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/* Generate assembler source containing symbol information
 *
 * Copyright 2002       by Kai Germaschewski
 *
 * This software may be used and distributed according to the terms
 * of the GNU General Public License, incorporated herein by reference.
 *
 * Usage: nm -n vmlinux | scripts/kallsyms [--all-symbols] > symbols.S
 *
 * ChangeLog:
 *
 * (25/Aug/2004) Paulo Marques <pmarques@grupopie.com>
 *      Changed the compression method from stem compression to "table lookup"
 *      compression
 *
 *      Table compression uses all the unused char codes on the symbols and
 *  maps these to the most used substrings (tokens). For instance, it might
 *  map char code 0xF7 to represent "write_" and then in every symbol where
 *  "write_" appears it can be replaced by 0xF7, saving 5 bytes.
 *      The used codes themselves are also placed in the table so that the
 *  decompresion can work without "special cases".
 *      Applied to kernel symbols, this usually produces a compression ratio
 *  of about 50%.
 *
 */

#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <ctype.h>

/* maximum token length used. It doesn't pay to increase it a lot, because
 * very long substrings probably don't repeat themselves too often. */
#define MAX_TOK_SIZE		11
#define KSYM_NAME_LEN		127

/* we use only a subset of the complete symbol table to gather the token count,
 * to speed up compression, at the expense of a little compression ratio */
#define WORKING_SET		1024

/* first find the best token only on the list of tokens that would profit more
 * than GOOD_BAD_THRESHOLD. Only if this list is empty go to the "bad" list.
 * Increasing this value will put less tokens on the "good" list, so the search
 * is faster. However, if the good list runs out of tokens, we must painfully
 * search the bad list. */
#define GOOD_BAD_THRESHOLD	10

/* token hash parameters */
#define HASH_BITS		18
#define HASH_TABLE_SIZE		(1 << HASH_BITS)
#define HASH_MASK		(HASH_TABLE_SIZE - 1)
#define HASH_BASE_OFFSET	2166136261U
#define HASH_FOLD(a)		((a)&(HASH_MASK))

/* flags to mark symbols */
#define SYM_FLAG_VALID		1
#define SYM_FLAG_SAMPLED	2

struct sym_entry {
	unsigned long long addr;
	char type;
	unsigned char flags;
	unsigned char len;
	unsigned char *sym;
};


static struct sym_entry *table;
static int size, cnt;
static unsigned long long _stext, _etext, _sinittext, _einittext, _sextratext, _eextratext;
static int all_symbols = 0;
static char symbol_prefix_char = '\0';

struct token {
	unsigned char data[MAX_TOK_SIZE];
	unsigned char len;
	/* profit: the number of bytes that could be saved by inserting this
	 * token into the table */
	int profit;
	struct token *next;	/* next token on the hash list */
	struct token *right;	/* next token on the good/bad list */
	struct token *left;    /* previous token on the good/bad list */
	struct token *smaller; /* token that is less one letter than this one */
	};

struct token bad_head, good_head;
struct token *hash_table[HASH_TABLE_SIZE];

/* the table that holds the result of the compression */
unsigned char best_table[256][MAX_TOK_SIZE+1];
unsigned char best_table_len[256];


static void
usage(void)
{
	fprintf(stderr, "Usage: kallsyms [--all-symbols] [--symbol-prefix=<prefix char>] < in.map > out.S\n");
	exit(1);
}

/*
 * This ignores the intensely annoying "mapping symbols" found
 * in ARM ELF files: $a, $t and $d.
 */
static inline int
is_arm_mapping_symbol(const char *str)
{
	return str[0] == '$' && strchr("atd", str[1])
	       && (str[2] == '\0' || str[2] == '.');
}

static int
read_symbol(FILE *in, struct sym_entry *s)
{
	char str[500];
	char *sym;
	int rc;

	rc = fscanf(in, "%llx %c %499s\n", &s->addr, &s->type, str);
	if (rc != 3) {
		if (rc != EOF) {
			/* skip line */
			fgets(str, 500, in);
		}
		return -1;
	}

	sym = str;
	/* skip prefix char */
	if (symbol_prefix_char && str[0] == symbol_prefix_char)
		sym++;

	/* Ignore most absolute/undefined (?) symbols. */
	if (strcmp(sym, "_stext") == 0)
		_stext = s->addr;
	else if (strcmp(sym, "_etext") == 0)
		_etext = s->addr;
	else if (strcmp(sym, "_sinittext") == 0)
		_sinittext = s->addr;
	else if (strcmp(sym, "_einittext") == 0)
		_einittext = s->addr;
	else if (strcmp(sym, "_sextratext") == 0)
		_sextratext = s->addr;
	else if (strcmp(sym, "_eextratext") == 0)
		_eextratext = s->addr;
	else if (toupper(s->type) == 'A')
	{
		/* Keep these useful absolute symbols */
		if (strcmp(sym, "__kernel_syscall_via_break") &&
		    strcmp(sym, "__kernel_syscall_via_epc") &&
		    strcmp(sym, "__kernel_sigtramp") &&
		    strcmp(sym, "__gp"))
			return -1;

	}
	else if (toupper(s->type) == 'U' ||
		 is_arm_mapping_symbol(sym))
		return -1;

	/* include the type field in the symbol name, so that it gets
	 * compressed together */
	s->len = strlen(str) + 1;
	s->sym = (char *) malloc(s->len + 1);
	strcpy(s->sym + 1, str);
	s->sym[0] = s->type;

	return 0;
}

static int
symbol_valid(struct sym_entry *s)
{
	/* Symbols which vary between passes.  Passes 1 and 2 must have
	 * identical symbol lists.  The kallsyms_* symbols below are only added
	 * after pass 1, they would be included in pass 2 when --all-symbols is
	 * specified so exclude them to get a stable symbol list.
	 */
	static char *special_symbols[] = {
		"kallsyms_addresses",
		"kallsyms_num_syms",
		"kallsyms_names",
		"kallsyms_markers",
		"kallsyms_token_table",
		"kallsyms_token_index",

	/* Exclude linker generated symbols which vary between passes */
		"_SDA_BASE_",		/* ppc */
		"_SDA2_BASE_",		/* ppc */
		NULL };
	int i;
	int offset = 1;

	/* skip prefix char */
	if (symbol_prefix_char && *(s->sym + 1) == symbol_prefix_char)
		offset++;

	/* if --all-symbols is not specified, then symbols outside the text
	 * and inittext sections are discarded */
	if (!all_symbols) {
		if ((s->addr < _stext || s->addr > _etext)
		    && (s->addr < _sinittext || s->addr > _einittext)
		    && (s->addr < _sextratext || s->addr > _eextratext))
			return 0;
		/* Corner case.  Discard any symbols with the same value as
		 * _etext _einittext or _eextratext; they can move between pass
		 * 1 and 2 when the kallsyms data are added.  If these symbols
		 * move then they may get dropped in pass 2, which breaks the
		 * kallsyms rules.
		 */
		if ((s->addr == _etext && strcmp((char*)s->sym + offset, "_etext")) ||
		    (s->addr == _einittext && strcmp((char*)s->sym + offset, "_einittext")) ||
		    (s->addr == _eextratext && strcmp((char*)s->sym + offset, "_eextratext")))
			return 0;
	}

