bcm_sf2_cfp.c 28.9 KB
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/*
 * Broadcom Starfighter 2 DSA switch CFP support
 *
 * Copyright (C) 2016, Broadcom
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
 */

#include <linux/list.h>
#include <linux/ethtool.h>
#include <linux/if_ether.h>
#include <linux/in.h>
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#include <linux/netdevice.h>
#include <net/dsa.h>
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#include <linux/bitmap.h>

#include "bcm_sf2.h"
#include "bcm_sf2_regs.h"

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struct cfp_rule {
	int port;
	struct ethtool_rx_flow_spec fs;
	struct list_head next;
};

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struct cfp_udf_slice_layout {
	u8 slices[UDFS_PER_SLICE];
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	u32 mask_value;
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	u32 base_offset;
};
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struct cfp_udf_layout {
	struct cfp_udf_slice_layout udfs[UDF_NUM_SLICES];
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};

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static const u8 zero_slice[UDFS_PER_SLICE] = { };

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/* UDF slices layout for a TCPv4/UDPv4 specification */
static const struct cfp_udf_layout udf_tcpip4_layout = {
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	.udfs = {
		[1] = {
			.slices = {
				/* End of L2, byte offset 12, src IP[0:15] */
				CFG_UDF_EOL2 | 6,
				/* End of L2, byte offset 14, src IP[16:31] */
				CFG_UDF_EOL2 | 7,
				/* End of L2, byte offset 16, dst IP[0:15] */
				CFG_UDF_EOL2 | 8,
				/* End of L2, byte offset 18, dst IP[16:31] */
				CFG_UDF_EOL2 | 9,
				/* End of L3, byte offset 0, src port */
				CFG_UDF_EOL3 | 0,
				/* End of L3, byte offset 2, dst port */
				CFG_UDF_EOL3 | 1,
				0, 0, 0
			},
			.mask_value = L3_FRAMING_MASK | IPPROTO_MASK | IP_FRAG,
			.base_offset = CORE_UDF_0_A_0_8_PORT_0 + UDF_SLICE_OFFSET,
		},
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	},
};

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/* UDF slices layout for a TCPv6/UDPv6 specification */
static const struct cfp_udf_layout udf_tcpip6_layout = {
	.udfs = {
		[0] = {
			.slices = {
				/* End of L2, byte offset 8, src IP[0:15] */
				CFG_UDF_EOL2 | 4,
				/* End of L2, byte offset 10, src IP[16:31] */
				CFG_UDF_EOL2 | 5,
				/* End of L2, byte offset 12, src IP[32:47] */
				CFG_UDF_EOL2 | 6,
				/* End of L2, byte offset 14, src IP[48:63] */
				CFG_UDF_EOL2 | 7,
				/* End of L2, byte offset 16, src IP[64:79] */
				CFG_UDF_EOL2 | 8,
				/* End of L2, byte offset 18, src IP[80:95] */
				CFG_UDF_EOL2 | 9,
				/* End of L2, byte offset 20, src IP[96:111] */
				CFG_UDF_EOL2 | 10,
				/* End of L2, byte offset 22, src IP[112:127] */
				CFG_UDF_EOL2 | 11,
				/* End of L3, byte offset 0, src port */
				CFG_UDF_EOL3 | 0,
			},
			.mask_value = L3_FRAMING_MASK | IPPROTO_MASK | IP_FRAG,
			.base_offset = CORE_UDF_0_B_0_8_PORT_0,
		},
		[3] = {
			.slices = {
				/* End of L2, byte offset 24, dst IP[0:15] */
				CFG_UDF_EOL2 | 12,
				/* End of L2, byte offset 26, dst IP[16:31] */
				CFG_UDF_EOL2 | 13,
				/* End of L2, byte offset 28, dst IP[32:47] */
				CFG_UDF_EOL2 | 14,
				/* End of L2, byte offset 30, dst IP[48:63] */
				CFG_UDF_EOL2 | 15,
				/* End of L2, byte offset 32, dst IP[64:79] */
				CFG_UDF_EOL2 | 16,
				/* End of L2, byte offset 34, dst IP[80:95] */
				CFG_UDF_EOL2 | 17,
				/* End of L2, byte offset 36, dst IP[96:111] */
				CFG_UDF_EOL2 | 18,
				/* End of L2, byte offset 38, dst IP[112:127] */
				CFG_UDF_EOL2 | 19,
				/* End of L3, byte offset 2, dst port */
				CFG_UDF_EOL3 | 1,
			},
			.mask_value = L3_FRAMING_MASK | IPPROTO_MASK | IP_FRAG,
			.base_offset = CORE_UDF_0_D_0_11_PORT_0,
		},
	},
};

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static inline unsigned int bcm_sf2_get_num_udf_slices(const u8 *layout)
{
	unsigned int i, count = 0;

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	for (i = 0; i < UDFS_PER_SLICE; i++) {
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		if (layout[i] != 0)
			count++;
	}

	return count;
}

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static inline u32 udf_upper_bits(unsigned int num_udf)
{
	return GENMASK(num_udf - 1, 0) >> (UDFS_PER_SLICE - 1);
}

static inline u32 udf_lower_bits(unsigned int num_udf)
{
	return (u8)GENMASK(num_udf - 1, 0);
}

static unsigned int bcm_sf2_get_slice_number(const struct cfp_udf_layout *l,
					     unsigned int start)
{
	const struct cfp_udf_slice_layout *slice_layout;
	unsigned int slice_idx;

	for (slice_idx = start; slice_idx < UDF_NUM_SLICES; slice_idx++) {
		slice_layout = &l->udfs[slice_idx];
		if (memcmp(slice_layout->slices, zero_slice,
			   sizeof(zero_slice)))
			break;
	}

	return slice_idx;
}

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static void bcm_sf2_cfp_udf_set(struct bcm_sf2_priv *priv,
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				const struct cfp_udf_layout *layout,
				unsigned int slice_num)
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{
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	u32 offset = layout->udfs[slice_num].base_offset;
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	unsigned int i;

