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Some SoCs may have an optional clock xhci_ck (125M or 200M), it usually uses the same PLL as sys_ck, so support it. Signed-off-by: Chunfeng Yun <chunfeng.yun@mediatek.com> Acked-by: Mathias Nyman <mathias.nyman@linux.intel.com> Reviewed-by: Matthias Brugger <matthias.bgg@gmail.com> Link: https://lore.kernel.org/r/1566542425-20082-2-git-send-email-chunfeng.yun@mediatek.com Signed-off-by: Greg Kroah-Hartman <gregkh@linuxfoundation.org>
184 lines
5.2 KiB
C
184 lines
5.2 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* Copyright (c) 2015 MediaTek Inc.
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* Author:
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* Zhigang.Wei <zhigang.wei@mediatek.com>
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* Chunfeng.Yun <chunfeng.yun@mediatek.com>
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*/
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#ifndef _XHCI_MTK_H_
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#define _XHCI_MTK_H_
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#include "xhci.h"
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/**
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* To simplify scheduler algorithm, set a upper limit for ESIT,
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* if a synchromous ep's ESIT is larger than @XHCI_MTK_MAX_ESIT,
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* round down to the limit value, that means allocating more
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* bandwidth to it.
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*/
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#define XHCI_MTK_MAX_ESIT 64
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/**
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* @split_bit_map: used to avoid split microframes overlay
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* @ep_list: Endpoints using this TT
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* @usb_tt: usb TT related
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* @tt_port: TT port number
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*/
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struct mu3h_sch_tt {
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DECLARE_BITMAP(split_bit_map, XHCI_MTK_MAX_ESIT);
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struct list_head ep_list;
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struct usb_tt *usb_tt;
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int tt_port;
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};
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/**
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* struct mu3h_sch_bw_info: schedule information for bandwidth domain
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*
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* @bus_bw: array to keep track of bandwidth already used at each uframes
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* @bw_ep_list: eps in the bandwidth domain
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*
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* treat a HS root port as a bandwidth domain, but treat a SS root port as
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* two bandwidth domains, one for IN eps and another for OUT eps.
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*/
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struct mu3h_sch_bw_info {
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u32 bus_bw[XHCI_MTK_MAX_ESIT];
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struct list_head bw_ep_list;
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};
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/**
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* struct mu3h_sch_ep_info: schedule information for endpoint
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*
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* @esit: unit is 125us, equal to 2 << Interval field in ep-context
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* @num_budget_microframes: number of continuous uframes
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* (@repeat==1) scheduled within the interval
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* @bw_cost_per_microframe: bandwidth cost per microframe
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* @endpoint: linked into bandwidth domain which it belongs to
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* @tt_endpoint: linked into mu3h_sch_tt's list which it belongs to
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* @sch_tt: mu3h_sch_tt linked into
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* @ep_type: endpoint type
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* @maxpkt: max packet size of endpoint
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* @ep: address of usb_host_endpoint struct
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* @offset: which uframe of the interval that transfer should be
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* scheduled first time within the interval
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* @repeat: the time gap between two uframes that transfers are
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* scheduled within a interval. in the simple algorithm, only
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* assign 0 or 1 to it; 0 means using only one uframe in a
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* interval, and 1 means using @num_budget_microframes
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* continuous uframes
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* @pkts: number of packets to be transferred in the scheduled uframes
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* @cs_count: number of CS that host will trigger
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* @burst_mode: burst mode for scheduling. 0: normal burst mode,
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* distribute the bMaxBurst+1 packets for a single burst
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* according to @pkts and @repeat, repeate the burst multiple
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* times; 1: distribute the (bMaxBurst+1)*(Mult+1) packets
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* according to @pkts and @repeat. normal mode is used by
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* default
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* @bw_budget_table: table to record bandwidth budget per microframe
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*/
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struct mu3h_sch_ep_info {
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u32 esit;
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u32 num_budget_microframes;
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u32 bw_cost_per_microframe;
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struct list_head endpoint;
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struct list_head tt_endpoint;