	/* Exclude symbols which vary between passes. */
	if (strstr(s->sym + offset, "_compiled."))
		return 0;

	for (i = 0; special_symbols[i]; i++)
		if( strcmp(s->sym + offset, special_symbols[i]) == 0 )
			return 0;

	return 1;
}

static void
read_map(FILE *in)
{
	while (!feof(in)) {
		if (cnt >= size) {
			size += 10000;
			table = realloc(table, sizeof(*table) * size);
			if (!table) {
				fprintf(stderr, "out of memory\n");
				exit (1);
			}
		}
		if (read_symbol(in, &table[cnt]) == 0)
			cnt++;
	}
}

static void output_label(char *label)
{
	if (symbol_prefix_char)
		printf(".globl %c%s\n", symbol_prefix_char, label);
	else
		printf(".globl %s\n", label);
	printf("\tALGN\n");
	if (symbol_prefix_char)
		printf("%c%s:\n", symbol_prefix_char, label);
	else
		printf("%s:\n", label);
}

/* uncompress a compressed symbol. When this function is called, the best table
 * might still be compressed itself, so the function needs to be recursive */
static int expand_symbol(unsigned char *data, int len, char *result)
{
	int c, rlen, total=0;

	while (len) {
		c = *data;
		/* if the table holds a single char that is the same as the one
		 * we are looking for, then end the search */
		if (best_table[c][0]==c && best_table_len[c]==1) {
			*result++ = c;
			total++;
		} else {
			/* if not, recurse and expand */
			rlen = expand_symbol(best_table[c], best_table_len[c], result);
			total += rlen;
			result += rlen;
		}
		data++;
		len--;
	}
	*result=0;

	return total;
}

static void
write_src(void)
{
	int i, k, off, valid;
	unsigned int best_idx[256];
	unsigned int *markers;
	char buf[KSYM_NAME_LEN+1];

	printf("#include <asm/types.h>\n");
	printf("#if BITS_PER_LONG == 64\n");
	printf("#define PTR .quad\n");
	printf("#define ALGN .align 8\n");
	printf("#else\n");
	printf("#define PTR .long\n");
	printf("#define ALGN .align 4\n");
	printf("#endif\n");

	printf(".data\n");

	output_label("kallsyms_addresses");
	valid = 0;
	for (i = 0; i < cnt; i++) {
		if (table[i].flags & SYM_FLAG_VALID) {
			printf("\tPTR\t%#llx\n", table[i].addr);
			valid++;
		}
	}
	printf("\n");

	output_label("kallsyms_num_syms");
	printf("\tPTR\t%d\n", valid);
	printf("\n");

	/* table of offset markers, that give the offset in the compressed stream
	 * every 256 symbols */
	markers = (unsigned int *) malloc(sizeof(unsigned int)*((valid + 255) / 256));

	output_label("kallsyms_names");
	valid = 0;
	off = 0;
	for (i = 0; i < cnt; i++) {

		if (!table[i].flags & SYM_FLAG_VALID)
			continue;

		if ((valid & 0xFF) == 0)
			markers[valid >> 8] = off;

		printf("\t.byte 0x%02x", table[i].len);
		for (k = 0; k < table[i].len; k++)
			printf(", 0x%02x", table[i].sym[k]);
		printf("\n");

		off += table[i].len + 1;
		valid++;
	}
	printf("\n");

	output_label("kallsyms_markers");
	for (i = 0; i < ((valid + 255) >> 8); i++)
		printf("\tPTR\t%d\n", markers[i]);
	printf("\n");

	free(markers);

	output_label("kallsyms_token_table");
	off = 0;
	for (i = 0; i < 256; i++) {
		best_idx[i] = off;
		expand_symbol(best_table[i],best_table_len[i],buf);
		printf("\t.asciz\t\"%s\"\n", buf);
		off += strlen(buf) + 1;
	}
	printf("\n");

	output_label("kallsyms_token_index");
	for (i = 0; i < 256; i++)
		printf("\t.short\t%d\n", best_idx[i]);
	printf("\n");
}


/* table lookup compression functions */

static inline unsigned int rehash_token(unsigned int hash, unsigned char data)
{
	return ((hash * 16777619) ^ data);
}

static unsigned int hash_token(unsigned char *data, int len)
{
	unsigned int hash=HASH_BASE_OFFSET;
	int i;

	for (i = 0; i < len; i++)
		hash = rehash_token(hash, data[i]);

	return HASH_FOLD(hash);
}

/* find a token given its data and hash value */
static struct token *find_token_hash(unsigned char *data, int len, unsigned int hash)
{
	struct token *ptr;

	ptr = hash_table[hash];

	while (ptr) {
		if ((ptr->len == len) && (memcmp(ptr->data, data, len) == 0))
			return ptr;
		ptr=ptr->next;
	}

	return NULL;
}

static inline void insert_token_in_group(struct token *head, struct token *ptr)
{
	ptr->right = head->right;
	ptr->right->left = ptr;
	head->right = ptr;
	ptr->left = head;
}

static inline void remove_token_from_group(struct token *ptr)
{
	ptr->left->right = ptr->right;
	ptr->right->left = ptr->left;
}


/* build the counts for all the tokens that start with "data", and have lenghts
 * from 2 to "len" */
static void learn_token(unsigned char *data, int len)
{
	struct token *ptr,*last_ptr;
	int i, newprofit;
	unsigned int hash = HASH_BASE_OFFSET;
	unsigned int hashes[MAX_TOK_SIZE + 1];

	if (len > MAX_TOK_SIZE)
		len = MAX_TOK_SIZE;

	/* calculate and store the hash values for all the sub-tokens */
	hash = rehash_token(hash, data[0]);
	for (i = 2; i <= len; i++) {
		hash = rehash_token(hash, data[i-1]);
		hashes[i] = HASH_FOLD(hash);
	}

	last_ptr = NULL;
	ptr = NULL;

	for (i = len; i >= 2; i--) {
		hash = hashes[i];

		if (!ptr) ptr = find_token_hash(data, i, hash);

		if (!ptr) {
			/* create a new token entry */
			ptr = (struct token *) malloc(sizeof(*ptr));

			memcpy(ptr->data, data, i);
			ptr->len = i;