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	for (i = 0; i < UDFS_PER_SLICE; i++)
		core_writel(priv, layout->udfs[slice_num].slices[i],
			    offset + i * 4);
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}

static int bcm_sf2_cfp_op(struct bcm_sf2_priv *priv, unsigned int op)
{
	unsigned int timeout = 1000;
	u32 reg;

	reg = core_readl(priv, CORE_CFP_ACC);
	reg &= ~(OP_SEL_MASK | RAM_SEL_MASK);
	reg |= OP_STR_DONE | op;
	core_writel(priv, reg, CORE_CFP_ACC);

	do {
		reg = core_readl(priv, CORE_CFP_ACC);
		if (!(reg & OP_STR_DONE))
			break;

		cpu_relax();
	} while (timeout--);

	if (!timeout)
		return -ETIMEDOUT;

	return 0;
}

static inline void bcm_sf2_cfp_rule_addr_set(struct bcm_sf2_priv *priv,
					     unsigned int addr)
{
	u32 reg;

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	WARN_ON(addr >= priv->num_cfp_rules);
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	reg = core_readl(priv, CORE_CFP_ACC);
	reg &= ~(XCESS_ADDR_MASK << XCESS_ADDR_SHIFT);
	reg |= addr << XCESS_ADDR_SHIFT;
	core_writel(priv, reg, CORE_CFP_ACC);
}

static inline unsigned int bcm_sf2_cfp_rule_size(struct bcm_sf2_priv *priv)
{
	/* Entry #0 is reserved */
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	return priv->num_cfp_rules - 1;
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}

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static int bcm_sf2_cfp_act_pol_set(struct bcm_sf2_priv *priv,
				   unsigned int rule_index,
				   unsigned int port_num,
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				   unsigned int queue_num,
				   bool fwd_map_change)
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{
	int ret;
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	u32 reg;
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	/* Replace ARL derived destination with DST_MAP derived, define
	 * which port and queue this should be forwarded to.
	 */
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	if (fwd_map_change)
		reg = CHANGE_FWRD_MAP_IB_REP_ARL |
		      BIT(port_num + DST_MAP_IB_SHIFT) |
		      CHANGE_TC | queue_num << NEW_TC_SHIFT;
	else
		reg = 0;
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	core_writel(priv, reg, CORE_ACT_POL_DATA0);
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	/* Set classification ID that needs to be put in Broadcom tag */
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	core_writel(priv, rule_index << CHAIN_ID_SHIFT, CORE_ACT_POL_DATA1);
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	core_writel(priv, 0, CORE_ACT_POL_DATA2);
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	/* Configure policer RAM now */
	ret = bcm_sf2_cfp_op(priv, OP_SEL_WRITE | ACT_POL_RAM);
	if (ret) {
		pr_err("Policer entry at %d failed\n", rule_index);
		return ret;
	}
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	/* Disable the policer */
	core_writel(priv, POLICER_MODE_DISABLE, CORE_RATE_METER0);

	/* Now the rate meter */
	ret = bcm_sf2_cfp_op(priv, OP_SEL_WRITE | RATE_METER_RAM);
	if (ret) {
		pr_err("Meter entry at %d failed\n", rule_index);
		return ret;
	}

	return 0;
}

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static void bcm_sf2_cfp_slice_ipv4(struct bcm_sf2_priv *priv,
				   struct ethtool_tcpip4_spec *v4_spec,
				   unsigned int slice_num,
				   bool mask)
{
	u32 reg, offset;

	/* C-Tag		[31:24]
	 * UDF_n_A8		[23:8]
	 * UDF_n_A7		[7:0]
	 */
	reg = 0;
	if (mask)
		offset = CORE_CFP_MASK_PORT(4);
	else
		offset = CORE_CFP_DATA_PORT(4);
	core_writel(priv, reg, offset);

	/* UDF_n_A7		[31:24]
	 * UDF_n_A6		[23:8]
	 * UDF_n_A5		[7:0]
	 */
	reg = be16_to_cpu(v4_spec->pdst) >> 8;
	if (mask)
		offset = CORE_CFP_MASK_PORT(3);
	else
		offset = CORE_CFP_DATA_PORT(3);
	core_writel(priv, reg, offset);

	/* UDF_n_A5		[31:24]
	 * UDF_n_A4		[23:8]
	 * UDF_n_A3		[7:0]
	 */
	reg = (be16_to_cpu(v4_spec->pdst) & 0xff) << 24 |
	      (u32)be16_to_cpu(v4_spec->psrc) << 8 |
	      (be32_to_cpu(v4_spec->ip4dst) & 0x0000ff00) >> 8;
	if (mask)
		offset = CORE_CFP_MASK_PORT(2);
	else
		offset = CORE_CFP_DATA_PORT(2);
	core_writel(priv, reg, offset);

	/* UDF_n_A3		[31:24]
	 * UDF_n_A2		[23:8]
	 * UDF_n_A1		[7:0]
	 */
	reg = (u32)(be32_to_cpu(v4_spec->ip4dst) & 0xff) << 24 |
	      (u32)(be32_to_cpu(v4_spec->ip4dst) >> 16) << 8 |
	      (be32_to_cpu(v4_spec->ip4src) & 0x0000ff00) >> 8;
	if (mask)
		offset = CORE_CFP_MASK_PORT(1);
	else
		offset = CORE_CFP_DATA_PORT(1);
	core_writel(priv, reg, offset);