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struct mu3h_sch_tt *sch_tt;
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u32 ep_type;
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u32 maxpkt;
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void *ep;
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/*
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* mtk xHCI scheduling information put into reserved DWs
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* in ep context
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*/
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u32 offset;
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u32 repeat;
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u32 pkts;
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u32 cs_count;
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u32 burst_mode;
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u32 bw_budget_table[0];
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};
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#define MU3C_U3_PORT_MAX 4
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#define MU3C_U2_PORT_MAX 5
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/**
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* struct mu3c_ippc_regs: MTK ssusb ip port control registers
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* @ip_pw_ctr0~3: ip power and clock control registers
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* @ip_pw_sts1~2: ip power and clock status registers
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* @ip_xhci_cap: ip xHCI capability register
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* @u3_ctrl_p[x]: ip usb3 port x control register, only low 4bytes are used
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* @u2_ctrl_p[x]: ip usb2 port x control register, only low 4bytes are used
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* @u2_phy_pll: usb2 phy pll control register
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*/
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struct mu3c_ippc_regs {
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__le32 ip_pw_ctr0;
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__le32 ip_pw_ctr1;
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__le32 ip_pw_ctr2;
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__le32 ip_pw_ctr3;
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__le32 ip_pw_sts1;
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__le32 ip_pw_sts2;
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__le32 reserved0[3];
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__le32 ip_xhci_cap;
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__le32 reserved1[2];
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__le64 u3_ctrl_p[MU3C_U3_PORT_MAX];
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__le64 u2_ctrl_p[MU3C_U2_PORT_MAX];
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__le32 reserved2;
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__le32 u2_phy_pll;
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__le32 reserved3[33]; /* 0x80 ~ 0xff */
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};
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struct xhci_hcd_mtk {
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struct device *dev;
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struct usb_hcd *hcd;
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struct mu3h_sch_bw_info *sch_array;
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struct mu3c_ippc_regs __iomem *ippc_regs;
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bool has_ippc;
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int num_u2_ports;
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int num_u3_ports;
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int u3p_dis_msk;
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struct regulator *vusb33;
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struct regulator *vbus;
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struct clk *sys_clk; /* sys and mac clock */
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struct clk *xhci_clk;
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struct clk *ref_clk;
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struct clk *mcu_clk;
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struct clk *dma_clk;
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struct regmap *pericfg;
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struct phy **phys;
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int num_phys;
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bool lpm_support;
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/* usb remote wakeup */
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bool uwk_en;
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struct regmap *uwk;
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u32 uwk_reg_base;
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u32 uwk_vers;
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};
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static inline struct xhci_hcd_mtk *hcd_to_mtk(struct usb_hcd *hcd)
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{
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return dev_get_drvdata(hcd->self.controller);
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}
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#if IS_ENABLED(CONFIG_USB_XHCI_MTK)
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int xhci_mtk_sch_init(struct xhci_hcd_mtk *mtk);
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void xhci_mtk_sch_exit(struct xhci_hcd_mtk *mtk);
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int xhci_mtk_add_ep_quirk(struct usb_hcd *hcd, struct usb_device *udev,
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struct usb_host_endpoint *ep);
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void xhci_mtk_drop_ep_quirk(struct usb_hcd *hcd, struct usb_device *udev,
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struct usb_host_endpoint *ep);
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#else
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static inline int xhci_mtk_add_ep_quirk(struct usb_hcd *hcd,
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struct usb_device *udev, struct usb_host_endpoint *ep)
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{
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return 0;
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}
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static inline void xhci_mtk_drop_ep_quirk(struct usb_hcd *hcd,
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struct usb_device *udev, struct usb_host_endpoint *ep)
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{
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}
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#endif
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#endif /* _XHCI_MTK_H_ */
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