			/* when we create an entry, it's profit is 0 because
			 * we also take into account the size of the token on
			 * the compressed table. We then subtract GOOD_BAD_THRESHOLD
			 * so that the test to see if this token belongs to
			 * the good or bad list, is a comparison to zero */
			ptr->profit = -GOOD_BAD_THRESHOLD;

			ptr->next = hash_table[hash];
			hash_table[hash] = ptr;

			insert_token_in_group(&bad_head, ptr);

			ptr->smaller = NULL;
		} else {
			newprofit = ptr->profit + (ptr->len - 1);
			/* check to see if this token needs to be moved to a
			 * different list */
			if((ptr->profit < 0) && (newprofit >= 0)) {
				remove_token_from_group(ptr);
				insert_token_in_group(&good_head,ptr);
			}
			ptr->profit = newprofit;
		}

		if (last_ptr) last_ptr->smaller = ptr;
		last_ptr = ptr;

		ptr = ptr->smaller;
	}
}

/* decrease the counts for all the tokens that start with "data", and have lenghts
 * from 2 to "len". This function is much simpler than learn_token because we have
 * more guarantees (tho tokens exist, the ->smaller pointer is set, etc.)
 * The two separate functions exist only because of compression performance */
static void forget_token(unsigned char *data, int len)
{
	struct token *ptr;
	int i, newprofit;
	unsigned int hash=0;

	if (len > MAX_TOK_SIZE) len = MAX_TOK_SIZE;

	hash = hash_token(data, len);
	ptr = find_token_hash(data, len, hash);

	for (i = len; i >= 2; i--) {

		newprofit = ptr->profit - (ptr->len - 1);
		if ((ptr->profit >= 0) && (newprofit < 0)) {
			remove_token_from_group(ptr);
			insert_token_in_group(&bad_head, ptr);
		}
		ptr->profit=newprofit;

		ptr=ptr->smaller;
	}
}

/* count all the possible tokens in a symbol */
static void learn_symbol(unsigned char *symbol, int len)
{
	int i;

	for (i = 0; i < len - 1; i++)
		learn_token(symbol + i, len - i);
}

/* decrease the count for all the possible tokens in a symbol */
static void forget_symbol(unsigned char *symbol, int len)
{
	int i;

	for (i = 0; i < len - 1; i++)
		forget_token(symbol + i, len - i);
}

/* set all the symbol flags and do the initial token count */
static void build_initial_tok_table(void)
{
	int i, use_it, valid;

	valid = 0;
	for (i = 0; i < cnt; i++) {
		table[i].flags = 0;
		if ( symbol_valid(&table[i]) ) {
			table[i].flags |= SYM_FLAG_VALID;
			valid++;
		}
	}

	use_it = 0;
	for (i = 0; i < cnt; i++) {

		/* subsample the available symbols. This method is almost like
		 * a Bresenham's algorithm to get uniformly distributed samples
		 * across the symbol table */
		if (table[i].flags & SYM_FLAG_VALID) {

			use_it += WORKING_SET;

			if (use_it >= valid) {
				table[i].flags |= SYM_FLAG_SAMPLED;
				use_it -= valid;
			}
		}
		if (table[i].flags & SYM_FLAG_SAMPLED)
			learn_symbol(table[i].sym, table[i].len);
	}
}

/* replace a given token in all the valid symbols. Use the sampled symbols
 * to update the counts */
static void compress_symbols(unsigned char *str, int tlen, int idx)
{
	int i, len, learn, size;
	unsigned char *p;

	for (i = 0; i < cnt; i++) {

		if (!(table[i].flags & SYM_FLAG_VALID)) continue;

		len = table[i].len;
		learn = 0;
		p = table[i].sym;

		do {
			/* find the token on the symbol */
			p = (unsigned char *) strstr((char *) p, (char *) str);
			if (!p) break;

			if (!learn) {
				/* if this symbol was used to count, decrease it */
				if (table[i].flags & SYM_FLAG_SAMPLED)
					forget_symbol(table[i].sym, len);
				learn = 1;
			}

			*p = idx;
			size = (len - (p - table[i].sym)) - tlen + 1;
			memmove(p + 1, p + tlen, size);
			p++;
			len -= tlen - 1;

		} while (size >= tlen);

		if(learn) {
			table[i].len = len;
			/* if this symbol was used to count, learn it again */
			if(table[i].flags & SYM_FLAG_SAMPLED)
				learn_symbol(table[i].sym, len);
		}
	}
}

/* search the token with the maximum profit */
static struct token *find_best_token(void)
{
	struct token *ptr,*best,*head;
	int bestprofit;

	bestprofit=-10000;

	/* failsafe: if the "good" list is empty search from the "bad" list */
	if(good_head.right == &good_head) head = &bad_head;
	else head = &good_head;

	ptr = head->right;
	best = NULL;
	while (ptr != head) {
		if (ptr->profit > bestprofit) {
			bestprofit = ptr->profit;
			best = ptr;
		}
		ptr = ptr->right;
	}

	return best;
}

/* this is the core of the algorithm: calculate the "best" table */
static void optimize_result(void)
{
	struct token *best;
	int i;

	/* using the '\0' symbol last allows compress_symbols to use standard
	 * fast string functions */
	for (i = 255; i >= 0; i--) {

		/* if this table slot is empty (it is not used by an actual
		 * original char code */
		if (!best_table_len[i]) {

			/* find the token with the breates profit value */
			best = find_best_token();

			/* place it in the "best" table */
			best_table_len[i] = best->len;
			memcpy(best_table[i], best->data, best_table_len[i]);
			/* zero terminate the token so that we can use strstr
			   in compress_symbols */
			best_table[i][best_table_len[i]]='\0';

			/* replace this token in all the valid symbols */
			compress_symbols(best_table[i], best_table_len[i], i);
		}
	}
}

/* start by placing the symbols that are actually used on the table */
static void insert_real_symbols_in_table(void)
{
	int i, j, c;

	memset(best_table, 0, sizeof(best_table));
	memset(best_table_len, 0, sizeof(best_table_len));

	for (i = 0; i < cnt; i++) {
		if (table[i].flags & SYM_FLAG_VALID) {
			for (j = 0; j < table[i].len; j++) {
				c = table[i].sym[j];
				best_table[c][0]=c;
				best_table_len[c]=1;
			}
		}
	}
}

static void optimize_token_table(void)
{
	memset(hash_table, 0, sizeof(hash_table));

	good_head.left = &good_head;
	good_head.right = &good_head;

	bad_head.left = &bad_head;
	bad_head.right = &bad_head;

	build_initial_tok_table();

	insert_real_symbols_in_table();

	/* When valid symbol is not registered, exit to error */
	if (good_head.left == good_head.right &&
	    bad_head.left == bad_head.right) {
		fprintf(stderr, "No valid symbol.\n");
		exit(1);
	}

	optimize_result();
}


int
main(int argc, char **argv)
{
	if (argc >= 2) {
		int i;
		for (i = 1; i < argc; i++) {
			if(strcmp(argv[i], "--all-symbols") == 0)
				all_symbols = 1;
			else if (strncmp(argv[i], "--symbol-prefix=", 16) == 0) {
				char *p = &argv[i][16];
				/* skip quote */
				if ((*p == '"' && *(p+2) == '"') || (*p == '\'' && *(p+2) == '\''))
					p++;
				symbol_prefix_char = *p;
			} else
				usage();
		}
	} else if (argc != 1)
		usage();

	read_map(stdin);
	optimize_token_table();
	write_src();