	/* UDF_n_A1		[31:24]
	 * UDF_n_A0		[23:8]
	 * Reserved		[7:4]
	 * Slice ID		[3:2]
	 * Slice valid		[1:0]
	 */
	reg = (u32)(be32_to_cpu(v4_spec->ip4src) & 0xff) << 24 |
	      (u32)(be32_to_cpu(v4_spec->ip4src) >> 16) << 8 |
	      SLICE_NUM(slice_num) | SLICE_VALID;
	if (mask)
		offset = CORE_CFP_MASK_PORT(0);
	else
		offset = CORE_CFP_DATA_PORT(0);
	core_writel(priv, reg, offset);
}

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static int bcm_sf2_cfp_ipv4_rule_set(struct bcm_sf2_priv *priv, int port,
				     unsigned int port_num,
				     unsigned int queue_num,
				     struct ethtool_rx_flow_spec *fs)
{
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	struct ethtool_tcpip4_spec *v4_spec, *v4_m_spec;
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	const struct cfp_udf_layout *layout;
	unsigned int slice_num, rule_index;
	u8 ip_proto, ip_frag;
	u8 num_udf;
	u32 reg;
	int ret;
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	switch (fs->flow_type & ~FLOW_EXT) {
	case TCP_V4_FLOW:
		ip_proto = IPPROTO_TCP;
		v4_spec = &fs->h_u.tcp_ip4_spec;
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		v4_m_spec = &fs->m_u.tcp_ip4_spec;
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		break;
	case UDP_V4_FLOW:
		ip_proto = IPPROTO_UDP;
		v4_spec = &fs->h_u.udp_ip4_spec;
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		v4_m_spec = &fs->m_u.udp_ip4_spec;
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		break;
	default:
		return -EINVAL;
	}

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	ip_frag = be32_to_cpu(fs->m_ext.data[0]);

	/* Locate the first rule available */
	if (fs->location == RX_CLS_LOC_ANY)
		rule_index = find_first_zero_bit(priv->cfp.used,
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						 priv->num_cfp_rules);
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	else
		rule_index = fs->location;

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	if (rule_index > bcm_sf2_cfp_rule_size(priv))
		return -ENOSPC;

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	layout = &udf_tcpip4_layout;
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	/* We only use one UDF slice for now */
	slice_num = bcm_sf2_get_slice_number(layout, 0);
	if (slice_num == UDF_NUM_SLICES)
		return -EINVAL;

	num_udf = bcm_sf2_get_num_udf_slices(layout->udfs[slice_num].slices);
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	/* Apply the UDF layout for this filter */
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	bcm_sf2_cfp_udf_set(priv, layout, slice_num);
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	/* Apply to all packets received through this port */
	core_writel(priv, BIT(port), CORE_CFP_DATA_PORT(7));

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	/* Source port map match */
	core_writel(priv, 0xff, CORE_CFP_MASK_PORT(7));

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	/* S-Tag status		[31:30]
	 * C-Tag status		[29:28]
	 * L2 framing		[27:26]
	 * L3 framing		[25:24]
	 * IP ToS		[23:16]
	 * IP proto		[15:08]
	 * IP Fragm		[7]
	 * Non 1st frag		[6]
	 * IP Authen		[5]
	 * TTL range		[4:3]
	 * PPPoE session	[2]
	 * Reserved		[1]
	 * UDF_Valid[8]		[0]
	 */
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	core_writel(priv, v4_spec->tos << IPTOS_SHIFT |
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		    ip_proto << IPPROTO_SHIFT | ip_frag << IP_FRAG_SHIFT |
		    udf_upper_bits(num_udf),
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		    CORE_CFP_DATA_PORT(6));

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	/* Mask with the specific layout for IPv4 packets */
	core_writel(priv, layout->udfs[slice_num].mask_value |
		    udf_upper_bits(num_udf), CORE_CFP_MASK_PORT(6));

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	/* UDF_Valid[7:0]	[31:24]
	 * S-Tag		[23:8]
	 * C-Tag		[7:0]
	 */
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	core_writel(priv, udf_lower_bits(num_udf) << 24, CORE_CFP_DATA_PORT(5));
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	/* Mask all but valid UDFs */
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	core_writel(priv, udf_lower_bits(num_udf) << 24, CORE_CFP_MASK_PORT(5));
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	/* Program the match and the mask */
	bcm_sf2_cfp_slice_ipv4(priv, v4_spec, slice_num, false);
	bcm_sf2_cfp_slice_ipv4(priv, v4_m_spec, SLICE_NUM_MASK, true);
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	/* Insert into TCAM now */
	bcm_sf2_cfp_rule_addr_set(priv, rule_index);

	ret = bcm_sf2_cfp_op(priv, OP_SEL_WRITE | TCAM_SEL);
	if (ret) {
		pr_err("TCAM entry at addr %d failed\n", rule_index);
		return ret;
	}

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	/* Insert into Action and policer RAMs now */
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	ret = bcm_sf2_cfp_act_pol_set(priv, rule_index, port_num,
				      queue_num, true);
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	if (ret)
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		return ret;

	/* Turn on CFP for this rule now */
	reg = core_readl(priv, CORE_CFP_CTL_REG);
	reg |= BIT(port);
	core_writel(priv, reg, CORE_CFP_CTL_REG);

