KERNEL);
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if (*get->buf) {
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get->len = tuple->TupleDataLen;
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memcpy(*get->buf, tuple->TupleData, tuple->TupleDataLen);
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}
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return 0;
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};
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/**
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* pcmcia_get_tuple() - get first tuple from CIS
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* @p_dev: the struct pcmcia_device which we need to loop for.
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* @code: which CIS code shall we look for?
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* @buf: pointer to store the buffer to.
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*
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* pcmcia_get_tuple() gets the content of the first CIS entry of type @code.
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* It returns the buffer length (or zero). The caller is responsible to free
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* the buffer passed in @buf.
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*/
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size_t pcmcia_get_tuple(struct pcmcia_device *p_dev, cisdata_t code,
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unsigned char **buf)
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{
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struct pcmcia_loop_get get = {
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.len = 0,
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.buf = buf,
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};
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*get.buf = NULL;
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pcmcia_loop_tuple(p_dev, code, pcmcia_do_get_tuple, &get);
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return get.len;
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};
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EXPORT_SYMBOL(pcmcia_get_tuple);
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/**
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* pcmcia_do_get_mac() - internal helper for pcmcia_get_mac_from_cis()
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*
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* pcmcia_do_get_mac() is the internal callback for the call from
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* pcmcia_get_mac_from_cis() to pcmcia_loop_tuple(). We check whether the
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* tuple contains a proper LAN_NODE_ID of length 6, and copy the data
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* to struct net_device->dev_addr[i].
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*/
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static int pcmcia_do_get_mac(struct pcmcia_device *p_dev, tuple_t *tuple,
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void *priv)
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{
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struct net_device *dev = priv;
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int i;
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if (tuple->TupleData[0] != CISTPL_FUNCE_LAN_NODE_ID)
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return -EINVAL;
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if (tuple->TupleDataLen < ETH_ALEN + 2) {
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dev_warn(&p_dev->dev, "Invalid CIS tuple length for "
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"LAN_NODE_ID\n");
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return -EINVAL;
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}
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if (tuple->TupleData[1] != ETH_ALEN) {
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dev_warn(&p_dev->dev, "Invalid header for LAN_NODE_ID\n");
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return -EINVAL;
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}
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for (i = 0; i < 6; i++)
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dev->dev_addr[i] = tuple->TupleData[i+2];
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return 0;
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};
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/**
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* pcmcia_get_mac_from_cis() - read out MAC address from CISTPL_FUNCE
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* @p_dev: the struct pcmcia_device for which we want the address.
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* @dev: a properly prepared struct net_device to store the info to.
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*
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* pcmcia_get_mac_from_cis() reads out the hardware MAC address from
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* CISTPL_FUNCE and stores it into struct net_device *dev->dev_addr which
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* must be set up properly by the driver (see examples!).
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*/
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int pcmcia_get_mac_from_cis(struct pcmcia_device *p_dev, struct net_device *dev)
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{
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return pcmcia_loop_tuple(p_dev, CISTPL_FUNCE, pcmcia_do_get_mac, dev);
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};
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EXPORT_SYMBOL(pcmcia_get_mac_from_cis);
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@ -18,6 +18,7 @@
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#include <pcmcia/cs_types.h>
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#include <pcmcia/ss.h>
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#include <pcmcia/cs.h>
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#include <pcmcia/cistpl.h>
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#include "cs_internal.h"
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@ -34,6 +34,7 @@
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struct pcmcia_socket;
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struct pcmcia_device;
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struct config_t;
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struct net_device;
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/* dynamic device IDs for PCMCIA device drivers. See
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* Documentation/pcmcia/driver.txt for details.
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@ -176,26 +177,39 @@ const char *pcmcia_error_ret(int ret);
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pcmcia_error_ret(ret)); \
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}
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/* CIS access.
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* Use the pcmcia_* versions in PCMCIA drivers
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/*
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* CIS access.
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*
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* Please use the following functions to access CIS tuples:
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* - pcmcia_get_tuple()
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* - pcmcia_loop_tuple()
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* - pcmcia_get_mac_from_cis()
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*
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* To parse a tuple_t, pcmcia_parse_tuple() exists. Its interface
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* might change in future.
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*/
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/* get the very first CIS entry of type @code. Note that buf is pointer
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* to u8 *buf; and that you need to kfree(buf) afterwards. */
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size_t pcmcia_get_tuple(struct pcmcia_device *p_dev, cisdata_t code,
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u8 **buf);
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/* loop over CIS entries */
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int pcmcia_loop_tuple(struct pcmcia_device *p_dev, cisdata_t code,
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int (*loop_tuple) (struct pcmcia_device *p_dev,
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tuple_t *tuple,
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void *priv_data),
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void *priv_data);
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/* get the MAC address from CISTPL_FUNCE */
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int pcmcia_get_mac_from_cis(struct pcmcia_device *p_dev,
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struct net_device *dev);
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/* parse a tuple_t */
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int pcmcia_parse_tuple(tuple_t *tuple, cisparse_t *parse);
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int pccard_get_first_tuple(struct pcmcia_socket *s, unsigned int function,
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tuple_t *tuple);
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#define pcmcia_get_first_tuple(p_dev, tuple) \
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pccard_get_first_tuple(p_dev->socket, p_dev->func, tuple)
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int pccard_get_next_tuple(struct pcmcia_socket *s, unsigned int function,
|
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tuple_t *tuple);
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#define pcmcia_get_next_tuple(p_dev, tuple) \
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pccard_get_next_tuple(p_dev->socket, p_dev->func, tuple)
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int pccard_get_tuple_data(struct pcmcia_socket *s, tuple_t *tuple);
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#define pcmcia_get_tuple_data(p_dev, tuple) \
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pccard_get_tuple_data(p_dev->socket, tuple)
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|
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|
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/* loop CIS entries for valid configuration */
|
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int pcmcia_loop_config(struct pcmcia_device *p_dev,
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int (*conf_check) (struct pcmcia_device *p_dev,
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|
@ -215,6 +229,21 @@ int pcmcia_reset_card(struct pcmcia_socket *skt);
|
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int pcmcia_access_configuration_register(struct pcmcia_device *p_dev,
|
||||
conf_reg_t *reg);
|
||||
|
||||
/* deprecated -- do not use in drivers. */
|
||||
int pccard_get_first_tuple(struct pcmcia_socket *s, unsigned int function,
|
||||
tuple_t *tuple);
|
||||
#define pcmcia_get_first_tuple(p_dev, tuple) \
|
||||
pccard_get_first_tuple(p_dev->socket, p_dev->func, tuple)
|
||||
|
||||
int pccard_get_next_tuple(struct pcmcia_socket *s, unsigned int function,
|
||||
tuple_t *tuple);
|
||||
#define pcmcia_get_next_tuple(p_dev, tuple) \
|
||||
pccard_get_next_tuple(p_dev->socket, p_dev->func, tuple)
|
||||
|
||||
int pccard_get_tuple_data(struct pcmcia_socket *s, tuple_t *tuple);
|
||||
#define pcmcia_get_tuple_data(p_dev, tuple) \
|
||||
pccard_get_tuple_data(p_dev->socket, tuple)
|
||||
|
||||
/* device configuration */
|
||||
int pcmcia_request_io(struct pcmcia_device *p_dev, io_req_t *req);
|
||||
int pcmcia_request_irq(struct pcmcia_device *p_dev, irq_req_t *req);
|
||||
|
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