	return 0;
}
ned long)adapter->buffer_list_addr); adapter->buffer_list_addr = NULL; } if(adapter->filter_list_addr != NULL) { if(!dma_mapping_error(adapter->filter_list_dma)) { dma_unmap_single(&adapter->vdev->dev, adapter->filter_list_dma, 4096, DMA_BIDIRECTIONAL); adapter->filter_list_dma = DMA_ERROR_CODE; } free_page((unsigned long)adapter->filter_list_addr); adapter->filter_list_addr = NULL; } if(adapter->rx_queue.queue_addr != NULL) { if(!dma_mapping_error(adapter->rx_queue.queue_dma)) { dma_unmap_single(&adapter->vdev->dev, adapter->rx_queue.queue_dma, adapter->rx_queue.queue_len, DMA_BIDIRECTIONAL); adapter->rx_queue.queue_dma = DMA_ERROR_CODE; } kfree(adapter->rx_queue.queue_addr); adapter->rx_queue.queue_addr = NULL; } for(i = 0; i<IbmVethNumBufferPools; i++) if (adapter->rx_buff_pool[i].active) ibmveth_free_buffer_pool(adapter, &adapter->rx_buff_pool[i]); } static int ibmveth_register_logical_lan(struct ibmveth_adapter *adapter, union ibmveth_buf_desc rxq_desc, u64 mac_address) { int rc, try_again = 1; /* After a kexec the adapter will still be open, so our attempt to * open it will fail. So if we get a failure we free the adapter and * try again, but only once. */ retry: rc = h_register_logical_lan(adapter->vdev->unit_address, adapter->buffer_list_dma, rxq_desc.desc, adapter->filter_list_dma, mac_address); if (rc != H_SUCCESS && try_again) { do { rc = h_free_logical_lan(adapter->vdev->unit_address); } while (H_IS_LONG_BUSY(rc) || (rc == H_BUSY)); try_again = 0; goto retry; } return rc; } static int ibmveth_open(struct net_device *netdev) { struct ibmveth_adapter *adapter = netdev->priv; u64 mac_address = 0; int rxq_entries = 1; unsigned long lpar_rc; int rc; union ibmveth_buf_desc rxq_desc; int i; ibmveth_debug_printk("open starting\n"); napi_enable(&adapter->napi); for(i = 0; i<IbmVethNumBufferPools; i++) rxq_entries += adapter->rx_buff_pool[i].size; adapter->buffer_list_addr = (void*) get_zeroed_page(GFP_KERNEL); adapter->filter_list_addr = (void*) get_zeroed_page(GFP_KERNEL); if(!adapter->buffer_list_addr || !adapter->filter_list_addr) { ibmveth_error_printk("unable to allocate filter or buffer list pages\n"); ibmveth_cleanup(adapter); napi_disable(&adapter->napi); return -ENOMEM; } adapter->rx_queue.queue_len = sizeof(struct ibmveth_rx_q_entry) * rxq_entries; adapter->rx_queue.queue_addr = kmalloc(adapter->rx_queue.queue_len, GFP_KERNEL); if(!adapter->rx_queue.queue_addr) { ibmveth_error_printk("unable to allocate rx queue pages\n"); ibmveth_cleanup(adapter); napi_disable(&adapter->napi); return -ENOMEM; } adapter->buffer_list_dma = dma_map_single(&adapter->vdev->dev, adapter->buffer_list_addr, 4096, DMA_BIDIRECTIONAL); adapter->filter_list_dma = dma_map_single(&adapter->vdev->dev, adapter->filter_list_addr, 4096, DMA_BIDIRECTIONAL); adapter->rx_queue.queue_dma = dma_map_single(&adapter->vdev->dev, adapter->rx_queue.queue_addr, adapter->rx_queue.queue_len, DMA_BIDIRECTIONAL); if((dma_mapping_error(adapter->buffer_list_dma) ) || (dma_mapping_error(adapter->filter_list_dma)) || (dma_mapping_error(adapter->rx_queue.queue_dma))) { ibmveth_error_printk("unable to map filter or buffer list pages\n"); ibmveth_cleanup(adapter); napi_disable(&adapter->napi); return -ENOMEM; } adapter->rx_queue.index = 0; adapter->rx_queue.num_slots = rxq_entries; adapter->rx_queue.toggle = 1; memcpy(&mac_address, netdev->dev_addr, netdev->addr_len); mac_address = mac_address >> 16; rxq_desc.fields.flags_len = IBMVETH_BUF_VALID | adapter->rx_queue.queue_len; rxq_desc.fields.address = adapter->rx_queue.queue_dma; ibmveth_debug_printk("buffer list @ 0x%p\n", adapter->buffer_list_addr); ibmveth_debug_printk("filter list @ 0x%p\n", adapter->filter_list_addr); ibmveth_debug_printk("receive q @ 0x%p\n", adapter->rx_queue.queue_addr); h_vio_signal(adapter->vdev->unit_address, VIO_IRQ_DISABLE); lpar_rc = ibmveth_register_logical_lan(adapter, rxq_desc, mac_address); if(lpar_rc != H_SUCCESS) { ibmveth_error_printk("h_register_logical_lan failed with %ld\n", lpar_rc); ibmveth_error_printk("buffer TCE:0x%lx filter TCE:0x%lx rxq desc:0x%lx MAC:0x%lx\n", adapter->buffer_list_dma, adapter->filter_list_dma, rxq_desc.desc, mac_address); ibmveth_cleanup(adapter); napi_disable(&adapter->napi); return -ENONET; } for(i = 0; i<IbmVethNumBufferPools; i++) { if(!adapter->rx_buff_pool[i].active) continue; if (ibmveth_alloc_buffer_pool(&adapter->rx_buff_pool[i])) { ibmveth_error_printk("unable to alloc pool\n"); adapter->rx_buff_pool[i].active = 0; ibmveth_cleanup(adapter); napi_disable(&adapter->napi); return -ENOMEM ; } } ibmveth_debug_printk("registering irq 0x%x\n", netdev->irq); if((rc = request_irq(netdev->irq, &ibmveth_interrupt, 0, netdev->name, netdev)) != 0) { ibmveth_error_printk("unable to request irq 0x%x, rc %d\n", netdev->irq, rc); do { rc = h_free_logical_lan(adapter->vdev->unit_address); } while (H_IS_LONG_BUSY(rc) || (rc == H_BUSY)); ibmveth_cleanup(adapter); napi_disable(&adapter->napi); return rc; } ibmveth_debug_printk("initial replenish cycle\n"); ibmveth_interrupt(netdev->irq, netdev); netif_start_queue(netdev); ibmveth_debug_printk("open complete\n"); return 0; } static int ibmveth_close(struct net_device *netdev) { struct ibmveth_adapter *adapter = netdev->priv; long lpar_rc; ibmveth_debug_printk("close starting\n"); napi_disable(&adapter->napi); if (!adapter->pool_config) netif_stop_queue(netdev); free_irq(netdev->irq, netdev); do { lpar_rc = h_free_logical_lan(adapter->vdev->unit_address); } while (H_IS_LONG_BUSY(lpar_rc) || (lpar_rc == H_BUSY)); if(lpar_rc != H_SUCCESS) { ibmveth_error_printk("h_free_logical_lan failed with %lx, continuing with close\n", lpar_rc); } adapter->rx_no_buffer = *(u64*)(((char*)adapter->buffer_list_addr) + 