	/* Flag the rule as being used and return it */
	set_bit(rule_index, priv->cfp.used);
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	set_bit(rule_index, priv->cfp.unique);
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	fs->location = rule_index;

	return 0;
}

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static void bcm_sf2_cfp_slice_ipv6(struct bcm_sf2_priv *priv,
				   const __be32 *ip6_addr, const __be16 port,
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				   unsigned int slice_num,
				   bool mask)
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{
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	u32 reg, tmp, val, offset;
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	/* C-Tag		[31:24]
	 * UDF_n_B8		[23:8]	(port)
	 * UDF_n_B7 (upper)	[7:0]	(addr[15:8])
	 */
	reg = be32_to_cpu(ip6_addr[3]);
	val = (u32)be16_to_cpu(port) << 8 | ((reg >> 8) & 0xff);
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	if (mask)
		offset = CORE_CFP_MASK_PORT(4);
	else
		offset = CORE_CFP_DATA_PORT(4);
	core_writel(priv, val, offset);
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	/* UDF_n_B7 (lower)	[31:24]	(addr[7:0])
	 * UDF_n_B6		[23:8] (addr[31:16])
	 * UDF_n_B5 (upper)	[7:0] (addr[47:40])
	 */
	tmp = be32_to_cpu(ip6_addr[2]);
	val = (u32)(reg & 0xff) << 24 | (u32)(reg >> 16) << 8 |
	      ((tmp >> 8) & 0xff);
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	if (mask)
		offset = CORE_CFP_MASK_PORT(3);
	else
		offset = CORE_CFP_DATA_PORT(3);
	core_writel(priv, val, offset);
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	/* UDF_n_B5 (lower)	[31:24] (addr[39:32])
	 * UDF_n_B4		[23:8] (addr[63:48])
	 * UDF_n_B3 (upper)	[7:0] (addr[79:72])
	 */
	reg = be32_to_cpu(ip6_addr[1]);
	val = (u32)(tmp & 0xff) << 24 | (u32)(tmp >> 16) << 8 |
	      ((reg >> 8) & 0xff);
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	if (mask)
		offset = CORE_CFP_MASK_PORT(2);
	else
		offset = CORE_CFP_DATA_PORT(2);
	core_writel(priv, val, offset);
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	/* UDF_n_B3 (lower)	[31:24] (addr[71:64])
	 * UDF_n_B2		[23:8] (addr[95:80])
	 * UDF_n_B1 (upper)	[7:0] (addr[111:104])
	 */
	tmp = be32_to_cpu(ip6_addr[0]);
	val = (u32)(reg & 0xff) << 24 | (u32)(reg >> 16) << 8 |
	      ((tmp >> 8) & 0xff);
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	if (mask)
		offset = CORE_CFP_MASK_PORT(1);
	else
		offset = CORE_CFP_DATA_PORT(1);
	core_writel(priv, val, offset);
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	/* UDF_n_B1 (lower)	[31:24] (addr[103:96])
	 * UDF_n_B0		[23:8] (addr[127:112])
	 * Reserved		[7:4]
	 * Slice ID		[3:2]
	 * Slice valid		[1:0]
	 */
	reg = (u32)(tmp & 0xff) << 24 | (u32)(tmp >> 16) << 8 |
	       SLICE_NUM(slice_num) | SLICE_VALID;
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	if (mask)
		offset = CORE_CFP_MASK_PORT(0);
	else
		offset = CORE_CFP_DATA_PORT(0);
	core_writel(priv, reg, offset);
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}

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static struct cfp_rule *bcm_sf2_cfp_rule_find(struct bcm_sf2_priv *priv,
					      int port, u32 location)
{
	struct cfp_rule *rule = NULL;

	list_for_each_entry(rule, &priv->cfp.rules_list, next) {
		if (rule->port == port && rule->fs.location == location)
			break;
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	}
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	return rule;
}

static int bcm_sf2_cfp_rule_cmp(struct bcm_sf2_priv *priv, int port,
				struct ethtool_rx_flow_spec *fs)
{
	struct cfp_rule *rule = NULL;
	size_t fs_size = 0;
	int ret = 1;

	if (list_empty(&priv->cfp.rules_list))
		return ret;

	list_for_each_entry(rule, &priv->cfp.rules_list, next) {
		ret = 1;
		if (rule->port != port)
			continue;

		if (rule->fs.flow_type != fs->flow_type ||
		    rule->fs.ring_cookie != fs->ring_cookie ||
		    rule->fs.m_ext.data[0] != fs->m_ext.data[0])
			continue;

		switch (fs->flow_type & ~FLOW_EXT) {
		case TCP_V6_FLOW:
		case UDP_V6_FLOW:
			fs_size = sizeof(struct ethtool_tcpip6_spec);
			break;
		case TCP_V4_FLOW:
		case UDP_V4_FLOW:
			fs_size = sizeof(struct ethtool_tcpip4_spec);
			break;
		default:
			continue;
		}

		ret = memcmp(&rule->fs.h_u, &fs->h_u, fs_size);
		ret |= memcmp(&rule->fs.m_u, &fs->m_u, fs_size);
		if (ret == 0)
			break;
	}

	return ret;
}

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static int bcm_sf2_cfp_ipv6_rule_set(struct bcm_sf2_priv *priv, int port,
				     unsigned int port_num,
				     unsigned int queue_num,
				     struct ethtool_rx_flow_spec *fs)
{
584
	struct ethtool_tcpip6_spec *v6_spec, *v6_m_spec;
585 586 587 588 589 590 591 592 593 594 595
	unsigned int slice_num, rule_index[2];
	const struct cfp_udf_layout *layout;
	u8 ip_proto, ip_frag;
	int ret = 0;
	u8 num_udf;
	u32 reg;