4096 - 8); ibmveth_cleanup(adapter); ibmveth_debug_printk("close complete\n"); return 0; } static int netdev_get_settings(struct net_device *dev, struct ethtool_cmd *cmd) { cmd->supported = (SUPPORTED_1000baseT_Full | SUPPORTED_Autoneg | SUPPORTED_FIBRE); cmd->advertising = (ADVERTISED_1000baseT_Full | ADVERTISED_Autoneg | ADVERTISED_FIBRE); cmd->speed = SPEED_1000; cmd->duplex = DUPLEX_FULL; cmd->port = PORT_FIBRE; cmd->phy_address = 0; cmd->transceiver = XCVR_INTERNAL; cmd->autoneg = AUTONEG_ENABLE; cmd->maxtxpkt = 0; cmd->maxrxpkt = 1; return 0; } static void netdev_get_drvinfo (struct net_device *dev, struct ethtool_drvinfo *info) { strncpy(info->driver, ibmveth_driver_name, sizeof(info->driver) - 1); strncpy(info->version, ibmveth_driver_version, sizeof(info->version) - 1); } static u32 netdev_get_link(struct net_device *dev) { return 1; } static void ibmveth_set_rx_csum_flags(struct net_device *dev, u32 data) { struct ibmveth_adapter *adapter = dev->priv; if (data) adapter->rx_csum = 1; else { /* * Since the ibmveth firmware interface does not have the concept of * separate tx/rx checksum offload enable, if rx checksum is disabled * we also have to disable tx checksum offload. Once we disable rx * checksum offload, we are no longer allowed to send tx buffers that * are not properly checksummed. */ adapter->rx_csum = 0; dev->features &= ~NETIF_F_IP_CSUM; } } static void ibmveth_set_tx_csum_flags(struct net_device *dev, u32 data) { struct ibmveth_adapter *adapter = dev->priv; if (data) { dev->features |= NETIF_F_IP_CSUM; adapter->rx_csum = 1; } else dev->features &= ~NETIF_F_IP_CSUM; } static int ibmveth_set_csum_offload(struct net_device *dev, u32 data, void (*done) (struct net_device *, u32)) { struct ibmveth_adapter *adapter = dev->priv; u64 set_attr, clr_attr, ret_attr; long ret; int rc1 = 0, rc2 = 0; int restart = 0; if (netif_running(dev)) { restart = 1; adapter->pool_config = 1; ibmveth_close(dev); adapter->pool_config = 0; } set_attr = 0; clr_attr = 0; if (data) set_attr = IBMVETH_ILLAN_IPV4_TCP_CSUM; else clr_attr = IBMVETH_ILLAN_IPV4_TCP_CSUM; ret = h_illan_attributes(adapter->vdev->unit_address, 0, 0, &ret_attr); if (ret == H_SUCCESS && !(ret_attr & IBMVETH_ILLAN_ACTIVE_TRUNK) && !(ret_attr & IBMVETH_ILLAN_TRUNK_PRI_MASK) && (ret_attr & IBMVETH_ILLAN_PADDED_PKT_CSUM)) { ret = h_illan_attributes(adapter->vdev->unit_address, clr_attr, set_attr, &ret_attr); if (ret != H_SUCCESS) { rc1 = -EIO; ibmveth_error_printk("unable to change checksum offload settings." " %d rc=%ld\n", data, ret); ret = h_illan_attributes(adapter->vdev->unit_address, set_attr, clr_attr, &ret_attr); } else done(dev, data); } else { rc1 = -EIO; ibmveth_error_printk("unable to change checksum offload settings." " %d rc=%ld ret_attr=%lx\n", data, ret, ret_attr); } if (restart) rc2 = ibmveth_open(dev); return rc1 ? rc1 : rc2; } static int ibmveth_set_rx_csum(struct net_device *dev, u32 data) { struct ibmveth_adapter *adapter = dev->priv; if ((data && adapter->rx_csum) || (!data && !adapter->rx_csum)) return 0; return ibmveth_set_csum_offload(dev, data, ibmveth_set_rx_csum_flags); } static int ibmveth_set_tx_csum(struct net_device *dev, u32 data) { struct ibmveth_adapter *adapter = dev->priv; int rc = 0; if (data && (dev->features & NETIF_F_IP_CSUM)) return 0; if (!data && !(dev->features & NETIF_F_IP_CSUM)) return 0; if (data && !adapter->rx_csum) rc = ibmveth_set_csum_offload(dev, data, ibmveth_set_tx_csum_flags); else ibmveth_set_tx_csum_flags(dev, data); return rc; } static u32 ibmveth_get_rx_csum(struct net_device *dev) { struct ibmveth_adapter *adapter = dev->priv; return adapter->rx_csum; } static void ibmveth_get_strings(struct net_device *dev, u32 stringset, u8 *data) { int i; if (stringset != ETH_SS_STATS) return; for (i = 0; i < ARRAY_SIZE(ibmveth_stats); i++, data += ETH_GSTRING_LEN) memcpy(data, ibmveth_stats[i].name, ETH_GSTRING_LEN); } static int ibmveth_get_sset_count(struct net_device *dev, int sset) { switch (sset) { case ETH_SS_STATS: return ARRAY_SIZE(ibmveth_stats); default: return -EOPNOTSUPP; } } static void ibmveth_get_ethtool_stats(struct net_device *dev, struct ethtool_stats *stats, u64 *data) { int i; struct ibmveth_adapter *adapter = dev->priv; for (i = 0; i < ARRAY_SIZE(ibmveth_stats); i++) data[i] = IBMVETH_GET_STAT(adapter, ibmveth_stats[i].offset); } static const struct ethtool_ops netdev_ethtool_ops = { .get_drvinfo = netdev_get_drvinfo, .get_settings = netdev_get_settings, .get_link = netdev_get_link, .set_tx_csum = ibmveth_set_tx_csum, .get_rx_csum = ibmveth_get_rx_csum, .set_rx_csum = ibmveth_set_rx_csum, .get_strings = ibmveth_get_strings, .get_sset_count = ibmveth_get_sset_count, .get_ethtool_stats = ibmveth_get_ethtool_stats, }; static int ibmveth_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd) { return -EOPNOTSUPP; } #define page_offset(v) ((unsigned long)(v) & ((1 << 12) - 1)) static int ibmveth_start_xmit(struct sk_buff *skb, struct net_device *netdev) { struct ibmveth_adapter *adapter = netdev->priv; union ibmveth_buf_desc desc; unsigned long lpar_rc; unsigned long correlator; unsigned long flags; unsigned int retry_count; unsigned int tx_dropped = 0; unsigned int tx_bytes = 0; unsigned int tx_packets = 0; unsigned int tx_send_failed = 0; unsigned int tx_map_failed = 0; desc.fields.flags_len = IBMVETH_BUF_VALID | skb->len; desc.fields.address = dma_map_single(&adapter->vdev->dev, skb->data, skb->len, DMA_TO_DEVICE); if (skb->ip_summed == CHECKSUM_PARTIAL && ip_hdr(skb)->protocol != IPPROTO_TCP && skb_checksum_help(skb)) { ibmveth_error_printk("tx: failed to checksum packet\n"); tx_dropped++; goto out; } if (skb->ip_summed == CHECKSUM_PARTIAL) { unsigned char *buf = skb_transport_header(skb) + skb->csum_offset; desc.fields.flags_len |= (IBMVETH_BUF_NO_CSUM | IBMVETH_BUF_CSUM_GOOD); /* Need to zero out the checksum */ buf[0] = 0; buf[1] = 0; } if (dma_mapping_error(desc.fields.address)) { ibmveth_error_printk("tx: unable to map xmit buffer\n"); tx_map_failed++; tx_dropped++; goto out; } /* send the frame. Arbitrarily set retrycount to 1024 */ correlator = 0; retry_count = 1024; do { lpar_rc = h_send_logical_lan(adapter->vdev->unit_address, desc.desc, 0, 0, 0, 0, 0, correlator, &correlator); } while ((lpar_rc == H_BUSY) && (retry_count--)); if(lpar_rc != H_SUCCESS && lpar_rc != H_DROPPED) { ibmveth_error_printk("tx: h_send_logical_lan failed with rc=%ld\n", lpar_rc); ibmveth_error_printk("tx: valid=%d, len=%d, address=0x%08x\n", (desc.fields.flags_len & IBMVETH_BUF_VALID) ? 