	switch (fs->flow_type & ~FLOW_EXT) {
	case TCP_V6_FLOW:
		ip_proto = IPPROTO_TCP;
		v6_spec = &fs->h_u.tcp_ip6_spec;
596
		v6_m_spec = &fs->m_u.tcp_ip6_spec;
597 598 599 600
		break;
	case UDP_V6_FLOW:
		ip_proto = IPPROTO_UDP;
		v6_spec = &fs->h_u.udp_ip6_spec;
601
		v6_m_spec = &fs->m_u.udp_ip6_spec;
602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628
		break;
	default:
		return -EINVAL;
	}

	ip_frag = be32_to_cpu(fs->m_ext.data[0]);

	layout = &udf_tcpip6_layout;
	slice_num = bcm_sf2_get_slice_number(layout, 0);
	if (slice_num == UDF_NUM_SLICES)
		return -EINVAL;

	num_udf = bcm_sf2_get_num_udf_slices(layout->udfs[slice_num].slices);

	/* Negotiate two indexes, one for the second half which we are chained
	 * from, which is what we will return to user-space, and a second one
	 * which is used to store its first half. That first half does not
	 * allow any choice of placement, so it just needs to find the next
	 * available bit. We return the second half as fs->location because
	 * that helps with the rule lookup later on since the second half is
	 * chained from its first half, we can easily identify IPv6 CFP rules
	 * by looking whether they carry a CHAIN_ID.
	 *
	 * We also want the second half to have a lower rule_index than its
	 * first half because the HW search is by incrementing addresses.
	 */
	if (fs->location == RX_CLS_LOC_ANY)
629 630
		rule_index[1] = find_first_zero_bit(priv->cfp.used,
						    priv->num_cfp_rules);
631
	else
632 633 634
		rule_index[1] = fs->location;
	if (rule_index[1] > bcm_sf2_cfp_rule_size(priv))
		return -ENOSPC;
635 636 637 638

	/* Flag it as used (cleared on error path) such that we can immediately
	 * obtain a second one to chain from.
	 */
639
	set_bit(rule_index[1], priv->cfp.used);
640

641 642 643
	rule_index[0] = find_first_zero_bit(priv->cfp.used,
					    priv->num_cfp_rules);
	if (rule_index[0] > bcm_sf2_cfp_rule_size(priv)) {
644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690
		ret = -ENOSPC;
		goto out_err;
	}

	/* Apply the UDF layout for this filter */
	bcm_sf2_cfp_udf_set(priv, layout, slice_num);

	/* Apply to all packets received through this port */
	core_writel(priv, BIT(port), CORE_CFP_DATA_PORT(7));

	/* Source port map match */
	core_writel(priv, 0xff, CORE_CFP_MASK_PORT(7));

	/* S-Tag status		[31:30]
	 * C-Tag status		[29:28]
	 * L2 framing		[27:26]
	 * L3 framing		[25:24]
	 * IP ToS		[23:16]
	 * IP proto		[15:08]
	 * IP Fragm		[7]
	 * Non 1st frag		[6]
	 * IP Authen		[5]
	 * TTL range		[4:3]
	 * PPPoE session	[2]
	 * Reserved		[1]
	 * UDF_Valid[8]		[0]
	 */
	reg = 1 << L3_FRAMING_SHIFT | ip_proto << IPPROTO_SHIFT |
		ip_frag << IP_FRAG_SHIFT | udf_upper_bits(num_udf);
	core_writel(priv, reg, CORE_CFP_DATA_PORT(6));

	/* Mask with the specific layout for IPv6 packets including
	 * UDF_Valid[8]
	 */
	reg = layout->udfs[slice_num].mask_value | udf_upper_bits(num_udf);
	core_writel(priv, reg, CORE_CFP_MASK_PORT(6));

	/* UDF_Valid[7:0]	[31:24]
	 * S-Tag		[23:8]
	 * C-Tag		[7:0]
	 */
	core_writel(priv, udf_lower_bits(num_udf) << 24, CORE_CFP_DATA_PORT(5));

	/* Mask all but valid UDFs */
	core_writel(priv, udf_lower_bits(num_udf) << 24, CORE_CFP_MASK_PORT(5));

	/* Slice the IPv6 source address and port */
691 692 693
	bcm_sf2_cfp_slice_ipv6(priv, v6_spec->ip6src, v6_spec->psrc,
				slice_num, false);
	bcm_sf2_cfp_slice_ipv6(priv, v6_m_spec->ip6src, v6_m_spec->psrc,
694
				SLICE_NUM_MASK, true);
695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750

	/* Insert into TCAM now because we need to insert a second rule */
	bcm_sf2_cfp_rule_addr_set(priv, rule_index[0]);

	ret = bcm_sf2_cfp_op(priv, OP_SEL_WRITE | TCAM_SEL);
	if (ret) {
		pr_err("TCAM entry at addr %d failed\n", rule_index[0]);
		goto out_err;
	}

	/* Insert into Action and policer RAMs now */
	ret = bcm_sf2_cfp_act_pol_set(priv, rule_index[0], port_num,
				      queue_num, false);
	if (ret)
		goto out_err;

	/* Now deal with the second slice to chain this rule */
	slice_num = bcm_sf2_get_slice_number(layout, slice_num + 1);
	if (slice_num == UDF_NUM_SLICES) {
		ret = -EINVAL;
		goto out_err;
	}

	num_udf = bcm_sf2_get_num_udf_slices(layout->udfs[slice_num].slices);

	/* Apply the UDF layout for this filter */
	bcm_sf2_cfp_udf_set(priv, layout, slice_num);

	/* Chained rule, source port match is coming from the rule we are
	 * chained from.
	 */
	core_writel(priv, 0, CORE_CFP_DATA_PORT(7));
	core_writel(priv, 0, CORE_CFP_MASK_PORT(7));

	/*
	 * CHAIN ID		[31:24] chain to previous slice
	 * Reserved		[23:20]
	 * UDF_Valid[11:8]	[19:16]
	 * UDF_Valid[7:0]	[15:8]
	 * UDF_n_D11		[7:0]
	 */
	reg = rule_index[0] << 24 | udf_upper_bits(num_udf) << 16 |
		udf_lower_bits(num_udf) << 8;
	core_writel(priv, reg, CORE_CFP_DATA_PORT(6));

	/* Mask all except chain ID, UDF Valid[8] and UDF Valid[7:0] */
	reg = XCESS_ADDR_MASK << 24 | udf_upper_bits(num_udf) << 16 |
		udf_lower_bits(num_udf) << 8;
	core_writel(priv, reg, CORE_CFP_MASK_PORT(6));

	/* Don't care */
	core_writel(priv, 0, CORE_CFP_DATA_PORT(5));

	/* Mask all */
	core_writel(priv, 0, CORE_CFP_MASK_PORT(5));

751 752 753 754
	bcm_sf2_cfp_slice_ipv6(priv, v6_spec->ip6dst, v6_spec->pdst, slice_num,
			       false);
	bcm_sf2_cfp_slice_ipv6(priv, v6_m_spec->ip6dst, v6_m_spec->pdst,
			       SLICE_NUM_MASK, true);
755 756 757 758 759 760 761 762 763 764 765 766 767

	/* Insert into TCAM now */
	bcm_sf2_cfp_rule_addr_set(priv, rule_index[1]);

	ret = bcm_sf2_cfp_op(priv, OP_SEL_WRITE | TCAM_SEL);
	if (ret) {
		pr_err("TCAM entry at addr %d failed\n", rule_index[1]);
		goto out_err;
	}

	/* Insert into Action and policer RAMs now, set chain ID to
	 * the one we are chained to
	 */
768
	ret = bcm_sf2_cfp_act_pol_set(priv, rule_index[1], port_num,
769 770 771 772 773 774 775 776 777 778 779 780
				      queue_num, true);
	if (ret)
		goto out_err;

	/* Turn on CFP for this rule now */
	reg = core_readl(priv, CORE_CFP_CTL_REG);
	reg |= BIT(port);
	core_writel(priv, reg, CORE_CFP_CTL_REG);

	/* Flag the second half rule as being used now, return it as the
	 * location, and flag it as unique while dumping rules
	 */
781
	set_bit(rule_index[0], priv->cfp.used);
782 783 784 785 786 787
	set_bit(rule_index[1], priv->cfp.unique);
	fs->location = rule_index[1];

	return ret;

out_err:
788
	clear_bit(rule_index[1], priv->cfp.used);
789 790 791
	return ret;
}

792 793
static int bcm_sf2_cfp_rule_insert(struct dsa_switch *ds, int port,
				   struct ethtool_rx_flow_spec *fs)
794 795
{
	struct bcm_sf2_priv *priv = bcm_sf2_to_priv(ds);
796 797
	s8 cpu_port = ds->ports[port].cpu_dp->index;
	__u64 ring_cookie = fs->ring_cookie;
798
	unsigned int queue_num, port_num;
799
	int ret;
800

801 802 803 804 805 806
	/* This rule is a Wake-on-LAN filter and we must specifically
	 * target the CPU port in order for it to be working.
	 */
	if (ring_cookie == RX_CLS_FLOW_WAKE)
		ring_cookie = cpu_port * SF2_NUM_EGRESS_QUEUES;

807 808 809 810
	/* We do not support discarding packets, check that the
	 * destination port is enabled and that we are within the
	 * number of ports supported by the switch
	 */
811
	port_num = ring_cookie / SF2_NUM_EGRESS_QUEUES;
812

813
	if (ring_cookie == RX_CLS_FLOW_DISC ||
814 815
	    !(dsa_is_user_port(ds, port_num) ||
	      dsa_is_cpu_port(ds, port_num)) ||
816 817 818 819 820 821
	    port_num >= priv->hw_params.num_ports)
		return -EINVAL;
	/*
	 * We have a small oddity where Port 6 just does not have a
	 * valid bit here (so we substract by one).
	 */
822
	queue_num = ring_cookie % SF2_NUM_EGRESS_QUEUES;
823 824 825
	if (port_num >= 7)
		port_num -= 1;

826 827 828 829 830 831 832 833 834 835 836 837
	switch (fs->flow_type & ~FLOW_EXT) {
	case TCP_V4_FLOW:
	case UDP_V4_FLOW:
		ret = bcm_sf2_cfp_ipv4_rule_set(priv, port, port_num,
						queue_num, fs);
		break;
	case TCP_V6_FLOW:
	case UDP_V6_FLOW:
		ret = bcm_sf2_cfp_ipv6_rule_set(priv, port, port_num,
						queue_num, fs);
		break;
	default:
838
		ret = -EINVAL;
839 840
		break;
	}
841

842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873
	return ret;
}

static int bcm_sf2_cfp_rule_set(struct dsa_switch *ds, int port,
				struct ethtool_rx_flow_spec *fs)
{
	struct bcm_sf2_priv *priv = bcm_sf2_to_priv(ds);
	struct cfp_rule *rule = NULL;
	int ret = -EINVAL;