1 : 0, skb->len, desc.fields.address); tx_send_failed++; tx_dropped++; } else { tx_packets++; tx_bytes += skb->len; netdev->trans_start = jiffies; } dma_unmap_single(&adapter->vdev->dev, desc.fields.address, skb->len, DMA_TO_DEVICE); out: spin_lock_irqsave(&adapter->stats_lock, flags); netdev->stats.tx_dropped += tx_dropped; netdev->stats.tx_bytes += tx_bytes; netdev->stats.tx_packets += tx_packets; adapter->tx_send_failed += tx_send_failed; adapter->tx_map_failed += tx_map_failed; spin_unlock_irqrestore(&adapter->stats_lock, flags); dev_kfree_skb(skb); return 0; } static int ibmveth_poll(struct napi_struct *napi, int budget) { struct ibmveth_adapter *adapter = container_of(napi, struct ibmveth_adapter, napi); struct net_device *netdev = adapter->netdev; int frames_processed = 0; unsigned long lpar_rc; restart_poll: do { struct sk_buff *skb; if (!ibmveth_rxq_pending_buffer(adapter)) break; rmb(); if (!ibmveth_rxq_buffer_valid(adapter)) { wmb(); /* suggested by larson1 */ adapter->rx_invalid_buffer++; ibmveth_debug_printk("recycling invalid buffer\n"); ibmveth_rxq_recycle_buffer(adapter); } else { int length = ibmveth_rxq_frame_length(adapter); int offset = ibmveth_rxq_frame_offset(adapter); int csum_good = ibmveth_rxq_csum_good(adapter); skb = ibmveth_rxq_get_buffer(adapter); if (csum_good) skb->ip_summed = CHECKSUM_UNNECESSARY; ibmveth_rxq_harvest_buffer(adapter); skb_reserve(skb, offset); skb_put(skb, length); skb->protocol = eth_type_trans(skb, netdev); netif_receive_skb(skb); /* send it up */ netdev->stats.rx_packets++; netdev->stats.rx_bytes += length; frames_processed++; netdev->last_rx = jiffies; } } while (frames_processed < budget); ibmveth_replenish_task(adapter); if (frames_processed < budget) { /* We think we are done - reenable interrupts, * then check once more to make sure we are done. */ lpar_rc = h_vio_signal(adapter->vdev->unit_address, VIO_IRQ_ENABLE); ibmveth_assert(lpar_rc == H_SUCCESS); netif_rx_complete(netdev, napi); if (ibmveth_rxq_pending_buffer(adapter) && netif_rx_reschedule(netdev, napi)) { lpar_rc = h_vio_signal(adapter->vdev->unit_address, VIO_IRQ_DISABLE); goto restart_poll; } } return frames_processed; } static irqreturn_t ibmveth_interrupt(int irq, void *dev_instance) { struct net_device *netdev = dev_instance; struct ibmveth_adapter *adapter = netdev->priv; unsigned long lpar_rc; if (netif_rx_schedule_prep(netdev, &adapter->napi)) { lpar_rc = h_vio_signal(adapter->vdev->unit_address, VIO_IRQ_DISABLE); ibmveth_assert(lpar_rc == H_SUCCESS); __netif_rx_schedule(netdev, &adapter->napi); } return IRQ_HANDLED; } static void ibmveth_set_multicast_list(struct net_device *netdev) { struct ibmveth_adapter *adapter = netdev->priv; unsigned long lpar_rc; if((netdev->flags & IFF_PROMISC) || (netdev->mc_count > adapter->mcastFilterSize)) { lpar_rc = h_multicast_ctrl(adapter->vdev->unit_address, IbmVethMcastEnableRecv | IbmVethMcastDisableFiltering, 0); if(lpar_rc != H_SUCCESS) { ibmveth_error_printk("h_multicast_ctrl rc=%ld when entering promisc mode\n", lpar_rc); } } else { struct dev_mc_list *mclist = netdev->mc_list; int i; /* clear the filter table & disable filtering */ lpar_rc = h_multicast_ctrl(adapter->vdev->unit_address, IbmVethMcastEnableRecv | IbmVethMcastDisableFiltering | IbmVethMcastClearFilterTable, 0); if(lpar_rc != H_SUCCESS) { ibmveth_error_printk("h_multicast_ctrl rc=%ld when attempting to clear filter table\n", lpar_rc); } /* add the addresses to the filter table */ for(i = 0; i < netdev->mc_count; ++i, mclist = mclist->next) { // add the multicast address to the filter table unsigned long mcast_addr = 0; memcpy(((char *)&mcast_addr)+2, mclist->dmi_addr, 6); lpar_rc = h_multicast_ctrl(adapter->vdev->unit_address, IbmVethMcastAddFilter, mcast_addr); if(lpar_rc != H_SUCCESS) { ibmveth_error_printk("h_multicast_ctrl rc=%ld when adding an entry to the filter table\n", lpar_rc); } } /* re-enable filtering */ lpar_rc = h_multicast_ctrl(adapter->vdev->unit_address, IbmVethMcastEnableFiltering, 0); if(lpar_rc != H_SUCCESS) { ibmveth_error_printk("h_multicast_ctrl rc=%ld when enabling filtering\n", lpar_rc); } } } static int ibmveth_change_mtu(struct net_device *dev, int new_mtu) { struct ibmveth_adapter *adapter = dev->priv; int new_mtu_oh = new_mtu + IBMVETH_BUFF_OH; int reinit = 0; int i, rc; if (new_mtu < IBMVETH_MAX_MTU) return -EINVAL; for (i = 0; i < IbmVethNumBufferPools; i++) if (new_mtu_oh < adapter->rx_buff_pool[i].buff_size) break; if (i == IbmVethNumBufferPools) return -EINVAL; /* Look for an active buffer pool that can hold the new MTU */ for(i = 0; i<IbmVethNumBufferPools; i++) { if (!adapter->rx_buff_pool[i].active) { adapter->rx_buff_pool[i].active = 1; reinit = 1; } if (new_mtu_oh < adapter->rx_buff_pool[i].buff_size) { if (reinit && netif_running(adapter->netdev)) { adapter->pool_config = 1; ibmveth_close(adapter->netdev); adapter->pool_config = 0; dev->mtu = new_mtu; if ((rc = ibmveth_open(adapter->netdev))) return rc; } else dev->mtu = new_mtu; return 0; } } return -EINVAL; } #ifdef CONFIG_NET_POLL_CONTROLLER static void ibmveth_poll_controller(struct net_device *dev) { ibmveth_replenish_task(dev->priv); ibmveth_interrupt(dev->irq, dev); } #endif static int __devinit ibmveth_probe(struct vio_dev *dev, const struct vio_device_id *id) { int rc, i; long ret; struct net_device *netdev; struct ibmveth_adapter *adapter; u64 set_attr, ret_attr; unsigned char *mac_addr_p; unsigned int *mcastFilterSize_p; ibmveth_debug_printk_no_adapter("entering ibmveth_probe for UA 0x%x\n", dev->unit_address); mac_addr_p = (unsigned char *) vio_get_attribute(dev, VETH_MAC_ADDR, NULL); if(!mac_addr_p) { printk(KERN_ERR "(%s:%3.3d) ERROR: Can't find VETH_MAC_ADDR " "attribute\n", __FILE__, __LINE__); return 0; } mcastFilterSize_p = (unsigned int *) vio_get_attribute(dev, VETH_MCAST_FILTER_SIZE, NULL); if(!mcastFilterSize_p) { printk(KERN_ERR "(%s:%3.3d) ERROR: Can't find " "VETH_MCAST_FILTER_SIZE attribute\n", __FILE__, __LINE__); return 0; } netdev = alloc_etherdev(sizeof(struct ibmveth_adapter)); if(!netdev) return -ENOMEM; adapter = netdev->priv; dev->dev.driver_data = netdev; adapter->vdev = dev; adapter->netdev = netdev; adapter->mcastFilterSize= *mcastFilterSize_p; adapter->pool_config = 0; netif_napi_add(netdev, &adapter->napi, ibmveth_poll, 16); /* Some older boxes running PHYP non-natively have an OF that returns a 8-byte local-mac-address field (and the first 2 bytes have to be ignored) while newer boxes' OF return a 6-byte field. Note that IEEE 1275 specifies that local-mac-address must be a 6-byte field. The RPA doc specifies that the first byte must be 10b, so we'll just look for it to solve this 8 vs. 6 byte field issue */ if ((*mac_addr_p & 0x3) != 0x02) mac_addr_p += 2; adapter->mac_addr = 0; memcpy(&adapter->mac_addr, mac_addr_p, 6); netdev->irq = dev->irq; netdev->open = ibmveth_open; netdev->stop = ibmveth_close; netdev->hard_start_xmit = ibmveth_start_xmit; netdev->set_multicast_list = ibmveth_set_multicast_list; netdev->do_ioctl = ibmveth_ioctl; netdev->ethtool_ops = &netdev_ethtool_ops; netdev->change_mtu = ibmveth_change_mtu; SET_NETDEV_DEV(netdev, &dev->dev); #ifdef CONFIG_NET_POLL_CONTROLLER netdev->poll_controller = ibmveth_poll_controller; #endif netdev->features |= NETIF_F_LLTX; spin_lock_init(&adapter->stats_lock); memcpy(&netdev->dev_addr, &adapter->mac_addr, netdev->addr_len); for(i = 0; i<IbmVethNumBufferPools; i++) { struct kobject *kobj = &adapter->rx_buff_pool[i].kobj; int error; ibmveth_init_buffer_pool(&adapter->rx_buff_pool[i], i, pool_count[i], pool_size[i], pool_active[i]); error = kobject_init_and_add(kobj, &ktype_veth_pool, &dev->dev.kobj, "pool%d", i); if (!error) kobject_uevent(kobj, KOBJ_ADD); } ibmveth_debug_printk("adapter @ 0x%p\n", adapter); adapter->buffer_list_dma = DMA_ERROR_CODE; adapter->filter_list_dma = DMA_ERROR_CODE; adapter->rx_queue.queue_dma = DMA_ERROR_CODE; ibmveth_debug_printk("registering netdev...\n"); ret = h_illan_attributes(dev->unit_address, 0, 0, &ret_attr); if (ret == H_SUCCESS && !(ret_attr & IBMVETH_ILLAN_ACTIVE_TRUNK) && !(ret_attr & IBMVETH_ILLAN_TRUNK_PRI_MASK) && (ret_attr & IBMVETH_ILLAN_PADDED_PKT_CSUM)) { set_attr = IBMVETH_ILLAN_IPV4_TCP_CSUM; ret = h_illan_attributes(dev->unit_address, 0, set_attr, &ret_attr); if (ret == H_SUCCESS) { adapter->rx_csum = 1; netdev->features |= NETIF_F_IP_CSUM; } else ret = h_illan_attributes(dev->unit_address, set_attr, 0, &ret_attr); } rc = register_netdev(netdev); if(rc) { ibmveth_debug_printk("failed to register netdev rc=%d\n", rc); free_netdev(netdev); return rc; } ibmveth_debug_printk("registered\n"); ibmveth_proc_register_adapter(adapter); return 0; } static int __devexit ibmveth_remove(struct vio_dev *dev) { struct net_device *netdev = dev->dev.driver_data; struct ibmveth_adapter *adapter = netdev->priv; int i; for(i = 0; i<IbmVethNumBufferPools; i++) kobject_put(&adapter->rx_buff_pool[i].kobj); unregister_netdev(netdev); ibmveth_proc_unregister_adapter(adapter); free_netdev(netdev); return 0; } #ifdef CONFIG_PROC_FS static void ibmveth_proc_register_driver(void) { ibmveth_proc_dir = proc_mkdir(IBMVETH_PROC_DIR, init_net.proc_net); if (ibmveth_proc_dir) { } } static void ibmveth_proc_unregister_driver(void) { remove_proc_entry(IBMVETH_PROC_DIR, init_net.proc_net); } static void *ibmveth_seq_start(struct seq_file *seq, loff_t *pos) { if (*pos == 0) { return (void *)1; } else { return NULL; } } static void *ibmveth_seq_next(struct seq_file *seq, void *v, loff_t *pos) { ++*pos; return NULL; } static void ibmveth_seq_stop(struct seq_file *seq, void *v) { } static int ibmveth_seq_show(struct seq_file *seq, void *v) { struct ibmveth_adapter *adapter = seq->private; char *current_mac = ((char*) &adapter->netdev->dev_addr); char *firmware_mac = ((char*) &adapter->mac_addr) ; DECLARE_MAC_BUF(mac); seq_printf(seq, "%s %s\n\n", ibmveth_driver_string, ibmveth_driver_version); seq_printf(seq, "Unit Address: 0x%x\n", adapter->vdev->unit_address); seq_printf(seq, "Current MAC: %s\n", print_mac(mac, current_mac)); seq_printf(seq, "Firmware MAC: %s\n", print_mac(mac, firmware_mac)); seq_printf(seq, "\nAdapter Statistics:\n"); seq_printf(seq, " TX: vio_map_single failres: %ld\n", adapter->tx_map_failed); seq_printf(seq, " send failures: %ld\n", adapter->tx_send_failed); seq_printf(seq, " RX: replenish task cycles: %ld\n", adapter->replenish_task_cycles); seq_printf(seq, " alloc_skb_failures: %ld\n", adapter->replenish_no_mem); seq_printf(seq, " add buffer failures: %ld\n", adapter->replenish_add_buff_failure); seq_printf(seq, " invalid buffers: %ld\n", adapter->rx_invalid_buffer); seq_printf(seq, " no buffers: %ld\n", adapter->rx_no_buffer); return 0; } static struct seq_operations ibmveth_seq_ops = { .start = ibmveth_seq_start, .next = ibmveth_seq_next, .stop = ibmveth_seq_stop, .show = ibmveth_seq_show, }; static int ibmveth_proc_open(struct inode *inode, struct file *file) { struct seq_file *seq; struct proc_dir_entry *proc; int rc; rc = seq_open(file, &ibmveth_seq_ops); if (!rc) { /* recover the pointer buried in proc_dir_entry data */ seq = file->private_data; proc = PDE(inode); seq->private = proc->data; } return rc; } static const struct file_operations ibmveth_proc_fops = { .owner = THIS_MODULE, .open = ibmveth_proc_open, .read = seq_read, .llseek = seq_lseek, .release = seq_release, }; static void ibmveth_proc_register_adapter(struct ibmveth_adapter *adapter) { struct proc_dir_entry *entry; if (ibmveth_proc_dir) { char u_addr[10]; sprintf(u_addr, "%x", adapter->vdev->unit_address); entry = create_proc_entry(u_addr, S_IFREG, ibmveth_proc_dir); if (!entry) { ibmveth_error_printk("Cannot create adapter proc entry"); } else { entry->data = (void *) adapter; entry->proc_fops = &ibmveth_proc_fops; } } return; } static void ibmveth_proc_unregister_adapter(struct ibmveth_adapter *adapter) { if (ibmveth_proc_dir) { char u_addr[10]; sprintf(u_addr, "%x", adapter->vdev->unit_address); remove_proc_entry(u_addr, ibmveth_proc_dir); } } #else /* CONFIG_PROC_FS */ static void ibmveth_proc_register_adapter(struct ibmveth_adapter *adapter) { } static void ibmveth_proc_unregister_adapter(struct ibmveth_adapter *adapter) { } static void ibmveth_proc_register_driver(void) { } static void ibmveth_proc_unregister_driver(void) { } #endif /* CONFIG_PROC_FS */ static struct attribute veth_active_attr; static struct attribute veth_num_attr; static struct attribute veth_size_attr; static ssize_t veth_pool_show(struct kobject * kobj, struct attribute * attr, char * buf) { struct ibmveth_buff_pool *pool = container_of(kobj, struct ibmveth_buff_pool, kobj); if (attr == &veth_active_attr) return sprintf(buf, "%d\n", pool->active); else if (attr == &veth_num_attr) return sprintf(buf, "%d\n", pool->size); else if (attr == &veth_size_attr) return sprintf(buf, "%d\n", pool->buff_size); return 0; } static ssize_t veth_pool_store(struct kobject * kobj, struct attribute * attr, const char * buf, size_t count) { struct ibmveth_buff_pool *pool = container_of(kobj, struct ibmveth_buff_pool, kobj); struct net_device *netdev = container_of(kobj->parent, struct device, kobj)->driver_data; struct ibmveth_adapter *adapter = netdev->priv; long value = simple_strtol(buf, NULL, 10); long rc; if (attr == &veth_active_attr) { if (value && !pool->active) { if (netif_running(netdev)) { if(ibmveth_alloc_buffer_pool(pool)) { ibmveth_error_printk("unable to alloc pool\n"); return -ENOMEM; } pool->active = 1; adapter->pool_config = 1; ibmveth_close(netdev); adapter->pool_config = 0; if ((rc = ibmveth_open(netdev))) return rc; } else pool->active = 1; } else if (!value && pool->active) { int mtu = netdev->mtu + IBMVETH_BUFF_OH; int i; /* Make sure there is a buffer pool with buffers that can hold a packet of the size of the MTU */ for (i = 0; i < IbmVethNumBufferPools; i++) { if (pool == &adapter->rx_buff_pool[i]) continue; if (!adapter->rx_buff_pool[i].active) continue; if (mtu <= adapter->rx_buff_pool[i].buff_size) break; } if (i == IbmVethNumBufferPools) { ibmveth_error_printk("no active pool >= MTU\n"); return -EPERM; } pool->active = 0; if (netif_running(netdev)) { adapter->pool_config = 1; ibmveth_close(netdev); adapter->pool_config = 0; if ((rc = ibmveth_open(netdev))) return rc; } } } else if (attr == &veth_num_attr) { if (value <= 0 || value > IBMVETH_MAX_POOL_COUNT) return -EINVAL; else { if (netif_running(netdev)) { adapter->pool_config = 1; ibmveth_close(netdev); adapter->pool_config = 0; pool->size = value; if ((rc = ibmveth_open(netdev))) return rc; } else pool->size = value; } } else if (attr == &veth_size_attr) { if (value <= IBMVETH_BUFF_OH || value > IBMVETH_MAX_BUF_SIZE) return -EINVAL; else { if (netif_running(netdev)) { adapter->pool_config = 1; ibmveth_close(netdev); adapter->pool_config = 0; pool->buff_size = value; if ((rc = ibmveth_open(netdev))) return rc; } else pool->buff_size = value; } } /* kick the interrupt handler to allocate/deallocate pools */ ibmveth_interrupt(netdev->irq, netdev); return count; } #define ATTR(_name, _mode) \ struct attribute veth_##_name##_attr = { \ .name = __stringify(_name), .mode = _mode, \ }; static ATTR(active, 0644); static ATTR(num, 0644); static ATTR(size, 0644); static struct attribute * veth_pool_attrs[] = { &veth_active_attr, &veth_num_attr, &veth_size_attr, NULL, }; static struct sysfs_ops veth_pool_ops = { .show = veth_pool_show, .store = veth_pool_store, }; static struct kobj_type ktype_veth_pool = { .release = NULL, .sysfs_ops = &veth_pool_ops, .default_attrs = veth_pool_attrs, }; static struct vio_device_id ibmveth_device_table[] __devinitdata= { { "network", "IBM,l-lan"}, { "", "" } }; MODULE_DEVICE_TABLE(vio, ibmveth_device_table); static struct vio_driver ibmveth_driver = { .id_table = ibmveth_device_table, .probe = ibmveth_probe, .remove = ibmveth_remove, .driver = { .name = ibmveth_driver_name, .owner = THIS_MODULE, } }; static int __init ibmveth_module_init(void) { ibmveth_printk("%s: %s %s\n", ibmveth_driver_name, ibmveth_driver_string, ibmveth_driver_version); ibmveth_proc_register_driver(); return vio_register_driver(&ibmveth_driver); } static void __exit ibmveth_module_exit(void) { vio_unregister_driver(&ibmveth_driver); ibmveth_proc_unregister_driver(); } module_init(ibmveth_module_init); module_exit(ibmveth_module_exit);