	/* Check for unsupported extensions */
	if ((fs->flow_type & FLOW_EXT) && (fs->m_ext.vlan_etype ||
	     fs->m_ext.data[1]))
		return -EINVAL;

	if (fs->location != RX_CLS_LOC_ANY &&
	    test_bit(fs->location, priv->cfp.used))
		return -EBUSY;

	if (fs->location != RX_CLS_LOC_ANY &&
	    fs->location > bcm_sf2_cfp_rule_size(priv))
		return -EINVAL;

	ret = bcm_sf2_cfp_rule_cmp(priv, port, fs);
	if (ret == 0)
		return -EEXIST;

	rule = kzalloc(sizeof(*rule), GFP_KERNEL);
	if (!rule)
		return -ENOMEM;

	ret = bcm_sf2_cfp_rule_insert(ds, port, fs);
874 875 876 877 878 879 880 881 882
	if (ret) {
		kfree(rule);
		return ret;
	}

	rule->port = port;
	memcpy(&rule->fs, fs, sizeof(*fs));
	list_add_tail(&rule->next, &priv->cfp.rules_list);

883
	return ret;
884 885
}

886 887
static int bcm_sf2_cfp_rule_del_one(struct bcm_sf2_priv *priv, int port,
				    u32 loc, u32 *next_loc)
888 889 890 891 892 893 894 895 896 897 898
{
	int ret;
	u32 reg;

	/* Indicate which rule we want to read */
	bcm_sf2_cfp_rule_addr_set(priv, loc);

	ret =  bcm_sf2_cfp_op(priv, OP_SEL_READ | TCAM_SEL);
	if (ret)
		return ret;

899 900 901 902 903 904 905 906
	/* Check if this is possibly an IPv6 rule that would
	 * indicate we need to delete its companion rule
	 * as well
	 */
	reg = core_readl(priv, CORE_CFP_DATA_PORT(6));
	if (next_loc)
		*next_loc = (reg >> 24) & CHAIN_ID_MASK;

907 908 909 910 911 912 913 914 915 916 917
	/* Clear its valid bits */
	reg = core_readl(priv, CORE_CFP_DATA_PORT(0));
	reg &= ~SLICE_VALID;
	core_writel(priv, reg, CORE_CFP_DATA_PORT(0));

	/* Write back this entry into the TCAM now */
	ret = bcm_sf2_cfp_op(priv, OP_SEL_WRITE | TCAM_SEL);
	if (ret)
		return ret;

	clear_bit(loc, priv->cfp.used);
918
	clear_bit(loc, priv->cfp.unique);
919 920 921 922

	return 0;
}

923 924
static int bcm_sf2_cfp_rule_remove(struct bcm_sf2_priv *priv, int port,
				   u32 loc)
925 926 927 928
{
	u32 next_loc = 0;
	int ret;

929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944
	ret = bcm_sf2_cfp_rule_del_one(priv, port, loc, &next_loc);
	if (ret)
		return ret;

	/* If this was an IPv6 rule, delete is companion rule too */
	if (next_loc)
		ret = bcm_sf2_cfp_rule_del_one(priv, port, next_loc, NULL);

	return ret;
}

static int bcm_sf2_cfp_rule_del(struct bcm_sf2_priv *priv, int port, u32 loc)
{
	struct cfp_rule *rule;
	int ret;

945 946 947 948 949 950 951
	/* Refuse deleting unused rules, and those that are not unique since
	 * that could leave IPv6 rules with one of the chained rule in the
	 * table.
	 */
	if (!test_bit(loc, priv->cfp.unique) || loc == 0)
		return -EINVAL;

952 953 954 955
	rule = bcm_sf2_cfp_rule_find(priv, port, loc);
	if (!rule)
		return -EINVAL;

956
	ret = bcm_sf2_cfp_rule_remove(priv, port, loc);
957

958 959 960
	list_del(&rule->next);
	kfree(rule);

961 962 963
	return ret;
}

964 965 966 967 968 969 970 971 972 973 974 975 976
static void bcm_sf2_invert_masks(struct ethtool_rx_flow_spec *flow)
{
	unsigned int i;

	for (i = 0; i < sizeof(flow->m_u); i++)
		flow->m_u.hdata[i] ^= 0xff;

	flow->m_ext.vlan_etype ^= cpu_to_be16(~0);
	flow->m_ext.vlan_tci ^= cpu_to_be16(~0);
	flow->m_ext.data[0] ^= cpu_to_be32(~0);
	flow->m_ext.data[1] ^= cpu_to_be32(~0);
}

977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995
static int bcm_sf2_cfp_rule_get(struct bcm_sf2_priv *priv, int port,
				struct ethtool_rxnfc *nfc)
{
	struct cfp_rule *rule;

	rule = bcm_sf2_cfp_rule_find(priv, port, nfc->fs.location);
	if (!rule)
		return -EINVAL;

	memcpy(&nfc->fs, &rule->fs, sizeof(rule->fs));

	bcm_sf2_invert_masks(&nfc->fs);

	/* Put the TCAM size here */
	nfc->data = bcm_sf2_cfp_rule_size(priv);

	return 0;
}

996 997 998 999 1000 1001 1002
/* We implement the search doing a TCAM search operation */
static int bcm_sf2_cfp_rule_get_all(struct bcm_sf2_priv *priv,
				    int port, struct ethtool_rxnfc *nfc,
				    u32 *rule_locs)
{
	unsigned int index = 1, rules_cnt = 0;

1003
	for_each_set_bit_from(index, priv->cfp.unique, priv->num_cfp_rules) {
1004 1005 1006
		rule_locs[rules_cnt] = index;
		rules_cnt++;
	}
1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017

	/* Put the TCAM size here */
	nfc->data = bcm_sf2_cfp_rule_size(priv);
	nfc->rule_cnt = rules_cnt;

	return 0;
}

int bcm_sf2_get_rxnfc(struct dsa_switch *ds, int port,
		      struct ethtool_rxnfc *nfc, u32 *rule_locs)
{
1018
	struct net_device *p = ds->ports[port].cpu_dp->master;
1019 1020 1021 1022 1023 1024 1025 1026
	struct bcm_sf2_priv *priv = bcm_sf2_to_priv(ds);
	int ret = 0;

	mutex_lock(&priv->cfp.lock);

	switch (nfc->cmd) {
	case ETHTOOL_GRXCLSRLCNT:
		/* Subtract the default, unusable rule */
1027
		nfc->rule_cnt = bitmap_weight(priv->cfp.unique,
1028
					      priv->num_cfp_rules) - 1;
1029 1030 1031 1032
		/* We support specifying rule locations */
		nfc->data |= RX_CLS_LOC_SPECIAL;
		break;
	case ETHTOOL_GRXCLSRULE:
1033
		ret = bcm_sf2_cfp_rule_get(priv, port, nfc);
1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044
		break;
	case ETHTOOL_GRXCLSRLALL:
		ret = bcm_sf2_cfp_rule_get_all(priv, port, nfc, rule_locs);
		break;
	default:
		ret = -EOPNOTSUPP;
		break;
	}

	mutex_unlock(&priv->cfp.lock);

1045 1046 1047 1048 1049 1050 1051 1052 1053 1054
	if (ret)
		return ret;

	/* Pass up the commands to the attached master network device */
	if (p->ethtool_ops->get_rxnfc) {
		ret = p->ethtool_ops->get_rxnfc(p, nfc, rule_locs);
		if (ret == -EOPNOTSUPP)
			ret = 0;
	}

1055 1056 1057 1058 1059 1060
	return ret;
}

int bcm_sf2_set_rxnfc(struct dsa_switch *ds, int port,
		      struct ethtool_rxnfc *nfc)
{
1061
	struct net_device *p = ds->ports[port].cpu_dp->master;
1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081
	struct bcm_sf2_priv *priv = bcm_sf2_to_priv(ds);
	int ret = 0;

	mutex_lock(&priv->cfp.lock);

	switch (nfc->cmd) {
	case ETHTOOL_SRXCLSRLINS:
		ret = bcm_sf2_cfp_rule_set(ds, port, &nfc->fs);
		break;

	case ETHTOOL_SRXCLSRLDEL:
		ret = bcm_sf2_cfp_rule_del(priv, port, nfc->fs.location);
		break;
	default:
		ret = -EOPNOTSUPP;
		break;
	}

	mutex_unlock(&priv->cfp.lock);

1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098
	if (ret)
		return ret;

	/* Pass up the commands to the attached master network device.
	 * This can fail, so rollback the operation if we need to.
	 */
	if (p->ethtool_ops->set_rxnfc) {
		ret = p->ethtool_ops->set_rxnfc(p, nfc);
		if (ret && ret != -EOPNOTSUPP) {
			mutex_lock(&priv->cfp.lock);
			bcm_sf2_cfp_rule_del(priv, port, nfc->fs.location);
			mutex_unlock(&priv->cfp.lock);
		} else {
			ret = 0;
		}
	}

1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123
	return ret;
}

int bcm_sf2_cfp_rst(struct bcm_sf2_priv *priv)
{
	unsigned int timeout = 1000;
	u32 reg;

	reg = core_readl(priv, CORE_CFP_ACC);
	reg |= TCAM_RESET;
	core_writel(priv, reg, CORE_CFP_ACC);

	do {
		reg = core_readl(priv, CORE_CFP_ACC);
		if (!(reg & TCAM_RESET))
			break;

		cpu_relax();
	} while (timeout--);

	if (!timeout)
		return -ETIMEDOUT;

	return 0;
}
1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135

void bcm_sf2_cfp_exit(struct dsa_switch *ds)
{
	struct bcm_sf2_priv *priv = bcm_sf2_to_priv(ds);
	struct cfp_rule *rule, *n;

	if (list_empty(&priv->cfp.rules_list))
		return;

	list_for_each_entry_safe_reverse(rule, n, &priv->cfp.rules_list, next)
		bcm_sf2_cfp_rule_del(priv, rule->port, rule->fs.location);
}
1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167

int bcm_sf2_cfp_resume(struct dsa_switch *ds)
{
	struct bcm_sf2_priv *priv = bcm_sf2_to_priv(ds);
	struct cfp_rule *rule;
	int ret = 0;
	u32 reg;

	if (list_empty(&priv->cfp.rules_list))
		return ret;

	reg = core_readl(priv, CORE_CFP_CTL_REG);
	reg &= ~CFP_EN_MAP_MASK;
	core_writel(priv, reg, CORE_CFP_CTL_REG);

	ret = bcm_sf2_cfp_rst(priv);
	if (ret)
		return ret;

	list_for_each_entry(rule, &priv->cfp.rules_list, next) {
		ret = bcm_sf2_cfp_rule_remove(priv, rule->port,
					      rule->fs.location);
		if (ret) {
			dev_err(ds->dev, "failed to remove rule\n");
			return ret;
		}

		ret = bcm_sf2_cfp_rule_insert(ds, rule->port, &rule->fs);
		if (ret) {
			dev_err(ds->dev, "failed to restore rule\n");
			return ret;
		}
1168
	}
1169 1170 1171

	return ret;
}